WO1997030647A1 - Apparatus and method for treating airway insufficiency in the laryngeal/oral cavity region by electromagnetic energy - Google Patents

Apparatus and method for treating airway insufficiency in the laryngeal/oral cavity region by electromagnetic energy Download PDF

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Publication number
WO1997030647A1
WO1997030647A1 PCT/US1997/002834 US9702834W WO9730647A1 WO 1997030647 A1 WO1997030647 A1 WO 1997030647A1 US 9702834 W US9702834 W US 9702834W WO 9730647 A1 WO9730647 A1 WO 9730647A1
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WO
WIPO (PCT)
Prior art keywords
catheter
interior
electrode
tongue
body structure
Prior art date
Application number
PCT/US1997/002834
Other languages
French (fr)
Inventor
Stuart D. Edwards
Original Assignee
Somnus Medical Technologies, Inc.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from US08/606,195 external-priority patent/US5707349A/en
Priority claimed from US08/642,053 external-priority patent/US5728094A/en
Application filed by Somnus Medical Technologies, Inc. filed Critical Somnus Medical Technologies, Inc.
Priority to AU21355/97A priority Critical patent/AU2135597A/en
Publication of WO1997030647A1 publication Critical patent/WO1997030647A1/en

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    • A61B17/24Surgical instruments, devices or methods, e.g. tourniquets for use in the oral cavity, larynx, bronchial passages or nose; Tongue scrapers
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Definitions

  • Sleep-apnea syndrome is a medical condition characterized by daytime hypersomnomulence, morning arm aches, intellectual deterioration, cardiac 25 arrhythmias, snoring and thrashing during sleep. It is caused by frequent episodes of apnea during the patient's sleep.
  • the syndrome is classically subdivided into two types.
  • One type termed "central sleep apnea syndrome" is characterized by repeated loss of respiratory effort.
  • Weight loss may be effective but is rarely achieved by these patients
  • Phrenic nerve or diaphragmatic pacing includes the use of electrical stimulation to regulate and control the patient's diaphragm which is innervated bilaterally by the phrenic nerves to assist or support ventilation
  • This pacing is disclosed in Direct Diaphragm Stimulation by J Mugica et al PACE vol lO Jan-Feb 1987, Part II, Preliminary Test of a Muscular Diaphragm Pacing System on Human Patients by J Mugica et al from Neurostimulation An Overview 1985 pp 263-279 and Electrical Activation of Respiration by Chanomovitez LEEE Eng. in Medicine and Biology;
  • One measure that is effective in obstructive sleep apnea is tracheostomy.
  • an object of the invention is to provide a method and apparatus to treat airway obstructions.
  • a further object of the invention is to provide a method and apparatus for ablating an interior of the tongue while reducing a swelling of an exterior surface of the tongue.
  • Yet another object of the invention is to provide a method and apparatus for ablating an interior of the tongue while providing sufficient cooling to an exterior surface of the tongue in order to reduce swelling of the exterior surface.
  • the apparatus provides a catheter including a catheter tissue interface surface and a port formed in the catheter tissue interface surface.
  • An electrode is at least partially positioned in the interior of the catheter and configured to be advanced and retracted in and out of the port.
  • the electrode includes an electrode electromagnetic energy delivery surface.
  • a cooling element includes a cooling medium inlet conduit and a cooling medium exit conduit, both extending through an interior of the catheter forming at least a partial cooled catheter tissue interface surface.
  • the electrode electromagnetic energy delivery surface is thermally isolated from the cooling element.
  • An electrode advancement and retraction device is at least partially positioned in the interior of the catheter.
  • a method for treating airway obstructions provides an ablation apparatus
  • the ablation apparatus includes a catheter with a catheter tissue interface surface, an electrode at least partially positioned in an interior of the catheter and advanceable and retractable to and from the catheter into an interior of a body structure, and a means for cooling the catheter tissue interface surface
  • the electrode is advanced from the interior of the catheter through a body structure external surface into the interior of the body structure
  • Sufficient electromagnetic energy is delivered from the electrode into the interior of the body structure to ablate a portion of the interior of the body structure.
  • the catheter tissue interface surface is cooled sufficiently to reduce a swelling of the body structure external surface
  • the electrode is retracted from the interior of the body structure
  • the catheter tissue interface surface can be cooled to a temperature of 10 to 30 degrees C
  • the electrode may be hollow and coupled to an infusion medium source.
  • An insulation sleeve can be positioned in a surrounding relationship to at least a portion of an exterior surface of the electrode
  • One or more electrodes may be introduced through the catheter Additionally, one or more sensors can be positioned at various locations of the ablation apparatus including at a distal end of the electrode, at an exterior surface of the electrode, at a distal end of the insulation sleeve or at the catheter tissue interface surface
  • the body structure is the tongue
  • the electrode is introduced through the tongue's ventral surface, dorsal surface or the dorsum surface. Sufficient cooling is provided to reduce a swelling of the exterior surface of a tongue following delivery of electromagnetic energy to an interior of the tongue by at least fifty percent
  • Figure 1(b) is a perspective of the ablation apparatus of the present invention illustrating a catheter tissue interface surface.
  • Figure 2 is cross-sectional view illustrating the catheter and connector of the ablation apparatus shown in Figure 1(a).
  • Figure 3 is a perspective view of the connector illustrated in Figure 1(a).
  • Figure 4 is a perspective view of a needle electrode associated with the ablation apparatus illustrated in Figure 1(a).
  • Figure 5 is a perspective view of a flexible needle electrode utilized with the methods of the present invention.
  • Figure 7 is a cross-sectional view of the tongue with the mouth closed.
  • Figure 8 is a cross-sectional view of the tongue with the mouth open.
  • Figure 17 is a block diagram illustrating an analog amplifier, analog multiplexer and microprocessor used with the feedback control system of Figure 16.
  • Figure 18 is a block diagram of a temperature/impedance feedback system that can be used to control cooling medium flow rate through the catheter of Figure 1.
  • Catheter 14 includes a catheter tissue interface surface 22, a cooling medium inlet conduit 24 and a cooling medium exit conduit 26 extending through an interior of catheter 14.
  • Ports 18 are formed in the exterior of catheter 14, and are preferably formed on catheter tissue interface surface 22. Ports 18 are isolated from a cooling medium flowing in inlet and outlet conduits 24 and 26. Cooling medium inlet and exit conduits 24 and 26 are configured to provide a cooled section of catheter tissue interface surface 22 of at least 1 to 2 cm 2 . More preferably, the cooled section of catheter tissue interface surface 22 is at least equal to the cross-sectional diameter of the underlying zone of ablation.
  • Catheter 14 can be malleable in order to conform to the surface of the tongue when a selected ablation target site is selected
  • An encapsulated soft metal, such as copper, or an annealed metal/plastic material can be used to form malleable catheter 14 All or a portion of catheter 14 may be malleable or made of a shaped memory metal.
  • a distal end 14' of catheter 14 it is desirable for a distal end 14' of catheter 14 to be deflectable. This can be achieved mechanically or with the use of memory metals
  • a steering wire, or other mechanical structure can be attached to either the exterior or interior of distal end 14'
  • a deflection knob located on handle 16 is activated by the physician causing a steering wire to tighten This imparts a retraction of distal end 14', resulting in its deflection
  • Other mechanical devices can be used in place of the steering wire The deflection may be desirable for tissue sites with difficult access.
  • One or more sensors 42 may be positioned on an interior or exterior surface of electrode 12, insulation sleeve 32, or be independently inserted into the interior of the body structure. Sensors 42 permit accurate measurement of temperature at a tissue site in order to determine, (i) the extent of ablation, (ii) the amount of ablation, (iii) whether or not further ablation is needed, and (iv) the boundary or periphery of the ablated geometry. Further, sensors 42 prevent non-targeted tissue from being destroyed or ablated.
  • ultrasound imaging can be used to position the electrodes 12 and/or determine the amount of ablation.
  • One or more ultrasound transducers 44 can be positioned in or on electrode 12, catheter 14, or on a separate device
  • An imaging probe may also be used internally or externally to the selected tissue site
  • a suitable imaging probe is Model 21362, manufactured and sold by Hewlett Packard Company.
  • Each ultrasound transducer 44 is coupled to an ultrasound source (not shown)
  • Ablation apparatus 10 can be operated in either bipolar or monopolar modes
  • electrodes 12 are operated in the bipolar mode, creating sufficient ablation zones 46 to debulk the tongue without affecting the hypoglossal nerves and creating a larger airway passage
  • a groundpad can be positioned in a convenient place such as under the chin
  • a single electrode 12 is positioned in the tongue to create a first ablation zone 46
  • Electrode 12 can then be retracted from the interior of the tongue, catheter 14 moved, and electrode 12 is then advanced from catheter 14 into another interior section of the tongue
  • a second ablation zone 46 is created This procedure can be completed any number of times to form different ablation regions in the interior of the
  • the genioglossus muscle, or body of the tongue is denoted as 48, the geniohyoid muscle is 50, the mylohyoid muscle is 52; the hyoid bone is 54, the tip of the tongue is 56; the ventral surface of the tongue is denoted as 58; the dorsum of the tongue is denoted as 60; the inferior dorsal of the tongue is denoted as 62; the reflex of the vallecula is 64; the lingual follicles are denoted as 66, the uvula is 68; the adenoid area is 70, the lateral border of the tongue is 72, the circumvallate papilla is 74, the palatine tonsil is 76, the pharynx is 78, the redundant pharyngeal tissue is 80, the foramen cecum is
  • Controller 98 can be a digital or analog controller, or a computer with software.
  • controller 98 is a computer it can include a CPU coupled through a system bus.
  • On this system can be a keyboard, a disk drive, or other non-volatile memory systems, a display, and other peripherals, as are known in the art.
  • Also coupled to the bus is a program memory and a data memory.
  • Circuitry, software and feedback to controller 98 result in process control, and the maintenance of the selected power that is independent of changes in voltage or current, and are used to change, (i) the selected power, (ii) the duty cycle (on-offand wattage), (iii) bipolar or monopolar energy delivery, and (iv) infusion medium delivery, including flow rate and pressure.
  • process variables are controlled and varied, while maintaining the desired delivery of power independent of changes in voltage or current, based on temperatures monitored at sensors 42.
  • Figure 18 illustrates a block diagram of a temperature/impedance feedback system that can be used to control cooling medium flow rate through catheter 14
  • Electromagnetic energy is delivered to electrode 12 by energy source 44, and applied to tissue
  • a monitor 110 ascertains tissue impedance, based on the energy delivered to tissue, and compares the measured impedance value to a set value. If the measured impedance exceeds the set value a disabling signal 1 12 is transmitted to energy source 40, ceasing further delivery of energy to electrode 12. If measured impedance is within acceptable limits, energy continues to be applied to the tissue During the application of energy to tissue sensor 42 measures the temperature of tissue and/or electrode 12
  • a comparator 114 receives a signal representative of the measured temperature and compares this value to a pre-set signal representative of the desired temperature

