US20100215571A1 - Polymer based radionuclide containing particulate material - Google Patents

Polymer based radionuclide containing particulate material Download PDF

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US20100215571A1
US20100215571A1 US12/712,843 US71284310A US2010215571A1 US 20100215571 A1 US20100215571 A1 US 20100215571A1 US 71284310 A US71284310 A US 71284310A US 2010215571 A1 US2010215571 A1 US 2010215571A1
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particulate material
radionuclide
yttrium
polymeric matrix
material according
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Bruce Nathaniel Gray
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Sirtex Medical Pty Ltd
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Sirtex Medical Pty Ltd
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Priority to US13/968,921 priority patent/US20140099255A1/en
Priority to US16/280,171 priority patent/US11097021B2/en
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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K51/00Preparations containing radioactive substances for use in therapy or testing in vivo
    • A61K51/12Preparations containing radioactive substances for use in therapy or testing in vivo characterised by a special physical form, e.g. emulsion, microcapsules, liposomes, characterized by a special physical form, e.g. emulsions, dispersions, microcapsules
    • A61K51/1241Preparations containing radioactive substances for use in therapy or testing in vivo characterised by a special physical form, e.g. emulsion, microcapsules, liposomes, characterized by a special physical form, e.g. emulsions, dispersions, microcapsules particles, powders, lyophilizates, adsorbates, e.g. polymers or resins for adsorption or ion-exchange resins
    • A61K51/1244Preparations containing radioactive substances for use in therapy or testing in vivo characterised by a special physical form, e.g. emulsion, microcapsules, liposomes, characterized by a special physical form, e.g. emulsions, dispersions, microcapsules particles, powders, lyophilizates, adsorbates, e.g. polymers or resins for adsorption or ion-exchange resins microparticles or nanoparticles, e.g. polymeric nanoparticles
    • A61K51/1251Preparations containing radioactive substances for use in therapy or testing in vivo characterised by a special physical form, e.g. emulsion, microcapsules, liposomes, characterized by a special physical form, e.g. emulsions, dispersions, microcapsules particles, powders, lyophilizates, adsorbates, e.g. polymers or resins for adsorption or ion-exchange resins microparticles or nanoparticles, e.g. polymeric nanoparticles micro- or nanospheres, micro- or nanobeads, micro- or nanocapsules
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K51/00Preparations containing radioactive substances for use in therapy or testing in vivo
    • A61K51/02Preparations containing radioactive substances for use in therapy or testing in vivo characterised by the carrier, i.e. characterised by the agent or material covalently linked or complexing the radioactive nucleus
    • A61K51/04Organic compounds
    • A61K51/06Macromolecular compounds, carriers being organic macromolecular compounds, i.e. organic oligomeric, polymeric, dendrimeric molecules
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K51/00Preparations containing radioactive substances for use in therapy or testing in vivo
    • A61K51/12Preparations containing radioactive substances for use in therapy or testing in vivo characterised by a special physical form, e.g. emulsion, microcapsules, liposomes, characterized by a special physical form, e.g. emulsions, dispersions, microcapsules
    • A61K51/1241Preparations containing radioactive substances for use in therapy or testing in vivo characterised by a special physical form, e.g. emulsion, microcapsules, liposomes, characterized by a special physical form, e.g. emulsions, dispersions, microcapsules particles, powders, lyophilizates, adsorbates, e.g. polymers or resins for adsorption or ion-exchange resins
    • A61K51/1255Granulates, agglomerates, microspheres
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P1/00Drugs for disorders of the alimentary tract or the digestive system
    • A61P1/16Drugs for disorders of the alimentary tract or the digestive system for liver or gallbladder disorders, e.g. hepatoprotective agents, cholagogues, litholytics
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P35/00Antineoplastic agents