Abstract

An ablation apparatus is provided which ablates at least a portion of an interior of a body structure while reducing a swelling response in the body structure. The apparatus provides a catheter including a catheter tissue interface surface and a port formed in the catheter tissue interface surface. An electrode is at least partially positioned in the interior of the catheter and configured to be advanced and retracted in and out of the port. The electrode includes an electrode electromagnetic energy delivery surface. A cooling element includes a cooling medium inlet conduit and a cooling medium exit conduit, both extending through an interior of the catheter forming at least a partial cooled catheter tissue interface surface. The electrode electromagnetic energy delivery surface is thermally isolated from the cooling element. An electrode advancement and retraction device is at least partially positioned in the interior of the catheter. A cable is coupled to the electrode.

Description

APPARATUS AND METHOD FOR TREATING AIRWAY INSUFFICIENCY IN THE LARINGEAL/ORAL CAVITY REGION BY ELECTROMAGNETIC ENERGY
Cross-Reference to Related Applications 5 This application is a continuation-in-part application of U.S. Patent
Application No. 08/606,195, filed February 23, 1996, entitled "Method for Treatment of Airway Obstructions", which cross-references U.S. Patent Application No. 08/516,781 filed August 18, 1995, entitled "Ablation Apparatus and System for Removal of Soft Palate Tissue", having named inventors Stuart
10 D. Edwards, Edward J. Gough and David L. Douglass, which is a continuation- in-part of U.S. Application No. 08/239,658, filed May 9, 1994 entitled "Method for Reducing Snoring by RF Ablation of the Uvula", and is related to Attorney Docket No. SOMN 1009CLP3, entitled "Method and Apparatus for Treatment of Air Way Obstructions" filed concurrent with this application, all incorporated
15 by reference herein.
BACKGROUND OF THE INVENTION
Field of the Invention
This invention relates to a method for maintaining upper airway patency in human patients, and more particularly to a method which utilizes 20 electromagnetic energy to debul selected sections of the tongue and/or lingual tonsil without damaging the hypoglossal nerve.
Description of Related Art
Sleep-apnea syndrome is a medical condition characterized by daytime hypersomnomulence, morning arm aches, intellectual deterioration, cardiac 25 arrhythmias, snoring and thrashing during sleep. It is caused by frequent episodes of apnea during the patient's sleep. The syndrome is classically subdivided into two types. One type, termed "central sleep apnea syndrome", is characterized by repeated loss of respiratory effort. The second type, termed obstructive sleep apnea syndrome, is characterized by repeated apneic episodes during sleep resulting from obstruction of the patient's upper airway or that portion of the patient's respiratory tract which is cephalad to, and does not include, the larynx Treatment thus far includes various medical, surgical and physical measures Medical measures include the use of medications such as protriptyline, medroxyprogesterone, acetazolamide, theophylline, nicotine and other medications in addition to avoidance of central nervous system depressants such as sedatives or alcohol The medical measures above are sometimes helpful but are rarely completely effective Further, the medications frequently have undesirable side effects
Surgical interventions have included uvulopalatopharyngoplasty, tonsillectomy, surgery to correct severe retrognathia and tracheostomy In one procedure the jaw is dislodged and pulled forward, in order to gain access to the base of the tongue These procedures may be effective but the risk of surgery in these patients can be prohibitive and the procedures are often unacceptable to the patients
Physical measures have included weight loss, nasopharyngeal airways, nasal CPAP and various tongue retaining devices used nocturnally These measures may be partially effective but are cumbersome, uncomfortable and patients often will not continue to use these for prolonged periods of time Weight loss may be effective but is rarely achieved by these patients
In patients with central sleep apnea syndrome, phrenic nerve or diaphragmatic pacing has been used Phrenic nerve or diaphragmatic pacing includes the use of electrical stimulation to regulate and control the patient's diaphragm which is innervated bilaterally by the phrenic nerves to assist or support ventilation This pacing is disclosed in Direct Diaphragm Stimulation by J Mugica et al PACE vol lO Jan-Feb 1987, Part II, Preliminary Test of a Muscular Diaphragm Pacing System on Human Patients by J Mugica et al from Neurostimulation An Overview 1985 pp 263-279 and Electrical Activation of Respiration by Nochomovitez LEEE Eng. in Medicine and Biology;
June, 1993.
However, it was found that many of these patients also have some degree of obstructive sleep apnea which worsens when the inspiratory force is augmented by the pacer. The ventilation induced by the activation of the diaphragm also collapses the upper airway upon inspiration and draws the patient's tongue inferiorly down the throat choking the patient. These patients then require tracheostomies for adequate treatment.
A physiological laryngeal pacemaker as described in Physiological Laryngeal Pacemaker by F. Kaneko et al. from Trans Am Soc Artif Intern
Organs 1985 senses volume displaced by the lungs and stimulates the appropriate nerve to open the patient's glottis to treat dyspnea. This apparatus is not effective for treatment of sleep apnea. The apparatus produces a signal proportional in the displaced air volume of the lungs and thereby the signal produced is too late to be used as an indicator for the treatment of sleep apnea.
There is often no displaced air volume in sleep apnea due to obstruction.
One measure that is effective in obstructive sleep apnea is tracheostomy.
However, this surgical intervention carries considerable morbidity and is aesthetically unacceptable to many patients. Other surgical procedures include pulling the tongue as forward as possible and surgically cutting and removing sections of the tongue and other structures which can close off the upper airway passage.
There is a need for a method and apparatus to treat airway obstruction disorders. There is a further need for a method and apparatus which delivers sufficient electromagnetic energy to an interior of a body structure, including but not limited to the tongue, to treat airway obstruction disorders while reducing a swelling of an exterior surface of the body structure. SUMMARY OF THE INVENTION
Accordingly, an object of the invention is to provide a method and apparatus to treat airway obstructions.
Another object of the invention is to provide a method and apparatus for ablating an interior of a body structure while reducing a swelling of an exterior surface of the body structure.
Still another object of the invention is to provide a method and apparatus for ablating an interior of a body structure by providing a cooled catheter tissue interface surface that is cooled sufficient to reduce a swelling of the body structure.
A further object of the invention is to provide a method and apparatus for ablating an interior of the tongue while reducing a swelling of an exterior surface of the tongue.
Yet another object of the invention is to provide a method and apparatus for ablating an interior of the tongue while providing sufficient cooling to an exterior surface of the tongue in order to reduce swelling of the exterior surface.
These and other objects of the invention are achieved in an ablation apparatus which ablates at least a portion of an interior of a body structure while reducing a swelling response in the body structure. The apparatus provides a catheter including a catheter tissue interface surface and a port formed in the catheter tissue interface surface. An electrode is at least partially positioned in the interior of the catheter and configured to be advanced and retracted in and out of the port. The electrode includes an electrode electromagnetic energy delivery surface. A cooling element includes a cooling medium inlet conduit and a cooling medium exit conduit, both extending through an interior of the catheter forming at least a partial cooled catheter tissue interface surface. The electrode electromagnetic energy delivery surface is thermally isolated from the cooling element. An electrode advancement and retraction device is at least partially positioned in the interior of the catheter. A cable is coupled to the electrode. In one embodiment of the invention, a method for treating airway obstructions provides an ablation apparatus The ablation apparatus includes a catheter with a catheter tissue interface surface, an electrode at least partially positioned in an interior of the catheter and advanceable and retractable to and from the catheter into an interior of a body structure, and a means for cooling the catheter tissue interface surface The electrode is advanced from the interior of the catheter through a body structure external surface into the interior of the body structure Sufficient electromagnetic energy is delivered from the electrode into the interior of the body structure to ablate a portion of the interior of the body structure. The catheter tissue interface surface is cooled sufficiently to reduce a swelling of the body structure external surface The electrode is retracted from the interior of the body structure
The catheter tissue interface surface can be cooled to a temperature of 10 to 30 degrees C The electrode may be hollow and coupled to an infusion medium source. An insulation sleeve can be positioned in a surrounding relationship to at least a portion of an exterior surface of the electrode One or more electrodes may be introduced through the catheter Additionally, one or more sensors can be positioned at various locations of the ablation apparatus including at a distal end of the electrode, at an exterior surface of the electrode, at a distal end of the insulation sleeve or at the catheter tissue interface surface
A variety of different electromagnetic energy sources can be coupled to the electrode including but not limited to RF and microwave sources
In one embodiment, the body structure is the tongue The electrode is introduced through the tongue's ventral surface, dorsal surface or the dorsum surface. Sufficient cooling is provided to reduce a swelling of the exterior surface of a tongue following delivery of electromagnetic energy to an interior of the tongue by at least fifty percent
BRIEF DESCRIPTION OF THE FIGURES Figure 1(a) is a cross-sectional view of an ablation apparatus used with the present invention.
Figure 1(b) is a perspective of the ablation apparatus of the present invention illustrating a catheter tissue interface surface. Figure 2 is cross-sectional view illustrating the catheter and connector of the ablation apparatus shown in Figure 1(a).
Figure 3 is a perspective view of the connector illustrated in Figure 1(a).
Figure 4 is a perspective view of a needle electrode associated with the ablation apparatus illustrated in Figure 1(a). Figure 5 is a perspective view of a flexible needle electrode utilized with the methods of the present invention.