Definitions

  • This invention relates to a particulate material that comprises a polymer, particularly a polymer and a radionuclide, to a method for the production thereof, and to methods for the use of this particulate material.
  • this invention relates to microspheres which comprise a polymer and a radionuclide such as radioactive yttrium, and to the use of these microspheres in the treatment of cancer in humans and other mammals.
  • the particulate material of this invention is designed to be administered into the arterial blood supply of an organ to be treated, whereby it becomes entrapped in the small blood vessels of target organ and irradiates it.
  • An alternate form of administration is to inject the polymer based particulate material directly into the target organ or a solid tumour to be treated.
  • the particulate material of the present invention therefore has utility in the treatment of various forms of cancer and tumours, but particularly in the treatment of primary and secondary cancer of the liver and the brain. It is to be understood that the particulate material of the invention is not limited to radioactive microspheres, but may be extended to other radioactive polymeric particles which are suitable for use in the treatment methods described herein.
  • SIRT Selective Internal Radiation Therapy
  • the radiation is delivered preferentially to the cancer within the target organ.
  • the radiation is slowly and continually delivered as the radionuclide decays.
  • vasoactive substances such as Angiotensin-2
  • microspheres or other small particles When microspheres or other small particles are administered into the arterial blood supply of a target organ, it is desirable to have them of a size, shape and density that results in the optimal homogeneous distribution within the target organ. If the microspheres or small particles do not distribute evenly, and as a function of the absolute arterial blood flow, then they may accumulate in excessive numbers in some areas and cause focal areas of excessive radiation. It has been shown that microspheres of approximately 25-50 micron in diameter have the best distribution characteristics when administered into the arterial circulation of the liver (Meade, V. et al.; Distribution of different sized microspheres in experimental hepatic tumours. Europ. J. Cancer & Clin. Oncol. 1987, 23:23-41).
  • the radiation emitted should be of high energy and short range. This ensures that the energy emitted will be deposited into the tissues immediately around the particulate material and not into tissues which are not the target of the radiation treatment. In this treatment mode, it is desirable to have high energy but short penetration beta-radiation which will confine the radiation effects to the immediate vicinity of the particulate material.
  • radionuclides that can be incorporated into microspheres that can be used for SIRT.
  • Y-90 the unstable isotope of yttrium
  • Yttrium-90 decays with a half life of 64 hours, while emitting a high energy pure beta radiation.
  • radionuclides may also be used in place of yttrium-90 of which the isotopes of holmium, samarium, iodine, iridium, phosphorus, rhenium are some examples.
  • Ceramic particles have been produced that are either coated with or contain radionuclides. However, the presence of other radioactive substances that are not required for the radiation treatment of the target tissue, has then unwanted and deleterious radiation effects may occur. It is therefore desirable to have particulate material of such a composition that it only contains the single desired radionuclide.
  • yttrium-90 containing microspheres In the earliest clinical use of yttrium-90 containing microspheres, the yttrium was incorporated into a polymeric matrix that was formulated into microspheres. While these microspheres were of an appropriate density to ensure good distribution characteristics in the liver, there were several instances in which the yttrium-90 leached from the microspheres and caused inappropriate radiation of other tissues. Attempts to incorporate other radionuclides such as holmium into resin or polymer based materials have resulted in leaching of the radionuclide and this has resulted in severe consequences for the patients that have been treated with the product.
  • a radioactive microsphere comprising a biologically compatible glass material containing a beta- or gamma-radiation emitting radioisotope such as yttrium-90 distributed throughout the glass.
  • These microspheres are solid glass and contain the element yttrium-89 that can be activated to the radionuclide yttrium-90 by placing the microspheres in a neutron beam.
  • These glass microspheres have several disadvantages including being of a higher specific gravity than is desirable and containing other elements such as alumina and silica which are activated to undesirable radionuclides when placed in a neutron beam.
  • the present invention provides a particulate material having a diameter in the range of from 5 to 200 microns comprising a polymeric matrix and a stably incorporated radionuclide.
  • the invention provides a process for the production of a particulate material having a diameter in the range of from 5 to 200 microns comprising the step of combining a polymeric matrix and a radionuclide for a time and under conditions sufficient to stably incorporate the radionuclide in the matrix to produce a particulate material having a diameter in the range of from 5 to 200 microns.
  • the present invention provides a method of radiation therapy of a patient, which comprises administration to the patient of a particulate material having a diameter in the range of from 5 to 200 microns comprising a polymeric matrix and a stably incorporated radionuclide.
  • the present invention also provides for the use of particulate material having a diameter in the range of from 5 to 200 microns comprising a polymeric matrix and a stably incorporated radionuclide in the radiation therapy of a patient.
  • FIG. 1 depicts pH results when the phosphate concentration the solution used to precipitate the radionuclide was varied; FIG. 1 further shows pH results measured when a microsphere suspension is washed with a phosphate buffer having pH of 7.
  • references to the radionuclide being stably incorporated into particulate material or polymeric matrix are to be understood as referring to incorporation of the radionuclide so that it does not substantially leach out of the particulate material under physiological conditions such as in the patient or in storage.
  • the radionuclide is incorporated by precipitation into a polymeric matrix.
  • the leaching of radionuclides from the polymeric matrix can cause non-specific radiation of the patient and damage surrounding tissue.
  • the amount of leaching is less than 5%, more preferably less than 4%, 3%, 2%, 1% or 0.4%.
  • One method of assessing leaching is by adjusting a sample to pH 7.0 and agitating in a water bath at 37° C. for 20 minutes. A 100 ⁇ L sample is counted for beta emission in a Geiger-Müller counter. Another representative 100 ⁇ L sample is filtered through a 0.22 ⁇ m filter and the filtrate counted for beta emission in the Geiger-Müller counter. The percent unbound radionuclide is calculated by:
  • the radionuclide can be stably incorporated into the polymeric matrix by precipitating it as an insoluble salt.
  • the radionuclide used is yttrium-90 the yttrium is preferably precipitated as a phosphate salt.
  • the present invention also extends to precipitation of the radionuclide as other insoluble salts including, for example, carbonate and bicarbonate salts.
  • the radionuclide which is incorporated into the polymeric matrix in accordance with the present invention is preferably yttrium-90, but may also be any other suitable radionuclide which can be precipitated in solution, of which the isotopes of holmium, samarium, iodine, phosphorous, iridium and rhenium are some examples.
  • the particulate material is a microsphere.