Figure 6 illustrates the creation of ablation zones with the ablation apparatus shown in Figure 1(a).
Figure 7 is a cross-sectional view of the tongue with the mouth closed. Figure 8 is a cross-sectional view of the tongue with the mouth open.
Figure 9 is a perspective view of the tongue.
Figure 10 is a perspective view of the dorsum of the tongue.
Figure 11 is a cross-sectional view of the tongue.
Figure 12 is a cross-sectional view of the tongue illustrating the location of the hypoglossal nerves and the creation of an ablation zone.
Figure 13 is a cross-sectional view of the tongue illustrating a plurality of ablation zones.
Figure 14 is a perspective view of the ventral surface of the tongue.
Figure 15 is a cross-sectional view of the tongue. Figure 16 is a block diagram of a feedback control system useful with the methods of the present invention.
Figure 17 is a block diagram illustrating an analog amplifier, analog multiplexer and microprocessor used with the feedback control system of Figure 16. Figure 18 is a block diagram of a temperature/impedance feedback system that can be used to control cooling medium flow rate through the catheter of Figure 1.
DETAILED DESCRIPTION Referring to Figures 1(a), 1(b) and 2, an ablation apparatus 10 for debulking the tongue, lingual tonsils, and/or adenoids is illustrated. Ablation apparatus 10 can be positioned so that one or more electrodes 12 are introduced into an interior of the tongue through a surface of the tongue. Ablation apparatus 10 may include atraumatic intubation with or without visualization, provide for the delivery of oxygen or anesthetics, and can be capable of suctioning blood or other secretions. It will be appreciated that ablation apparatus 10 is used to treat a variety of different obstructions in the body where passage of gas is restricted. One embodiment is the treatment of sleep apnea using electrodes 12 to ablate selected portions of the tongue, lingual tonsils and or adenoids by the use of RF, microwave, and the like. In this regard, ablation apparatus 10 can be used to ablate targeted masses including but not limited to the tongue, tonsils, turbinates, soft palate tissues, hard tissue and mucosal tissue. In one embodiment, ablation apparatus 10 is used to ablate an interior region of the tongue, causing it to become debulked in order to increase the cross-sectional area of the airway passage.
Prior to debulking the tongue, a presurgical evaluation may be performed including a physical examination, fiber optic pharyngoscopy, cephalometric analysis and polygraphic monitoring. The physical examination emphasizes the evaluation of the head and neck. It also includes a close examination of the nasal cavity to identify obstructing deformities of the septum and turbinate; oropharyngeal obstruction from a long, redundant soft palate or hypertrophic tonsils; and hypopharyngeal obstruction from a prominent base of the tongue. Ablation apparatus 10 includes a catheter 14, a handle 16, one or more electrodes 12 extending from different ports 18 formed along a longitudinal surface of catheter 14, or from a distal end of electrode 12. An electrode advancement and retraction device 20 is provided. Cabling is coupled to electrodes 12.
Electrodes 12 are at least partially positioned in an interior of catheter 14. Each electrode 12 is advanced and retracted through a port 18 formed in an exterior surface of catheter 14. Electrode advancement and retraction device advances electrodes 12 out of catheter 14, into an interior of a body structure and retracted back into catheter 14. Although the body structure can be any number of different structures, the body structure will hereafter be referred to as the tongue. Electrodes 12 pierce an exterior surface of the tongue and are directed to an interior region of the tongue. Sufficient electromagnetic energy is delivered by electrodes 12 to the interior of the tongue to cause the tongue to become sufficiently ablated and debulked. Electrodes 12 can be hollow to receive a variety of different infusion mediums, including but not limited to saline. Electrodes 12 may be limited in the distance that they can be advanced into the tongue. This is achieved with an insulation sleeve, a structure located on electrodes 12 which limits their advancement, or a structure coupled to catheter which limits the advancement of electrodes 12, such as a stop and the like.
Electrodes 12 can include a central lumen for receiving a variety of fluids that can be introduced into the interior of the tongue, as well as a plurality of fluid delivery ports. One suitable fluid is an electrolytic solution. Instead of direct contact with tissue and electrode 12 for the delivery of thermal energy, a cooled electrolytic solution can be used to deliver the thermal energy to the tissue. The electrolytic solution may be cooled in the range of about 30 to 55 degrees C.
Catheter 14 includes a catheter tissue interface surface 22, a cooling medium inlet conduit 24 and a cooling medium exit conduit 26 extending through an interior of catheter 14. Ports 18 are formed in the exterior of catheter 14, and are preferably formed on catheter tissue interface surface 22. Ports 18 are isolated from a cooling medium flowing in inlet and outlet conduits 24 and 26. Cooling medium inlet and exit conduits 24 and 26 are configured to provide a cooled section of catheter tissue interface surface 22 of at least 1 to 2 cm2. More preferably, the cooled section of catheter tissue interface surface 22 is at least equal to the cross-sectional diameter of the underlying zone of ablation.
The size of the cooled section of catheter tissue interface surface 22 varies for each patient. The size is sufficient enough to minimize swelling of the tongue following the delivery of electromagnetic energy. The reduction of swelling can be 50% or greater, 75% or greater , and 90% and greater. The amount of cooling provided is sufficient to enable the patient to return home shortly after the debulking procedure is performed, and not run the risk of choking on the tongue. It has been found that by providing a sufficient level of cooling over a relatively large area, the amount of ablation in an interior region of the tongue is enhanced. By providing a sufficiently large enough cooled section of catheter tissue interface surface 22, an adenomas response is minimized.
An electromagnetic energy delivery surface 30 of electrode 12 can be adjusted by inclusion of an adjustable or non-adjustable insulation sleeve 32 (Figures 3, 4, and 5). Insulation sleeve 32 can be advanced and retracted along the exterior surface of electrode 12 in order to increase or decrease the length of the electromagnetic energy delivery surface 30. Insulation sleeve 32 can be made of a variety of materials including but not limited to nylon, polyimides, other thermoplastics and the like. The size of electromagnetic energy delivery surface 30 can be varied by other methods including but not limited to creating a segmented electrode with a plurality of electrodes that are capable of being multiplexed and individually activated, and the like.
Handle 16 is preferably made of an insulating material. Electrodes 12 are made of a conductive material such as stainless steel. Additionally, electrodes 12 can be made of a shaped memory metal, such as nickel titanium, commercially available from Raychem Corporation, Menlo Park, California. In one -» embodiment, only a distal end of electrode 12 is made of the shaped memory metal in order to effect a desired deflection When introduced into the oral cavity, catheter 14 can be advanced until a patient's gag response is initiated
Catheter 14 is then retracted back to prevent patient's gagging The distal end of electrode 12 can be semi-curved The distal end can have a geometry to conform to an exterior of the tongue
Catheter 14 can be malleable in order to conform to the surface of the tongue when a selected ablation target site is selected An encapsulated soft metal, such as copper, or an annealed metal/plastic material can be used to form malleable catheter 14 All or a portion of catheter 14 may be malleable or made of a shaped memory metal.
For many applications it is desirable for a distal end 14' of catheter 14 to be deflectable. This can be achieved mechanically or with the use of memory metals A steering wire, or other mechanical structure, can be attached to either the exterior or interior of distal end 14' In one embodiment, a deflection knob located on handle 16 is activated by the physician causing a steering wire to tighten This imparts a retraction of distal end 14', resulting in its deflection It will be appreciated that other mechanical devices can be used in place of the steering wire The deflection may be desirable for tissue sites with difficult access.
Handle 6 can comprise a connector 34 coupled to retraction and advancement device 20 Connector 34 provides a coupling of electrodes 12 to power, feedback control, temperature and/or imaging systems An RF/temperature control block 36 can be included In one embodiment, the physician moves retraction and advancement device 20 in a direction toward a distal end of connector 34 Electrodes 12 can be spring loaded. When retraction and advancement device 20 is moved back, springs cause selected electrodes 12 to advance out of catheter 14
One or more cables 38 couple electrodes 12 to an electromagnetic energy source 40 A variety of energy sources 40 can be used with the present invention to transfer electromagnetic energy to the interior of a body structure, including but not limited to RF, microwave, ultrasound, coherent light and thermal transfer. Preferably, energy source 40 is a RF generator. When a RF energy source is used, the physician can activate RF energy source 40 by the use of a foot switch (not shown) coupled to RF energy source 40.
One or more sensors 42 may be positioned on an interior or exterior surface of electrode 12, insulation sleeve 32, or be independently inserted into the interior of the body structure. Sensors 42 permit accurate measurement of temperature at a tissue site in order to determine, (i) the extent of ablation, (ii) the amount of ablation, (iii) whether or not further ablation is needed, and (iv) the boundary or periphery of the ablated geometry. Further, sensors 42 prevent non-targeted tissue from being destroyed or ablated.
Sensors 42 are of conventional design, including but not limited to thermistors, thermocouples, resistive wires, and the like. Suitable sensors 42 include a T type thermocouple with copper constantene, J type, E type, K type, fiber optics, resistive wires, thermocouple IR detectors, and the like. It will be appreciated that sensors 42 need not be thermal sensors.
Sensors 42 measure temperature and/or impedance to permit ablation monitoring. This reduces damage to tissue surrounding the targeted ablation mass. By monitoring the temperature at various points within the interior of the body structure the periphery of ablation can be ascertained and it is possible to determine when the ablation is completed. If at any time sensor 42 determines that a desired ablation temperature is exceeded, then an appropriate feedback signal is received at energy source 40 and the amount of energy delivered is regulated.
Ablation apparatus 10 can include visualization capability including but not limited to a viewing scope, an expanded eyepiece, fiber optics, video imaging, and the like.
Additionally, ultrasound imaging can be used to position the electrodes 12 and/or determine the amount of ablation. One or more ultrasound transducers 44 can be positioned in or on electrode 12, catheter 14, or on a separate device An imaging probe may also be used internally or externally to the selected tissue site A suitable imaging probe is Model 21362, manufactured and sold by Hewlett Packard Company. Each ultrasound transducer 44 is coupled to an ultrasound source (not shown)
With reference now to Figure 6 catheter 14 is shown as being introduced into the oral cavity and multiple RF electrodes 12 are advanced into the inteπor of the tongue creating different ablation zones 46 Ablation apparatus 10 can be operated in either bipolar or monopolar modes In Figure 6, electrodes 12 are operated in the bipolar mode, creating sufficient ablation zones 46 to debulk the tongue without affecting the hypoglossal nerves and creating a larger airway passage With this debulking, the back of the tongue moves in a forward direction away from the air passageway The result is an increase in the cross- sectional diameter of the air passageway Ablation apparatus 10 can also be operated in the monopolar mode A groundpad can be positioned in a convenient place such as under the chin A single electrode 12 is positioned in the tongue to create a first ablation zone 46 Electrode 12 can then be retracted from the interior of the tongue, catheter 14 moved, and electrode 12 is then advanced from catheter 14 into another interior section of the tongue A second ablation zone 46 is created This procedure can be completed any number of times to form different ablation regions in the interior of the tongue More than one electrode 12 can be introduced into the tongue and operated in the bipolar mode. Electrodes 12 are then repositioned in the interior of the tongue any number of times to create a plurality of connecting or non-connecting ablation zones 46
Referring now to Figures 7 through 15, various anatomical views of the tongue and other structures are illustrated The different anatomical structures are as follows' the genioglossus muscle, or body of the tongue is denoted as 48, the geniohyoid muscle is 50, the mylohyoid muscle is 52; the hyoid bone is 54, the tip of the tongue is 56; the ventral surface of the tongue is denoted as 58; the dorsum of the tongue is denoted as 60; the inferior dorsal of the tongue is denoted as 62; the reflex of the vallecula is 64; the lingual follicles are denoted as 66, the uvula is 68; the adenoid area is 70, the lateral border of the tongue is 72, the circumvallate papilla is 74, the palatine tonsil is 76, the pharynx is 78, the redundant pharyngeal tissue is 80, the foramen cecum is 82, the hypoglossal nerve is 84, and the lingual frenum of the tongue is 86
Dorsum 60 is divided into an anterior 2/3 and inferior dorsal 62 The delineation is determined by circumvallate papilla 74 and foramen cecum 82 Inferior dorsal 62 is the dorsal surface inferior to circumvallate papilla 74 and superior reflex of the vallecula 64 Reflex of the vallecula 64 is the deepest portion of the surface of the tongue contiguous with the epiglottis Lingual follicles 66 comprise the lingual tonsil
Catheter 14 can be introduced through the nose or through the oral cavity Electrodes 12 can be inserted into an interior of the tongue through dorsum surface 60, inferior dorsal surface 62, ventral surface 58, tip 56 or geniohyoid muscle 50. Additionally, electrodes may be introduced into an interior of lingual follicles 66 and into adenoid area 70 Once electrodes 12 are positioned, insulation sleeve 32 may be adjusted to provided a desired electromagnetic energy delivery surface 30 for each electrode 12 Ablation zones 46 are created without damaging hypoglossal nerves 84
This creates a larger air way passage and provides a treatment for sleep apnea
In all instances, the positioning of electrodes 12, as well as the creation of ablation zones 46 is such that hypoglossal nerves 84 are not ablated or damaged The ability to swallow and speak is not impaired Referring now to Figures 16 and 17 an open or closed loop feedback system couples sensors 42 to energy source 40 The temperature of the tissue, or of electrode 12 is monitored, and the output power of energy source 40 adjusted accordingly The physician can, if desired, override the closed or open loop system A microprocessor can be included and incoφorated in the closed or open loop system to switch power on and off, as well as modulate the power The closed loop system utilizes a microprocessor 88 to serve as a controller, watch the temperature, adjust the RF power, look at the result, refeed the result, and then modulate the power.
With the use of sensors 42 and the feedback control system a tissue adjacent to RF electrodes 12 can be maintained at a desired temperature for a selected period of time without impeding out. Each RF electrode 12 is connected to resources which generate an independent output for each RF electrode 12. An output maintains a selected energy at RF electrodes 12 for a selected length of time. Current delivered through RF electrodes 12 is measured by current sensor 90. Voltage is measured by voltage sensor 92. Impedance and power are then calculated at power and impedance calculation device 94. These values can then be displayed at user interface and display 96. Signals representative of power and impedance values are received by a controller 98. A control signal is generated by controller 98 that is proportional to the difference between an actual measured value, and a desired value. The control signal is used by power circuits 100 to adjust the power output in an appropriate amount in order to maintain the desired power delivered at respective RF electrodes 12. In a similar manner, temperatures detected at sensors 42 provide feedback for maintaining a selected power. The actual temperatures are measured at temperature measurement device 102, and the temperatures are displayed at user interface and display 96. A control signal is generated by controller 98 that is proportional to the difference between an actual measured temperature, and a desired temperature. The control signal is used by power circuits 100 to adjust the power output in an appropriate amount in order to maintain the desired temperature delivered at the respective sensor. A multiplexer can be included to measure current, voltage and temperature, at the numerous sensors 42, and energy can be delivered to RF electrodes 12 in monopolar or bipolar fashion. Controller 98 can be a digital or analog controller, or a computer with software. When controller 98 is a computer it can include a CPU coupled through a system bus. On this system can be a keyboard, a disk drive, or other non-volatile memory systems, a display, and other peripherals, as are known in the art. Also coupled to the bus is a program memory and a data memory.
User interface and display 96 includes operator controls and a display. Controller 98 can be coupled to imaging systems, including but not limited to ultrasound, CT scanners, X-ray, MRI, mammographic X-ray and the like. Further, direct visualization and tactile imaging can be utilized. The output of current sensor 90 and voltage sensor 92 is used by controller 98 to maintain a selected power level at RF electrodes 12. The amount of RF energy delivered controls the amount of power. A profile of power delivered can be incoφorated in controller 98, and a preset amount of energy to be delivered can also be profiled. Circuitry, software and feedback to controller 98 result in process control, and the maintenance of the selected power that is independent of changes in voltage or current, and are used to change, (i) the selected power, (ii) the duty cycle (on-offand wattage), (iii) bipolar or monopolar energy delivery, and (iv) infusion medium delivery, including flow rate and pressure. These process variables are controlled and varied, while maintaining the desired delivery of power independent of changes in voltage or current, based on temperatures monitored at sensors 42.
Current sensor 90 and voltage sensor 92 are connected to the input of an analog amplifier 104. Analog amplifier 104 can be a conventional differential amplifier circuit for use with sensors 42. The output of analog amplifier 104 is sequentially connected by an analog multiplexer 106 to the input of A/D converter 108. The output of analog amplifier 104 is a voltage which represents the respective sensed temperatures. Digitized amplifier output voltages are supplied by A/D converter 108 to microprocessor 88. Microprocessor 88 may be a type 68HCII available from Motorola. However, it will be appreciated that any suitable microprocessor or general purpose digital or analog computer can be used to calculate impedance or temperature
Microprocessor 88 sequentially receives and stores digital representations of impedance and temperature Each digital value received by microprocessor 88 corresponds to different temperatures and impedances
Calculated power and impedance values can be indicated on user interface and display 96. Alternatively, or in addition to the numerical indication of power or impedance, calculated impedance and power values can be compared by microprocessor 88 with power and impedance limits When the values exceed predetermined power or impedance values, a warning can be given on user interface and display 96, and additionally, the delivery of RF energy can be reduced, modified or interrupted A control signal from microprocessor 88 can modify the power level supplied by energy source 40
Figure 18 illustrates a block diagram of a temperature/impedance feedback system that can be used to control cooling medium flow rate through catheter 14 Electromagnetic energy is delivered to electrode 12 by energy source 44, and applied to tissue A monitor 110 ascertains tissue impedance, based on the energy delivered to tissue, and compares the measured impedance value to a set value. If the measured impedance exceeds the set value a disabling signal 1 12 is transmitted to energy source 40, ceasing further delivery of energy to electrode 12. If measured impedance is within acceptable limits, energy continues to be applied to the tissue During the application of energy to tissue sensor 42 measures the temperature of tissue and/or electrode 12 A comparator 114 receives a signal representative of the measured temperature and compares this value to a pre-set signal representative of the desired temperature
Comparator 114 sends a signal to a flow regulator 116 representing a need for a higher cooling medium flow rate, if the tissue temperature is too high, or to maintain the flow rate if the temperature has not exceeded the desired temperature. The foregoing description of a preferred embodiment of the invention has been presented for purposes of illustration and description It is not intended to be exhaustive or to limit the invention to the precise forms disclosed Obviously, many modifications and variations will be apparent to practitioners skilled in this art It is intended that the scope of the invention be defined by the following claims and their equivalents
What is claimed is:

Claims

1. An apparatus for ablating at least a portion of an interior of a body structure, comprising a catheter including a catheter tissue interface surface and a port formed in the catheter tissue interface surface; an electrode at least partially positioned in the interior of the catheter and configured to be advanced and retracted in and out of the port, the electrode including an electrode electromagnetic energy delivery surface, a cooling element including a cooling medium inlet conduit and a cooling medium exit conduit both extending through an interior of the catheter forming at least a partial cooled catheter tissue interface surface, wherein the electrode electromagnetic energy delivery surface is thermally isolated from the cooling element, an electrode advancement and retraction device at least partially positioned in the interior of the catheter; and a cable coupled to the electrode
2. The apparatus of claim 1, further comprising two or more electrodes with a cooled tissue interface surface of at least 1 cm2 for each electrode
3 The apparatus of claim 1, wherein the cooling medium inlet and exit conduits are configured to cool the cooled catheter tissue interface surface to a temperature of 10 to 30 degrees C
4 The apparatus of claim 1, wherein the electrode is hollow
5 The apparatus of claim 4, further comprising an infusion medium source coupled to the electrode
6 The apparatus of claim 5, wherein the infusion medium source is saline
7 The apparatus of claim 1, further comprising an insulation sleeve positioned in a surrounding relationship to at least a portion of an exterior surface of the electrode
8 The apparatus of claim 1, further comprising a sensor positioned at a distal end of the electrode
9 The apparatus of claim 7, further comprising a first sensor positioned at a distal end of the electrode and a second sensor positioned at a distal end of the insulation sleeve
10 The apparatus of claim 1, further comprising a sensor positioned at an exterior surface of the electrode
11 The apparatus of claim 8, further comprising a sensor positioned at a distal end of the insulation sleeve
12 The apparatus of claim 1, further comprising a sensor positioned at the catheter tissue interface surface
13 The apparatus of claim 1, wherein the electrode is coupled to a RF energy source
14 The apparatus of claim 1, wherein the electrode is coupled to a microwave energy source
15 The apparatus of claim 1, wherein the electrode is advanced into an interior of a tongue through a ventral surface of the tongue.
16 The apparatus of claim 1, wherein the electrode is advanced into an interior of a tongue through an inferior dorsal surface of the tongue
17 The apparatus of claim 1, wherein the electrode is advanced into an interior of a tongue through a dorsum surface of the tongue
18 The apparatus of claim 1, wherein two or more electrodes are each advanced into a different interior region of a tongue
19 An apparatus for ablating at least a portion of an interior of a body structure, comprising- a catheter including a catheter interior, a catheter distal end, a catheter proximal end, a catheter tissue interface surface and a port formed in the catheter, an electrode at least partially positioned in the interior of the catheter and configured to be advanced and retracted to and from the port into an interior of the body structure to deliver sufficient electromagnetic energy to debulk a portion of the interior of the body structure, means for cooling at least a portion of the catheter tissue interface surface sufficiently to reduce a swelling of an exterior surface of the body structure following a delivery of electromagnetic energy to the interior of the body structure, an electrode advancement and retraction device at least partially positioned in the interior of the catheter; and a cable coupled to the electrode
20 The apparatus of claim 19, wherein at least two electrodes are at least partially positioned in the interior of the catheter and each electrode is deployed through a separate port into the interior of the body structure
21 The apparatus of claim 19, wherein the body structure is the tongue
22 The apparatus of claim 19, wherein the exterior surface of the body structure is a dorsum surface of the tongue
23 The apparatus of claim 19, wherein the exterior surface of the body structure is a ventral surface of the tongue
24 The apparatus of claim 19, wherein the exterior surface of the body structure is an inferior dorsal surface of the tongue
25 The apparatus of claim 19, wherein the means for cooling includes an inlet conduit coupled to a cooling medium source and to an outlet conduit
26 The apparatus of claim 25, wherein the inlet conduit and the outlet conduit form a closed loop in the interior of the catheter
27. The apparatus of claim 19, further comprising an electromagnetic energy source coupled to the cable
28 The apparatus of claim 27, wherein the electromagnetic energy source is a RF source 29. The apparatus of claim 19, wherein the means for cooling provides a reduce of a swelling of the exterior surface of a tongue following delivery of electromagnetic energy to an interior of the tongue by at least fifty percent
30 The apparatus of claim 19, wherein the means for cooling provides a reduce of a swelling of the exterior surface of a tongue following delivery of electromagnetic energy to an interior of the tongue by at least seventy-five percent
31 An apparatus for ablating at least a portion of an interior of a tongue, comprising a catheter including a proximal end, a distal end and a catheter tissue interface surface; an electrode at least partially positioned in the interior of the catheter and configured to be advanced and retracted in and out of the catheter, an electrode advancement and retraction device at least partially positioned in the interior of the catheter, means for reducing an adenomas response to a surface of the tongue upon delivery of electromagnetic energy to an interior of the tongue by the electrode, and a cable coupled to the electrode
32 An apparatus for creating an ablation in an interior of a tongue, comprising: a catheter including a proximal end, a distal end and a catheter tissue interface surface, an electrode at least partially positioned in the interior of the catheter and configured to be advanced and retracted in and out of the catheter through an exterior surface of the tongue, wherein the electrode has a RF energy delivery surface positioned in the interior of the tongue configured to form an ablation zone in the interior of the tongue, means for cooling at least a portion of the catheter tissue interface surface and at least a portion of the exterior surface of the tongue while thermally isolating without cooling the RF energy delivery surface, an electrode advancement and retraction device at least partially positioned in the interior of the catheter; and a cable coupled to the electrode