  • microsphere is used in this specification as an example of a particulate material, it is not intended to limit the invention to microspheres, as the person skilled in the art will appreciate that the shape of the particulate material while preferably without sharp edges or points that could damage the patients arteries or catch in unintended locations, is not limited to spheres. Nor should the term microsphere be limited to spheres.
  • the particulate material is substantially spherical, but need not be regular or symmetrical in shape.
  • the polymeric matrix is partially cross linked.
  • the present invention provides a particulate material as described above in which the polymeric matrix is an ion exchange resin, particularly a cation exchange resin.
  • the ion exchange resin comprises a partially cross linked aliphatic polymer, including polystyrene.
  • a particularly preferred cation exchange resin is the styrene/divinylbenzene copolymer resin commercially available under the trade name Aminex 50W-X4 (Biorad, Hercules, Calif.). However, there are many other commercially available cation exchange resins which are suitable.
  • the particulate material is preferably low density, more particularly a density below 3.0 g/cc, even more preferably below 2.8 g/cc, 2.5 g/cc, 2.3 g/cc, 2.2 g/cc or 2.0 g/cc.
  • the ideal particle for injection into the blood stream would have a very narrow size range with a SD of less than 5%, so as to assist in even distribution of the microspheres within the target organ, particularly within the liver and would be sized in the range 5-200 micron preferably 15-100 micron and preferably 20-50 micron, and most preferably 30-35 micron.
  • the particulate material manufactured so that the suspending solution has a pH less than 9. If the pH is greater than 9 then this may result in irritation of the blood vessels when the suspension is injected into the artery or target organ.
  • the pH is less than 8.5 or 8.0 and more preferably less than 7.5.
  • the present invention particularly provides a method for the production of a radioactive particulate material comprising a polymeric matrix as described above, characterised by the steps of:
  • the method of the present invention is carried out by firstly irradiating yttria (yttrium oxide) in a neutron beam to activate yttria to the isotope yttrium-90.
  • the yttrium-90 oxide is then solubilised, for example as yttrium-90 sulphate solution.
  • the ion exchange resin is preferably provided in the form of an aqueous slurry of microspheres of ion exchange resin having a particle size 30 to 35 microns, and the yttrium-90 sulphate solution is added to the slurry to absorb the yttrium-90 into the ion exchange resin microspheres.
  • the yttrium-90 is precipitated as a phosphate salt, for example by addition of tri-sodium phosphate solution, to stably incorporate the yttrium-90 into the microspheres.
  • the particulate material may be combined with a solution of the radionuclide or the salt of the radionuclide may be combined with the particulate matter, in a solution suitable for solubilising the radionuclide.
  • Alternate sources of yttrium-90 may be used in the production of these microspheres.
  • a highly pure source of yttrium-90 may be obtained by extracting yttrium-90 from a parent nuclide and using this extracted yttrium-90 as the source of the soluble yttrium salt that is then incorporated into the polymeric matrix of the microspheres.
  • the microspheres may be washed to remove any un-precipitated or loosely adherent radionuclide.
  • the present invention provides a suspension of the required pH by precipitating the yttrium with a tri-sodium phosphate solution at a concentration containing at least a three-fold excess of phosphate ion, but not exceeding a 30-fold excess of phosphate ion, and then washing the microspheres with de-ionised water.
  • Another approach which ensures that the pH of the microsphere suspension is in the desired range is to wash the resin with a phosphate buffer solution of the desired pH.
  • the present invention also provides a method of radiation therapy of a human or other mammalian patient that comprises administration to the patient of particulate material as described above.
  • administration may be by any suitable means and preferably by delivery to the relevant artery.
  • administration is preferably by laparotomy to expose the hepatic artery or by insertion of a catheter into the hepatic artery via the femoral, or brachial artery.
  • Pre or co-administration of another agent may prepare the tumour for receipt of the particulate material, for example a vasoactive substance, such as angiotension-2 to redirect arterial blood flow into the tumour. Delivery of the particulate matter may be by single or multiple doses, until the desired level of radiation is reached.
  • Yttrium (90Y) labelled microspheres are made in the form of a sterile, pyrogen free suspension of resin beads labelled with yttrium (90Y) phosphate.
  • the resin beads consist of sulphuric acid groups attached to a styrene divinylbenzene copolymer lattice.
  • Yttrium oxide is irradiated to produce yttrium-90 from the nuclear reaction Y-89 (n, ⁇ ) Y-90.
  • Yttrium-90 has a half life of 64 hours.
  • the yttrium (90Y) oxide is then dissolved in 0.1M sulphuric acid with gentle heating and stirring to form a clear, colourless solution of yttrium (90Y) sulphate.
  • Symmetrical microspheres of ion exchange resin (Aminex 50W-X4 cation exchange resin; supplied by ‘Bio-Rad Cat #1474313’) with a diameter of approximately 30 to 35 microns are added to water (Water for Injections BP) to form a slurry that is then transferred into a reaction vessel.
  • Yttrium (90Y) sulphate solution is added to the reaction vessel and the mixture stirred at a speed sufficient to ensure homogeneity to absorb the yttrium (90Y) solution into the resin-based microspheres.
  • Tri-sodium phosphate solution (1.25% w/v) is then added to the reaction vessel with further stirring to precipitate the radionuclide as yttrium (90Y) phosphate.
  • microspheres are then washed with a phosphate buffer solution until the pH of the wash solution is less than 9 and preferable less than 8.5. Following washing of the microspheres with water (Water for Injection BP), the microspheres are resuspended and diluted (if necessary) with water (Water for Injections BP) to give a light brown suspension having an activity of 3000 MBq 10%.
  • Water for Injection BP Water for Injections BP
  • the resin-based yttrium microspheres produced by the above method have 0.01-0.4% unbound or unprecipitated 90Y when tested in the following leaching test:
  • a 5 ⁇ L sample is diluted with water to 5 mL, adjusted to pH 7.0 and agitated in a water bath at 37° C. for 20 minutes.
  • a 100 ⁇ L sample is counted for beta emission in a Geiger-Müller counter.
  • Another representative 100 ⁇ L sample is filtered through a 0.22 ⁇ m filter and the filtrate counted for beta emission in the Geiger-Müller counter.
  • the percent unbound 90Y is calculated by:
  • FIG. 1 The effect of phosphate concentration in the precipitation solution, and the effects of washing with phosphate buffer on the pH of a microsphere suspension are shown in the attached FIG. 1 which sets out the results of a number of experiments.
  • SIRT Selective Internal Radiation Therapy
  • microspheres Repeated injections of microspheres are made until the desired radiation level in the normal liver parenchyma is reached.
  • an amount of yttrium-90 activity that will result in an inferred radiation dose to the normal liver of approximately 80 Gy may be delivered. Because the radiation from SIRT is delivered as a series of discrete point sources, the dose of 80 Gy is an average dose with many normal liver parenchymal cells receiving much less than that dose.
  • tumour response by objective parameters including reduction in tumour volume and serial estimations of serum carcino-embryonic antigen (CEA) levels, is an acceptable index of the ability of the treatment to alter the biological behaviour of the tumour.
  • CEA serum carcino-embryonic antigen