33 A method for treating airway obstructions, comprising. providing an ablation apparatus including a catheter with a catheter tissue interface surface, an electrode at least partially positioned in an interior of the catheter and advanceable and retractable to and from the catheter into an interior of a body structure, and a means for cooling the catheter tissue interface surface, advancing the electrode from the interior of the catheter through a body structure external surface into the interior of the body structure, delivering sufficient energy from the electrode into the interior of the body structure to ablate a portion of the interior of the body structure, cooling the catheter tissue interface surface sufficiently to reduce a swelling of the body structure external surface; and retracting the electrode from the interior of the body structure
34 The method of claim 33, wherein the body structure is the tongue.
35 The method of claim 34, wherein the external body surface is a dorsum surface of the tongue
36 The method of claim 34, wherein the exterior body surface is a ventral surface of the tongue 37 The method of claim 34, wherein the exterior surface is an inferior dorsal surface of the tongue
38 The method of claim 33, wherein sufficient electromagnetic energy is delivered to an interior of the tongue to ablate at least a portion of the interior of tongue with a minimal ablation of a surface of the tongue
39 The method of claim 38, wherein a taste buds on the surface of the tongue are not ablated
40 The method of claim 33, wherein the catheter tissue interface surface is cooled to a temperature of 10 to 30 degrees C
41 The method of claim 33, wherein at least 1 cm2 of the catheter tissue interface surface is cooled
42 The method of claim 33, wherein the ablation apparatus includes two or more electrodes, each advanced and retracted from a separate port formed in the catheter tissue interface surface
43 The method of claim 34, wherein the interior of the tongue is sufficiently ablated to increase a cross-sectional area of an airway passage
PCT/US1997/002834 1996-02-23 1997-02-24 Apparatus and method for treating airway insufficiency in the laryngeal/oral cavity region by electromagnetic energy WO1997030647A1 (en)

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US08/642,053 US5728094A (en) 1996-02-23 1996-05-03 Method and apparatus for treatment of air way obstructions

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Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2012125584A (en) * 2010-12-16 2012-07-05 Biosense Webster (Israel) Ltd System for controlling tissue ablation using temperature sensor
US9011428B2 (en) 2011-03-02 2015-04-21 Arthrocare Corporation Electrosurgical device with internal digestor electrode
US9168082B2 (en) 2011-02-09 2015-10-27 Arthrocare Corporation Fine dissection electrosurgical device
US9254166B2 (en) 2013-01-17 2016-02-09 Arthrocare Corporation Systems and methods for turbinate reduction
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Families Citing this family (48)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6086585A (en) 1995-06-07 2000-07-11 Arthrocare Corporation System and methods for electrosurgical treatment of sleep obstructive disorders
US6063079A (en) 1995-06-07 2000-05-16 Arthrocare Corporation Methods for electrosurgical treatment of turbinates
US6053172A (en) 1995-06-07 2000-04-25 Arthrocare Corporation Systems and methods for electrosurgical sinus surgery
US6109268A (en) 1995-06-07 2000-08-29 Arthrocare Corporation Systems and methods for electrosurgical endoscopic sinus surgery
US6203542B1 (en) 1995-06-07 2001-03-20 Arthrocare Corporation Method for electrosurgical treatment of submucosal tissue
US6159208A (en) 1995-06-07 2000-12-12 Arthocare Corporation System and methods for electrosurgical treatment of obstructive sleep disorders
US6363937B1 (en) 1995-06-07 2002-04-02 Arthrocare Corporation System and methods for electrosurgical treatment of the digestive system
US7022105B1 (en) * 1996-05-06 2006-04-04 Novasys Medical Inc. Treatment of tissue in sphincters, sinuses and orifices
US5921954A (en) 1996-07-10 1999-07-13 Mohr, Jr.; Lawrence G. Treating aneurysms by applying hardening/softening agents to hardenable/softenable substances
US8353908B2 (en) 1996-09-20 2013-01-15 Novasys Medical, Inc. Treatment of tissue in sphincters, sinuses, and orifices
US6338726B1 (en) 1997-02-06 2002-01-15 Vidacare, Inc. Treating urinary and other body strictures
US9023031B2 (en) 1997-08-13 2015-05-05 Verathon Inc. Noninvasive devices, methods, and systems for modifying tissues
US6413254B1 (en) 2000-01-19 2002-07-02 Medtronic Xomed, Inc. Method of tongue reduction by thermal ablation using high intensity focused ultrasound
US8241274B2 (en) 2000-01-19 2012-08-14 Medtronic, Inc. Method for guiding a medical device
US6692450B1 (en) 2000-01-19 2004-02-17 Medtronic Xomed, Inc. Focused ultrasound ablation devices having selectively actuatable ultrasound emitting elements and methods of using the same
US6409720B1 (en) 2000-01-19 2002-06-25 Medtronic Xomed, Inc. Methods of tongue reduction using high intensity focused ultrasound to form an ablated tissue area containing a plurality of lesions
US6595934B1 (en) 2000-01-19 2003-07-22 Medtronic Xomed, Inc. Methods of skin rejuvenation using high intensity focused ultrasound to form an ablated tissue area containing a plurality of lesions
US6361531B1 (en) 2000-01-21 2002-03-26 Medtronic Xomed, Inc. Focused ultrasound ablation devices having malleable handle shafts and methods of using the same
US7306591B2 (en) 2000-10-02 2007-12-11 Novasys Medical, Inc. Apparatus and methods for treating female urinary incontinence
US7381222B2 (en) 2002-12-30 2008-06-03 Quiescence Medical, Inc. Stent for maintaining patency of a body region
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US9687288B2 (en) 2013-09-30 2017-06-27 Arrinex, Inc. Apparatus and methods for treating rhinitis
US9763743B2 (en) 2014-07-25 2017-09-19 Arrinex, Inc. Apparatus and method for treating rhinitis
EP3422965B1 (en) 2016-03-04 2019-12-11 Aerin Medical, Inc. Device for eustachian tube modification
US11116566B2 (en) 2016-12-22 2021-09-14 Aerin Medical, Inc. Soft palate treatment
US11806071B2 (en) 2016-12-22 2023-11-07 Aerin Medical Inc. Soft palate treatment
US11278356B2 (en) 2017-04-28 2022-03-22 Arrinex, Inc. Systems and methods for locating blood vessels in the treatment of rhinitis
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US11096738B2 (en) 2017-05-05 2021-08-24 Aerin Medical, Inc. Treatment of spinal tissue
USD902412S1 (en) 2018-10-31 2020-11-17 Aerin Medical, Inc. Electrosurgery console
USD881904S1 (en) 2018-10-31 2020-04-21 Aerin Medical Inc. Display screen with animated graphical user interface
US11246637B2 (en) 2020-05-11 2022-02-15 Alphatec Spine, Inc. Stimulating targeting needle