Abstract

The invention relates to a particulate material having a diameter in the range of from 5 to 200 microns comprising polymeric matrix and stably incorporated radionuclide, processes for its production and a method of radiation therapy utilising the particulate material.

Description

  • This application is a continuation of application Ser. No. 11/743,530, filed May 2, 2007, which is a continuation of Ser. No. 10/173,496, filed Jun. 17, 2002, which is a continuation of PCT/AU01/01370, filed Oct. 25, 2001, which applications are incorporated herein by reference in their entirety.
  • FIELD OF THE INVENTION
  • This invention relates to a particulate material that comprises a polymer, particularly a polymer and a radionuclide, to a method for the production thereof, and to methods for the use of this particulate material.
  • In on particular aspect, this invention relates to microspheres which comprise a polymer and a radionuclide such as radioactive yttrium, and to the use of these microspheres in the treatment of cancer in humans and other mammals.
  • The particulate material of this invention is designed to be administered into the arterial blood supply of an organ to be treated, whereby it becomes entrapped in the small blood vessels of target organ and irradiates it. An alternate form of administration is to inject the polymer based particulate material directly into the target organ or a solid tumour to be treated.
  • The particulate material of the present invention therefore has utility in the treatment of various forms of cancer and tumours, but particularly in the treatment of primary and secondary cancer of the liver and the brain. It is to be understood that the particulate material of the invention is not limited to radioactive microspheres, but may be extended to other radioactive polymeric particles which are suitable for use in the treatment methods described herein.
  • BACKGROUND OF THE INVENTION
  • Many previous attempts have been made to locally administer radioactive materials to patients with cancer as a form of therapy. In some of these, the radioactive materials have been incorporated into small particles, seeds, wires and similar related configurations that can be directly implanted into the cancer. When radioactive particles are administered into the blood supply of the target organ, the technique has become known as Selective Internal Radiation Therapy (SIRT). Generally, the main form of application of SIRT has been its use to treat cancers in the liver.
  • There are many potential advantages of SIRT over conventional, external beam radiotherapy. Firstly, the radiation is delivered preferentially to the cancer within the target organ. Secondly, the radiation is slowly and continually delivered as the radionuclide decays. Thirdly, by manipulating the arterial blood supply with vasoactive substances (such as Angiotensin-2), it is possible to enhance the percentage of radioactive particles that go to the cancerous part of the organ, as opposed to the healthy normal tissues. This has the effect of preferentially increasing the radiation dose to the cancer while maintaining the radiation dose to the normal tissues at a lower level (Burton, M. A. et al.; Effect of Angiotensin-2 on blood flow in the transplanted sheep squamous cell carcinoma. Europ. J. Cancer Clin. Oncol. 1988, 24(8):1373-1376).
  • When microspheres or other small particles are administered into the arterial blood supply of a target organ, it is desirable to have them of a size, shape and density that results in the optimal homogeneous distribution within the target organ. If the microspheres or small particles do not distribute evenly, and as a function of the absolute arterial blood flow, then they may accumulate in excessive numbers in some areas and cause focal areas of excessive radiation. It has been shown that microspheres of approximately 25-50 micron in diameter have the best distribution characteristics when administered into the arterial circulation of the liver (Meade, V. et al.; Distribution of different sized microspheres in experimental hepatic tumours. Europ. J. Cancer & Clin. Oncol. 1987, 23:23-41).
  • If the particles are too dense or heavy, then they will not distribute evenly in the target organ and will accumulate in excessive concentrations in areas that do not contain the cancer. It has been shown that solid, heavy microspheres distribute poorly within the parenchyma of the liver when injected into the arterial supply of the liver. This, in turn, decreases the effective radiation reaching the cancer in the target organ, which decreases the ability of the radioactive microspheres to kill the tumour cells. In contrast, lighter microspheres with a specific gravity of the order of 2.0 distribute well within the liver (Burton, M. A. et al.; Selective International Radiation Therapy; Distribution of radiation in the liver. Europ. J. Cancer Clin. Oncol. 1989, 25:1487-1491).
  • For radioactive particulate material to be used successfully for the treatment of cancer, the radiation emitted should be of high energy and short range. This ensures that the energy emitted will be deposited into the tissues immediately around the particulate material and not into tissues which are not the target of the radiation treatment. In this treatment mode, it is desirable to have high energy but short penetration beta-radiation which will confine the radiation effects to the immediate vicinity of the particulate material. There are many radionuclides that can be incorporated into microspheres that can be used for SIRT. Of particular suitability for use in this form of treatment is the unstable isotope of yttrium (Y-90). Yttrium-90 decays with a half life of 64 hours, while emitting a high energy pure beta radiation. However, other radionuclides may also be used in place of yttrium-90 of which the isotopes of holmium, samarium, iodine, iridium, phosphorus, rhenium are some examples.
  • Ceramic particles have been produced that are either coated with or contain radionuclides. However, the presence of other radioactive substances that are not required for the radiation treatment of the target tissue, has then unwanted and deleterious radiation effects may occur. It is therefore desirable to have particulate material of such a composition that it only contains the single desired radionuclide.
  • In the earliest clinical use of yttrium-90 containing microspheres, the yttrium was incorporated into a polymeric matrix that was formulated into microspheres. While these microspheres were of an appropriate density to ensure good distribution characteristics in the liver, there were several instances in which the yttrium-90 leached from the microspheres and caused inappropriate radiation of other tissues. Attempts to incorporate other radionuclides such as holmium into resin or polymer based materials have resulted in leaching of the radionuclide and this has resulted in severe consequences for the patients that have been treated with the product.
  • In one attempt to overcome the problem of leaching, a radioactive microsphere comprising a biologically compatible glass material containing a beta- or gamma-radiation emitting radioisotope such as yttrium-90 distributed throughout the glass, has been developed (International Patent Publication No. WO 86/03124). These microspheres are solid glass and contain the element yttrium-89 that can be activated to the radionuclide yttrium-90 by placing the microspheres in a neutron beam. These glass microspheres have several disadvantages including being of a higher specific gravity than is desirable and containing other elements such as alumina and silica which are activated to undesirable radionuclides when placed in a neutron beam.
  • Another approach has been focussed on the use of small hollow or cup-shaped ceramic particles or microspheres, wherein the ceramic base material consists or comprises yttria or the like (International Patent Publication No. WO 95/19841). These microspheres were developed to overcome the problem of high density associated with the solid glass microspheres described in International Patent Publication No. WO86/03124.
  • SUMMARY OF THE INVENTION
  • In one aspect the present invention provides a particulate material having a diameter in the range of from 5 to 200 microns comprising a polymeric matrix and a stably incorporated radionuclide.
  • In another aspect, the invention provides a process for the production of a particulate material having a diameter in the range of from 5 to 200 microns comprising the step of combining a polymeric matrix and a radionuclide for a time and under conditions sufficient to stably incorporate the radionuclide in the matrix to produce a particulate material having a diameter in the range of from 5 to 200 microns.
  • In another aspect, the present invention provides a method of radiation therapy of a patient, which comprises administration to the patient of a particulate material having a diameter in the range of from 5 to 200 microns comprising a polymeric matrix and a stably incorporated radionuclide.
  • The present invention also provides for the use of particulate material having a diameter in the range of from 5 to 200 microns comprising a polymeric matrix and a stably incorporated radionuclide in the radiation therapy of a patient.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • Further objected and advantages of the present invention will be more fully appreciated from a reading of the detailed description when considered with the accompanying drawing wherein:
  • FIG. 1 depicts pH results when the phosphate concentration the solution used to precipitate the radionuclide was varied; FIG. 1 further shows pH results measured when a microsphere suspension is washed with a phosphate buffer having pH of 7.
  • DETAILED DESCRIPTION OF THE INVENTION
  • As used herein, references to the radionuclide being stably incorporated into particulate material or polymeric matrix are to be understood as referring to incorporation of the radionuclide so that it does not substantially leach out of the particulate material under physiological conditions such as in the patient or in storage. In a preferred embodiment the radionuclide is incorporated by precipitation into a polymeric matrix.
  • The leaching of radionuclides from the polymeric matrix can cause non-specific radiation of the patient and damage surrounding tissue. Preferably the amount of leaching is less than 5%, more preferably less than 4%, 3%, 2%, 1% or 0.4%. One method of assessing leaching is by adjusting a sample to pH 7.0 and agitating in a water bath at 37° C. for 20 minutes. A 100 μL sample is counted for beta emission in a Geiger-Müller counter. Another representative 100 μL sample is filtered through a 0.22 μm filter and the filtrate counted for beta emission in the Geiger-Müller counter. The percent unbound radionuclide is calculated by:
  • FiltrateCount SampleCount × 100 = % UnboundRadionuclide