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0608609A2 (en) * 1992-12-01 1994-08-03 Cardiac Pathways Corporation Catheter for RF ablation with cooled electrode and method
WO1994026178A1 (en) * 1993-05-14 1994-11-24 Vidamed, Inc. Bph ablation method and apparatus
WO1995018575A1 (en) * 1994-01-06 1995-07-13 Vidamed, Inc. Medical probe apparatus with enhanced rf, resistance heating, and microwave ablation capabilities

Family Cites Families (82)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3901241A (en) * 1973-05-31 1975-08-26 Al Corp Du Disposable cryosurgical instrument
DE2513868C2 (en) * 1974-04-01 1982-11-04 Olympus Optical Co., Ltd., Tokyo Bipolar electrodiathermy forceps
WO1981003271A1 (en) * 1980-05-13 1981-11-26 American Hospital Supply Corp A multipolar electrosurgical device
JPS5755573A (en) * 1980-09-18 1982-04-02 Olympus Optical Co Ltd Cassette storing device
US4565200A (en) * 1980-09-24 1986-01-21 Cosman Eric R Universal lesion and recording electrode system
US4411266A (en) * 1980-09-24 1983-10-25 Cosman Eric R Thermocouple radio frequency lesion electrode
US5542915A (en) * 1992-08-12 1996-08-06 Vidamed, Inc. Thermal mapping catheter with ultrasound probe
US5435805A (en) * 1992-08-12 1995-07-25 Vidamed, Inc. Medical probe device with optical viewing capability
US5370675A (en) * 1992-08-12 1994-12-06 Vidamed, Inc. Medical probe device and method
US5421819A (en) * 1992-08-12 1995-06-06 Vidamed, Inc. Medical probe device
US4601296A (en) * 1983-10-07 1986-07-22 Yeda Research And Development Co., Ltd. Hyperthermia apparatus
US5231995A (en) * 1986-11-14 1993-08-03 Desai Jawahar M Method for catheter mapping and ablation
US5365926A (en) * 1986-11-14 1994-11-22 Desai Jawahar M Catheter for mapping and ablation and method therefor
US5215103A (en) * 1986-11-14 1993-06-01 Desai Jawahar M Catheter for mapping and ablation and method therefor
US4901737A (en) * 1987-04-13 1990-02-20 Toone Kent J Method and therapeutic apparatus for reducing snoring
US4907589A (en) * 1988-04-29 1990-03-13 Cosman Eric R Automatic over-temperature control apparatus for a therapeutic heating device
US4947842A (en) * 1988-09-22 1990-08-14 Medical Engineering And Development Institute, Inc. Method and apparatus for treating tissue with first and second modalities
US4906203A (en) * 1988-10-24 1990-03-06 General Motors Corporation Electrical connector with shorting clip
US4966597A (en) * 1988-11-04 1990-10-30 Cosman Eric R Thermometric cardiac tissue ablation electrode with ultra-sensitive temperature detection
CA1332905C (en) * 1989-03-10 1994-11-08 John A. Murchie Method and apparatus for treatment of snoring
US5125928A (en) * 1989-04-13 1992-06-30 Everest Medical Corporation Ablation catheter with selectively deployable electrodes
US5057107A (en) * 1989-04-13 1991-10-15 Everest Medical Corporation Ablation catheter with selectively deployable electrodes
US4976711A (en) * 1989-04-13 1990-12-11 Everest Medical Corporation Ablation catheter with selectively deployable electrodes
US5078717A (en) * 1989-04-13 1992-01-07 Everest Medical Corporation Ablation catheter with selectively deployable electrodes
US5122137A (en) * 1990-04-27 1992-06-16 Boston Scientific Corporation Temperature controlled rf coagulation
US5083565A (en) * 1990-08-03 1992-01-28 Everest Medical Corporation Electrosurgical instrument for ablating endocardial tissue
US5100423A (en) * 1990-08-21 1992-03-31 Medical Engineering & Development Institute, Inc. Ablation catheter
US5190541A (en) * 1990-10-17 1993-03-02 Boston Scientific Corporation Surgical instrument and method
JPH0714394B2 (en) * 1990-12-10 1995-02-22 ハウメディカ・インコーポレーテッド Device and method for supplying laser energy to stromal cells
US5094233A (en) * 1991-01-11 1992-03-10 Brennan Louis G Turbinate sheath device
US5409453A (en) * 1992-08-12 1995-04-25 Vidamed, Inc. Steerable medical probe with stylets
AU1899292A (en) * 1991-05-24 1993-01-08 Ep Technologies Inc Combination monophasic action potential/ablation catheter and high-performance filter system
US5383917A (en) * 1991-07-05 1995-01-24 Jawahar M. Desai Device and method for multi-phase radio-frequency ablation
DE69233091T2 (en) * 1991-11-08 2004-05-06 Boston Scientific Ltd., St. Michael ABLATION ELECTRODE WITH INSULATED TEMPERATURE MEASURING ELEMENT
US5363861A (en) * 1991-11-08 1994-11-15 Ep Technologies, Inc. Electrode tip assembly with variable resistance to bending
US5328467A (en) * 1991-11-08 1994-07-12 Ep Technologies, Inc. Catheter having a torque transmitting sleeve
US5275162A (en) * 1991-11-08 1994-01-04 Ep Technologies, Inc. Valve mapping catheter
AU3128593A (en) * 1991-11-08 1993-06-07 Ep Technologies Inc Radiofrequency ablation with phase sensitive power detection
US5257451A (en) * 1991-11-08 1993-11-02 Ep Technologies, Inc. Method of making durable sleeve for enclosing a bendable electrode tip assembly
US5197964A (en) * 1991-11-12 1993-03-30 Everest Medical Corporation Bipolar instrument utilizing one stationary electrode and one movable electrode
US5197963A (en) * 1991-12-02 1993-03-30 Everest Medical Corporation Electrosurgical instrument with extendable sheath for irrigation and aspiration
US5281217A (en) * 1992-04-13 1994-01-25 Ep Technologies, Inc. Steerable antenna systems for cardiac ablation that minimize tissue damage and blood coagulation due to conductive heating patterns
WO1993020768A1 (en) * 1992-04-13 1993-10-28 Ep Technologies, Inc. Steerable microwave antenna systems for cardiac ablation
US5314466A (en) * 1992-04-13 1994-05-24 Ep Technologies, Inc. Articulated unidirectional microwave antenna systems for cardiac ablation
WO1993020886A1 (en) * 1992-04-13 1993-10-28 Ep Technologies, Inc. Articulated systems for cardiac ablation
US5277201A (en) * 1992-05-01 1994-01-11 Vesta Medical, Inc. Endometrial ablation apparatus and method
US5281218A (en) * 1992-06-05 1994-01-25 Cardiac Pathways Corporation Catheter having needle electrode for radiofrequency ablation
US5542916A (en) * 1992-08-12 1996-08-06 Vidamed, Inc. Dual-channel RF power delivery system
US5514131A (en) * 1992-08-12 1996-05-07 Stuart D. Edwards Method for the ablation treatment of the uvula