  • The radionuclide can be stably incorporated into the polymeric matrix by precipitating it as an insoluble salt. Where the radionuclide used is yttrium-90 the yttrium is preferably precipitated as a phosphate salt. However the present invention also extends to precipitation of the radionuclide as other insoluble salts including, for example, carbonate and bicarbonate salts. The radionuclide which is incorporated into the polymeric matrix in accordance with the present invention is preferably yttrium-90, but may also be any other suitable radionuclide which can be precipitated in solution, of which the isotopes of holmium, samarium, iodine, phosphorous, iridium and rhenium are some examples.
  • In a preferred embodiment the particulate material is a microsphere. The term microsphere is used in this specification as an example of a particulate material, it is not intended to limit the invention to microspheres, as the person skilled in the art will appreciate that the shape of the particulate material while preferably without sharp edges or points that could damage the patients arteries or catch in unintended locations, is not limited to spheres. Nor should the term microsphere be limited to spheres. Preferably the particulate material is substantially spherical, but need not be regular or symmetrical in shape.
  • In a preferred embodiment the polymeric matrix is partially cross linked. Preferably there is about 1% to about 20% cross linking, preferably about 2% to 10% cross linking and more preferably about 4% cross linking.
  • In particular, the present invention provides a particulate material as described above in which the polymeric matrix is an ion exchange resin, particularly a cation exchange resin. Preferably the ion exchange resin comprises a partially cross linked aliphatic polymer, including polystyrene. One particularly preferred cation exchange resin is the styrene/divinylbenzene copolymer resin commercially available under the trade name Aminex 50W-X4 (Biorad, Hercules, Calif.). However, there are many other commercially available cation exchange resins which are suitable.
  • When small particles are administered into the arterial blood supply of a target organ, it is desirable to have them of a size, shape and density that results in the optimal homogeneous distribution within the target organ. If the small particles do not distribute evenly then they may accumulate in excessive numbers in some areas and cause focal areas of excessive radiation. The particulate material is preferably low density, more particularly a density below 3.0 g/cc, even more preferably below 2.8 g/cc, 2.5 g/cc, 2.3 g/cc, 2.2 g/cc or 2.0 g/cc. The ideal particle for injection into the blood stream would have a very narrow size range with a SD of less than 5%, so as to assist in even distribution of the microspheres within the target organ, particularly within the liver and would be sized in the range 5-200 micron preferably 15-100 micron and preferably 20-50 micron, and most preferably 30-35 micron.
  • It is also desirable to have the particulate material manufactured so that the suspending solution has a pH less than 9. If the pH is greater than 9 then this may result in irritation of the blood vessels when the suspension is injected into the artery or target organ. Preferably the pH is less than 8.5 or 8.0 and more preferably less than 7.5.
  • The present invention particularly provides a method for the production of a radioactive particulate material comprising a polymeric matrix as described above, characterised by the steps of:
  • (i) absorbing a radionuclide onto an ion-exchange resin particulate material having a diameter in the range of 20 to 50 microns and a specific gravity of less than 2.5; and
    (ii) precipitating the radionuclide as an insoluble salt to stably incorporate the radionuclide into the particulate material.
  • In a preferred embodiment, the method of the present invention is carried out by firstly irradiating yttria (yttrium oxide) in a neutron beam to activate yttria to the isotope yttrium-90. The yttrium-90 oxide is then solubilised, for example as yttrium-90 sulphate solution. The ion exchange resin is preferably provided in the form of an aqueous slurry of microspheres of ion exchange resin having a particle size 30 to 35 microns, and the yttrium-90 sulphate solution is added to the slurry to absorb the yttrium-90 into the ion exchange resin microspheres. Subsequently, the yttrium-90 is precipitated as a phosphate salt, for example by addition of tri-sodium phosphate solution, to stably incorporate the yttrium-90 into the microspheres. The particulate material may be combined with a solution of the radionuclide or the salt of the radionuclide may be combined with the particulate matter, in a solution suitable for solubilising the radionuclide.
  • Alternate sources of yttrium-90 may be used in the production of these microspheres. For example, a highly pure source of yttrium-90 may be obtained by extracting yttrium-90 from a parent nuclide and using this extracted yttrium-90 as the source of the soluble yttrium salt that is then incorporated into the polymeric matrix of the microspheres.
  • In order to decrease the pH of the suspension containing the microspheres for injection into patients the microspheres may be washed to remove any un-precipitated or loosely adherent radionuclide. The present invention provides a suspension of the required pH by precipitating the yttrium with a tri-sodium phosphate solution at a concentration containing at least a three-fold excess of phosphate ion, but not exceeding a 30-fold excess of phosphate ion, and then washing the microspheres with de-ionised water. Another approach which ensures that the pH of the microsphere suspension is in the desired range is to wash the resin with a phosphate buffer solution of the desired pH.
  • The present invention also provides a method of radiation therapy of a human or other mammalian patient that comprises administration to the patient of particulate material as described above. The person skilled in the art will appreciate the administration may be by any suitable means and preferably by delivery to the relevant artery. For example in treating liver cancer, administration is preferably by laparotomy to expose the hepatic artery or by insertion of a catheter into the hepatic artery via the femoral, or brachial artery. Pre or co-administration of another agent may prepare the tumour for receipt of the particulate material, for example a vasoactive substance, such as angiotension-2 to redirect arterial blood flow into the tumour. Delivery of the particulate matter may be by single or multiple doses, until the desired level of radiation is reached.
  • Throughout this specification, unless the context requires otherwise, the word “comprise”, and or variations such as “comprises” or “comprising”, will be understood to imply the inclusion of a stated integer or step or group of integers or steps but not the exclusion of any other integer or step or group of integers or steps.
  • Further features of the present invention are more fully described in the following Examples. It is to be understood, however, that this detailed description is included solely for the purposes of exemplifying the present invention, and should not be understood in any way as a restriction on the broad description of the invention as set out above.
  • Example 1
  • Yttrium (90Y) labelled microspheres are made in the form of a sterile, pyrogen free suspension of resin beads labelled with yttrium (90Y) phosphate. The resin beads consist of sulphuric acid groups attached to a styrene divinylbenzene copolymer lattice.
  • Yttrium oxide is irradiated to produce yttrium-90 from the nuclear reaction Y-89 (n, γ) Y-90. Yttrium-90 has a half life of 64 hours. The yttrium (90Y) oxide is then dissolved in 0.1M sulphuric acid with gentle heating and stirring to form a clear, colourless solution of yttrium (90Y) sulphate.
  • Symmetrical microspheres of ion exchange resin (Aminex 50W-X4 cation exchange resin; supplied by ‘Bio-Rad Cat #1474313’) with a diameter of approximately 30 to 35 microns are added to water (Water for Injections BP) to form a slurry that is then transferred into a reaction vessel. Yttrium (90Y) sulphate solution is added to the reaction vessel and the mixture stirred at a speed sufficient to ensure homogeneity to absorb the yttrium (90Y) solution into the resin-based microspheres. Tri-sodium phosphate solution (1.25% w/v) is then added to the reaction vessel with further stirring to precipitate the radionuclide as yttrium (90Y) phosphate.
  • The microspheres are then washed with a phosphate buffer solution until the pH of the wash solution is less than 9 and preferable less than 8.5. Following washing of the microspheres with water (Water for Injection BP), the microspheres are resuspended and diluted (if necessary) with water (Water for Injections BP) to give a light brown suspension having an activity of 3000 MBq
    Figure US20100215571A1-20100826-P00999
    10%.
  • The resin-based yttrium microspheres produced by the above method have 0.01-0.4% unbound or unprecipitated 90Y when tested in the following leaching test:
  • A 5 μL sample is diluted with water to 5 mL, adjusted to pH 7.0 and agitated in a water bath at 37° C. for 20 minutes. A 100 μL sample is counted for beta emission in a Geiger-Müller counter. Another representative 100 μL sample is filtered through a 0.22 μm filter and the filtrate counted for beta emission in the Geiger-Müller counter. The percent unbound 90Y is calculated by:
  • FiltrateCount SampleCount × 100 = % Unbound 90 Y
  • Example 2
  • The effect of phosphate concentration in the precipitation solution, and the effects of washing with phosphate buffer on the pH of a microsphere suspension are shown in the attached FIG. 1 which sets out the results of a number of experiments.
  • Example 3
  • The technique of Selective Internal Radiation Therapy (SIRT) has been described above. It involves either a laparotomy to expose the hepatic arterial circulation or the insertion of a catheter into the hepatic artery via the femoral, brachial or other suitable artery. This may be followed by the infusion of Angiotensin-2 into the hepatic artery to redirect arterial blood to flow into the metastatic tumour component of the liver and away from the normal parenchyma. This is followed by embolisation of resin based yttrium-90 containing microspheres (produced in accordance with Example 1) into the arterial circulation so that they become lodged in the microcirculation of the tumour. Repeated injections of microspheres are made until the desired radiation level in the normal liver parenchyma is reached. By way of example, an amount of yttrium-90 activity that will result in an inferred radiation dose to the normal liver of approximately 80 Gy may be delivered. Because the radiation from SIRT is delivered as a series of discrete point sources, the dose of 80 Gy is an average dose with many normal liver parenchymal cells receiving much less than that dose.
  • The measurement of tumour response by objective parameters including reduction in tumour volume and serial estimations of serum carcino-embryonic antigen (CEA) levels, is an acceptable index of the ability of the treatment to alter the biological behaviour of the tumour.

Claims (23)

1. A particulate material having a diameter in the range of from 5 to 200 microns comprising a polymeric matrix and stably incorporated radionuclide.
2. The particulate material according to claim 1 wherein the radionuclide is incorporated by precipitation.
3. The particulate material according to claim 1 wherein the polymeric matrix is partially cross linked.
4. The particulate material according to claim 3 wherein the polymeric matrix comprises from about 1% to about 20% cross linking.
5. The particulate material according to claim 4 wherein the polymeric matrix comprises about 4% cross linking.
6. The particulate material according to claim 1 wherein the polymeric matrix is an ion exchange resin.
7. The particulate material according to claim 6 wherein the polymeric matrix is a cation exchange resin.
8. The particulate material according to claim 6 wherein the ion exchange resin comprises a partially cross linked aliphatic polymer.
9. The particulate material according to claim 6 wherein the ion exchange resin comprises a partially cross linked polystyrene.
10. The particulate material according to claim 9 wherein the ion exchange resin comprises polystyrene partially cross linked with divinyl benzene.
11. The particulate material according to claim 1, wherein the radionuclide is an isotope of yttrium, holmium, samarium, iodine, phosphorus, iridium or rhenium.
12. The particulate material according to claim 1, wherein the radionuclide is yttrium-90.
13. The particulate material according to claim 1 being a microsphere.
14. A particulate material having a diameter in the range of from 30 to 35 microns comprising a copolymer comprised of styrene and divinyl benzene and precipitated yttrium-90.
15. A process for the production of a particulate material according to claim 1 comprising the step of combining a polymeric matrix and a radionuclide in solution for a time and under conditions sufficient to stably incorporate the radionuclide in the matrix to produce a particulate material having a diameter in the range of from 5 to 200 microns.
16. A process according to claim 15 wherein the radionuclide is stably incorporated by precipitation into the polymeric matrix.
17. A process according to claim 15 wherein the radionuclide is yttrium-90.
18. A method of radiation therapy of a patient, which comprises administration to the patient of a particulate material having a diameter in the range of from 5 to 200 microns comprising a polymeric matrix and a stably incorporated radionuclide.
19. A method according to claim 18 wherein the radionuclide is yttrium-90.
20. A method according to claim 18 wherein the radiation therapy comprises treatment of a primary or secondary liver cancer.
21. Use of particulate material having a diameter in the range of from 5 to 200 microns comprising a polymeric matrix and a stably incorporated radionuclide in radiation therapy of a patient.
22. Use according to claim 21 wherein the radionuclide is yttrium-90.
23. Use according to claim 21 wherein the radiation therapy comprises treatment of a primary or secondary liver cancer.
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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2015062574A1 (en) 2013-11-01 2015-05-07 Eberhard Fritz Radioactive microspheres made of nanoporous glass for radiation therapy