US5486161A (en) * 1993-02-02 1996-01-23 Zomed International Medical probe device and method
US5556377A (en) * 1992-08-12 1996-09-17 Vidamed, Inc. Medical probe apparatus with laser and/or microwave monolithic integrated circuit probe
US5484400A (en) * 1992-08-12 1996-01-16 Vidamed, Inc. Dual channel RF delivery system
US5456662A (en) * 1993-02-02 1995-10-10 Edwards; Stuart D. Method for reducing snoring by RF ablation of the uvula
US5470308A (en) * 1992-08-12 1995-11-28 Vidamed, Inc. Medical probe with biopsy stylet
US5309910A (en) * 1992-09-25 1994-05-10 Ep Technologies, Inc. Cardiac mapping and ablation systems
US5549108A (en) * 1992-09-25 1996-08-27 Ep Technologies, Inc. Cardiac mapping and ablation systems
US5401272A (en) * 1992-09-25 1995-03-28 Envision Surgical Systems, Inc. Multimodality probe with extendable bipolar electrodes
US5313943A (en) * 1992-09-25 1994-05-24 Ep Technologies, Inc. Catheters and methods for performing cardiac diagnosis and treatment
US5293869A (en) * 1992-09-25 1994-03-15 Ep Technologies, Inc. Cardiac probe with dynamic support for maintaining constant surface contact during heart systole and diastole
US5471982A (en) * 1992-09-29 1995-12-05 Ep Technologies, Inc. Cardiac mapping and ablation systems
US5334196A (en) * 1992-10-05 1994-08-02 United States Surgical Corporation Endoscopic fastener remover
WO1994010924A1 (en) * 1992-11-13 1994-05-26 American Cardiac Ablation Co., Inc. Fluid cooled electrosurgical probe
US5545161A (en) * 1992-12-01 1996-08-13 Cardiac Pathways Corporation Catheter for RF ablation having cooled electrode with electrically insulated sleeve
JPH08506259A (en) * 1993-02-02 1996-07-09 ヴィーダメッド インコーポレイテッド Transurethral needle excision device and method
US5403311A (en) * 1993-03-29 1995-04-04 Boston Scientific Corporation Electro-coagulation and ablation and other electrotherapeutic treatments of body tissue
AU686173B2 (en) * 1993-06-10 1998-02-05 Mir A. Imran Transurethral radio frequency ablation apparatus
US5545193A (en) * 1993-10-15 1996-08-13 Ep Technologies, Inc. Helically wound radio-frequency emitting electrodes for creating lesions in body tissue
US5433739A (en) * 1993-11-02 1995-07-18 Sluijter; Menno E. Method and apparatus for heating an intervertebral disc for relief of back pain
US5472441A (en) * 1993-11-08 1995-12-05 Zomed International Device for treating cancer and non-malignant tumors and methods
US5507743A (en) * 1993-11-08 1996-04-16 Zomed International Coiled RF electrode treatment apparatus
US5599345A (en) * 1993-11-08 1997-02-04 Zomed International, Inc. RF treatment apparatus
US5536267A (en) * 1993-11-08 1996-07-16 Zomed International Multiple electrode ablation apparatus
US5458597A (en) * 1993-11-08 1995-10-17 Zomed International Device for treating cancer and non-malignant tumors and methods
US5423812A (en) * 1994-01-31 1995-06-13 Ellman; Alan G. Electrosurgical stripping electrode for palatopharynx tissue
US5458596A (en) * 1994-05-06 1995-10-17 Dorsal Orthopedic Corporation Method and apparatus for controlled contraction of soft tissue
US5505730A (en) * 1994-06-24 1996-04-09 Stuart D. Edwards Thin layer ablation apparatus
US5609151A (en) * 1994-09-08 1997-03-11 Medtronic, Inc. Method for R-F ablation
US5545171A (en) * 1994-09-22 1996-08-13 Vidamed, Inc. Anastomosis catheter
US5558673A (en) * 1994-09-30 1996-09-24 Vidamed, Inc. Medical probe device and method having a flexible resilient tape stylet
US5514130A (en) * 1994-10-11 1996-05-07 Dorsal Med International RF apparatus for controlled depth ablation of soft tissue
US5868740A (en) * 1995-03-24 1999-02-09 Board Of Regents-Univ Of Nebraska Method for volumetric tissue ablation
US5624439A (en) * 1995-08-18 1997-04-29 Somnus Medical Technologies, Inc. Method and apparatus for treatment of air way obstructions

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0608609A2 (en) * 1992-12-01 1994-08-03 Cardiac Pathways Corporation Catheter for RF ablation with cooled electrode and method
WO1994026178A1 (en) * 1993-05-14 1994-11-24 Vidamed, Inc. Bph ablation method and apparatus
WO1995018575A1 (en) * 1994-01-06 1995-07-13 Vidamed, Inc. Medical probe apparatus with enhanced rf, resistance heating, and microwave ablation capabilities

Cited By (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US10448992B2 (en) 2010-10-22 2019-10-22 Arthrocare Corporation Electrosurgical system with device specific operational parameters
US9993285B2 (en) 2010-12-16 2018-06-12 Biosense Webster (Israel) Ltd. System for controlling tissue ablation using temperature sensors
EP2486884A1 (en) * 2010-12-16 2012-08-15 Biosense Webster (Israel), Ltd. System for controlling tissue ablation using temperature sensors
US11382680B2 (en) 2010-12-16 2022-07-12 Biosense Webster (Israel) Ltd. System for controlling tissue ablation using temperature sensors
JP2012125584A (en) * 2010-12-16 2012-07-05 Biosense Webster (Israel) Ltd System for controlling tissue ablation using temperature sensor
US10729485B2 (en) 2010-12-16 2020-08-04 Biosense Webster (Israel) Ltd. System for controlling tissue ablation using temperature sensors
EP3034024A1 (en) * 2010-12-16 2016-06-22 Biosense Webster (Israel) Ltd. System for controlling tissue ablation using temperature sensors
US10206733B2 (en) 2010-12-16 2019-02-19 Biosense Webster (Israel) Ltd. System for controlling tissue ablation using temperature sensors
US9737353B2 (en) 2010-12-16 2017-08-22 Biosense Webster (Israel) Ltd. System for controlling tissue ablation using temperature sensors
US9168082B2 (en) 2011-02-09 2015-10-27 Arthrocare Corporation Fine dissection electrosurgical device
US9271784B2 (en) 2011-02-09 2016-03-01 Arthrocare Corporation Fine dissection electrosurgical device
US9011428B2 (en) 2011-03-02 2015-04-21 Arthrocare Corporation Electrosurgical device with internal digestor electrode
US9788882B2 (en) 2011-09-08 2017-10-17 Arthrocare Corporation Plasma bipolar forceps
US9649144B2 (en) 2013-01-17 2017-05-16 Arthrocare Corporation Systems and methods for turbinate reduction
US9254166B2 (en) 2013-01-17 2016-02-09 Arthrocare Corporation Systems and methods for turbinate reduction

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