Families Citing this family (57)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
AUPR098200A0 (en) * 2000-10-25 2000-11-16 Sirtex Medical Limited Production of low density radionuclide containing microspheres
US7094369B2 (en) * 2002-03-29 2006-08-22 Scimed Life Systems, Inc. Processes for manufacturing polymeric microspheres
US7131997B2 (en) * 2002-03-29 2006-11-07 Scimed Life Systems, Inc. Tissue treatment
US7462366B2 (en) * 2002-03-29 2008-12-09 Boston Scientific Scimed, Inc. Drug delivery particle
US7053134B2 (en) * 2002-04-04 2006-05-30 Scimed Life Systems, Inc. Forming a chemically cross-linked particle of a desired shape and diameter
AU2003240000A1 (en) 2002-06-12 2003-12-31 Boston Scientific Limited Bulking agents
US20040076582A1 (en) * 2002-08-30 2004-04-22 Dimatteo Kristian Agent delivery particle
US7842377B2 (en) * 2003-08-08 2010-11-30 Boston Scientific Scimed, Inc. Porous polymeric particle comprising polyvinyl alcohol and having interior to surface porosity-gradient
US7449236B2 (en) * 2002-08-09 2008-11-11 Boston Scientific Scimed, Inc. Porous polymeric particle comprising polyvinyl alcohol and having interior to surface porosity-gradient
US8012454B2 (en) 2002-08-30 2011-09-06 Boston Scientific Scimed, Inc. Embolization
US7883490B2 (en) 2002-10-23 2011-02-08 Boston Scientific Scimed, Inc. Mixing and delivery of therapeutic compositions
US7588825B2 (en) * 2002-10-23 2009-09-15 Boston Scientific Scimed, Inc. Embolic compositions
EP1578455A4 (en) * 2002-11-04 2008-12-31 Biosphere Medical Inc Radioisotope-associated polymeric hydrogel microspheres and methods for producing and using the same
US20040197264A1 (en) * 2003-04-04 2004-10-07 Alexander Schwarz Microspheres comprising therapeutic and diagnostic radioactive isotopes
US7976823B2 (en) 2003-08-29 2011-07-12 Boston Scientific Scimed, Inc. Ferromagnetic particles and methods
US7901770B2 (en) 2003-11-04 2011-03-08 Boston Scientific Scimed, Inc. Embolic compositions
US7736671B2 (en) 2004-03-02 2010-06-15 Boston Scientific Scimed, Inc. Embolization
US8173176B2 (en) 2004-03-30 2012-05-08 Boston Scientific Scimed, Inc. Embolization
US20050238870A1 (en) * 2004-04-22 2005-10-27 Marcia Buiser Embolization
US7311861B2 (en) * 2004-06-01 2007-12-25 Boston Scientific Scimed, Inc. Embolization
WO2006002488A1 (en) * 2004-07-06 2006-01-12 Sirtex Medical Limited Combination therapy for treatment of neoplasia
US20060067883A1 (en) * 2004-09-24 2006-03-30 Biosphere Medical, Inc. Microspheres capable of binding radioisotopes, optionally comprising metallic microparticles, and methods of use thereof
US8425550B2 (en) 2004-12-01 2013-04-23 Boston Scientific Scimed, Inc. Embolic coils
US7727555B2 (en) * 2005-03-02 2010-06-01 Boston Scientific Scimed, Inc. Particles
US7858183B2 (en) * 2005-03-02 2010-12-28 Boston Scientific Scimed, Inc. Particles
US7963287B2 (en) 2005-04-28 2011-06-21 Boston Scientific Scimed, Inc. Tissue-treatment methods
US20070004973A1 (en) * 2005-06-15 2007-01-04 Tan Sharon M L Tissue treatment methods
US9463426B2 (en) 2005-06-24 2016-10-11 Boston Scientific Scimed, Inc. Methods and systems for coating particles
US20070083219A1 (en) * 2005-10-12 2007-04-12 Buiser Marcia S Embolic coil introducer sheath locking mechanisms
US8007509B2 (en) * 2005-10-12 2011-08-30 Boston Scientific Scimed, Inc. Coil assemblies, components and methods
US8101197B2 (en) 2005-12-19 2012-01-24 Stryker Corporation Forming coils
US20070142859A1 (en) * 2005-12-19 2007-06-21 Boston Scientific Scimed, Inc. Embolic coils
US8152839B2 (en) * 2005-12-19 2012-04-10 Boston Scientific Scimed, Inc. Embolic coils
US7501179B2 (en) * 2005-12-21 2009-03-10 Boston Scientific Scimed, Inc. Block copolymer particles
US20070142560A1 (en) * 2005-12-21 2007-06-21 Young-Ho Song Block copolymer particles
US7947368B2 (en) * 2005-12-21 2011-05-24 Boston Scientific Scimed, Inc. Block copolymer particles
US20080033366A1 (en) 2006-01-30 2008-02-07 Surgica Corporation Compressible intravascular embolization particles and related methods and delivery systems
US20070299461A1 (en) * 2006-06-21 2007-12-27 Boston Scientific Scimed, Inc. Embolic coils and related components, systems, and methods
US8414927B2 (en) 2006-11-03 2013-04-09 Boston Scientific Scimed, Inc. Cross-linked polymer particles
US20080145658A1 (en) * 2006-12-15 2008-06-19 Boston Scientific Scimed, Inc. Freeze Thaw Methods For Making Polymer Particles
WO2009086098A1 (en) * 2007-12-28 2009-07-09 Boston Scientific Scimed, Inc. Porous microparticles for injection and processes for forming the same
CN102671219B (en) * 2011-03-11 2013-12-11 成都云克药业有限责任公司 Radioactive anion resin microsphere and preparation method (1) thereof
CN102671220B (en) * 2011-03-11 2013-12-11 成都云克药业有限责任公司 Radioactive anion resin microsphere and method for preparing same
JP5859552B2 (en) * 2011-09-16 2016-02-10 株式会社島津製作所 Nanoparticles and treatment system for internal irradiation treatment of lesion site
WO2014040143A1 (en) * 2012-09-17 2014-03-20 Gray Bruce N Method of treating cancer
CN105263477B (en) 2013-03-13 2019-01-15 生物领域医疗公司 Composition and correlation technique for radioactive isotope combination particle
US20170065731A1 (en) * 2015-09-06 2017-03-09 Medical Theranostics Inc. Method, Apparatus, and System for Radiation Therapy
CN105498548A (en) * 2015-11-26 2016-04-20 中国科学院生态环境研究中心 Preparation method of antibacterial nanofiltration membrane containing silver nanoparticles
US10804000B2 (en) * 2016-05-18 2020-10-13 The Regents Of The University Of California High efficiency continuous-flow production of radioisotopes
CN106178006B (en) * 2016-08-11 2019-09-03 成都纽瑞特医疗科技有限公司 Medical iodine -131 carbosphere and preparation method thereof
WO2018107246A1 (en) * 2016-12-16 2018-06-21 The Australian National University Improving selective internal radiation therapy
EP3558397B1 (en) 2016-12-23 2020-12-30 QUIREM Medical B.V. Use of a body comprising an oxide of lanthanide supported on a sulphur containing carbon based particle in therapeutic applications
WO2018116274A1 (en) 2016-12-23 2018-06-28 Basf Corporation Body comprising an oxide of lanthanide supported on a sulphur containing carbon based particle and a method of preparation thereof
JP2020520989A (en) * 2017-04-26 2020-07-16 エンボメディックス インコーポレイテッド Biodegradable microspheres incorporating radionuclides
EP3628336A1 (en) * 2018-06-20 2020-04-01 QUIREM Medical BV Pharmaceutical composition comprising an oxide of yttrium supported on a sulfur-containing carbon-based particle for use in therapeutic applications
WO2019244072A1 (en) 2018-06-20 2019-12-26 Basf Corporation Body comprising an oxide of yttrium supported on a sulfur-containing carbon-based particle and a method of preparation thereof
CN111603575A (en) * 2020-02-28 2020-09-01 彭盛 Radioactive embolism microsphere with core-shell structure and preparation method and application thereof

Citations (19)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3127313A (en) * 1964-03-31 Method of making a radioactive
US4108972A (en) * 1974-03-15 1978-08-22 Dreyer William J Immunological reagent employing radioactive and other tracers
US4115536A (en) * 1974-09-27 1978-09-19 Pharmacia Fine Chemicals Ab Agent for intravascular administration
US4789501A (en) * 1984-11-19 1988-12-06 The Curators Of The University Of Missouri Glass microspheres
US4889707A (en) * 1988-01-29 1989-12-26 The Curators Of The University Of Missouri Composition and method for radiation synovectomy of arthritic joints
US4891164A (en) * 1986-08-28 1990-01-02 The Standard Oil Company Method for separating and immobilizing radioactive materials
US5011797A (en) * 1988-01-29 1991-04-30 The Curators Of The University Of Missouri Composition and method for radiation synovectomy of arthritic joints
US5039326A (en) * 1988-01-29 1991-08-13 The Curators Of The University Of Missouri Composition and method for radiation synovectomy of arthritic joints
US5320824A (en) * 1989-10-12 1994-06-14 Mallinckrodt Medical, Inc. Radionuclide labelled particles useful for radiation synovectomy
US5885547A (en) * 1994-01-21 1999-03-23 Paragon Medical Ltd. Particulate material
US5932248A (en) * 1993-11-18 1999-08-03 Paragon Medical Limited Controlled release preparations for cytotoxic or cytostatic drugs
US6133498A (en) * 1999-05-05 2000-10-17 The United States Of America As Represented By The United States Department Of Energy Method for producing chemically bonded phosphate ceramics and for stabilizing contaminants encapsulated therein utilizing reducing agents
US6165440A (en) * 1997-07-09 2000-12-26 Board Of Regents, The University Of Texas System Radiation and nanoparticles for enhancement of drug delivery in solid tumors
US6358531B1 (en) * 1999-02-01 2002-03-19 The Curators Of The University Of Missouri Method for preparing porous shells or gels from glass particles
US6379648B1 (en) * 1999-02-01 2002-04-30 The Curators Of The University Of Missouri Biodegradable glass compositions and methods for radiation therapy
US6455024B1 (en) * 1998-04-03 2002-09-24 Bristol-Myers Squibb Pharma Company Inorganic materials for radioactive drug delivery
US6537518B1 (en) * 1994-01-21 2003-03-25 Sirtex Medical Limited Particulate material
US6998105B2 (en) * 2000-10-25 2006-02-14 Sirtex Medical Limited Low density radionuclide-containing particulate material
US7150867B2 (en) * 2000-10-25 2006-12-19 Sirtex Medical Limited Radionuclide-coated particulate material

Family Cites Families (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
SE463651B (en) * 1983-12-21 1991-01-07 Nycomed As DIAGNOSTIC AND CONTRACTOR
CA2178620A1 (en) * 1993-12-08 1995-06-15 Lisa B. Jungherr Microsphere drug delivery system
FR2793684B1 (en) 1999-05-17 2001-08-10 Ethypharm Lab Prod Ethiques USE OF BIODEGRADABLE MICROSPHERES RELEASING ANTI-CANCER AGENT FOR THE TREATMENT OF GLIOBLASTOMA, PROCESS FOR PREPARING SUCH MICROSPHERES AND SUSPENSION CONTAINING THEM
EP1227845A2 (en) * 1999-11-09 2002-08-07 Forschungszentrum Karlsruhe GmbH Mixture containing rare earths and use thereof
WO2002030399A2 (en) 2000-10-11 2002-04-18 Johns Hopkins University Polymer controlled delivery of a therapeutic agent

Patent Citations (20)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3127313A (en) * 1964-03-31 Method of making a radioactive
US4108972A (en) * 1974-03-15 1978-08-22 Dreyer William J Immunological reagent employing radioactive and other tracers
US4115536A (en) * 1974-09-27 1978-09-19 Pharmacia Fine Chemicals Ab Agent for intravascular administration
US4789501A (en) * 1984-11-19 1988-12-06 The Curators Of The University Of Missouri Glass microspheres
US4891164A (en) * 1986-08-28 1990-01-02 The Standard Oil Company Method for separating and immobilizing radioactive materials
US4889707A (en) * 1988-01-29 1989-12-26 The Curators Of The University Of Missouri Composition and method for radiation synovectomy of arthritic joints
US5011797A (en) * 1988-01-29 1991-04-30 The Curators Of The University Of Missouri Composition and method for radiation synovectomy of arthritic joints
US5039326A (en) * 1988-01-29 1991-08-13 The Curators Of The University Of Missouri Composition and method for radiation synovectomy of arthritic joints
US5320824A (en) * 1989-10-12 1994-06-14 Mallinckrodt Medical, Inc. Radionuclide labelled particles useful for radiation synovectomy
US5932248A (en) * 1993-11-18 1999-08-03 Paragon Medical Limited Controlled release preparations for cytotoxic or cytostatic drugs
US5885547A (en) * 1994-01-21 1999-03-23 Paragon Medical Ltd. Particulate material
US6258338B1 (en) * 1994-01-21 2001-07-10 Sirtex Medical Limited Hollow or cup-shaped microparticles and methods of use
US6537518B1 (en) * 1994-01-21 2003-03-25 Sirtex Medical Limited Particulate material
US6165440A (en) * 1997-07-09 2000-12-26 Board Of Regents, The University Of Texas System Radiation and nanoparticles for enhancement of drug delivery in solid tumors
US6455024B1 (en) * 1998-04-03 2002-09-24 Bristol-Myers Squibb Pharma Company Inorganic materials for radioactive drug delivery
US6358531B1 (en) * 1999-02-01 2002-03-19 The Curators Of The University Of Missouri Method for preparing porous shells or gels from glass particles
US6379648B1 (en) * 1999-02-01 2002-04-30 The Curators Of The University Of Missouri Biodegradable glass compositions and methods for radiation therapy
US6133498A (en) * 1999-05-05 2000-10-17 The United States Of America As Represented By The United States Department Of Energy Method for producing chemically bonded phosphate ceramics and for stabilizing contaminants encapsulated therein utilizing reducing agents
US6998105B2 (en) * 2000-10-25 2006-02-14 Sirtex Medical Limited Low density radionuclide-containing particulate material
US7150867B2 (en) * 2000-10-25 2006-12-19 Sirtex Medical Limited Radionuclide-coated particulate material

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2015062574A1 (en) 2013-11-01 2015-05-07 Eberhard Fritz Radioactive microspheres made of nanoporous glass for radiation therapy
DE102013018685A1 (en) 2013-11-01 2015-05-07 Eberhard Fritz Nanoporous glass radioactive microspheres for radiotherapy

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