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Development of the Implantable Resonator System for Clinical EPR Oximetry
by
Flood, Ann Barry
, Jarvis, Lesley A.
, Williams, Benjamin B.
, Schreiber, Wilson
, Chen, Eunice Y.
, Kmiec, Maciej M.
, Swartz, Harold M.
, Schaner, Philip E.
, Petryakov, Sergey V.
, Caston, Rose M.
, Hou, Huagang
, Kuppusamy, Periannan
in
Animals
/ Biochemistry
/ Biocompatibility
/ Biological and Medical Physics
/ Biomedical and Life Sciences
/ Biophysics
/ Biotechnology
/ Cell Biology
/ Chemotherapy
/ Effectiveness
/ Elastomers
/ Electron paramagnetic resonance
/ Electron Spin Resonance Spectroscopy
/ Equipment Design
/ Humans
/ Hypoxia
/ In vivo methods and tests
/ Laboratories
/ Life Sciences
/ Linear arrays
/ Original Paper
/ Oximetry
/ Oxygen
/ Oxygen - analysis
/ Particulates
/ Pharmacology/Toxicology
/ Prostheses and Implants
/ Radiation therapy
/ Radio frequency heating
/ Resonators
/ Silicones
/ Therapeutic applications
/ Tumors
2017
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Development of the Implantable Resonator System for Clinical EPR Oximetry
by
Flood, Ann Barry
, Jarvis, Lesley A.
, Williams, Benjamin B.
, Schreiber, Wilson
, Chen, Eunice Y.
, Kmiec, Maciej M.
, Swartz, Harold M.
, Schaner, Philip E.
, Petryakov, Sergey V.
, Caston, Rose M.
, Hou, Huagang
, Kuppusamy, Periannan
in
Animals
/ Biochemistry
/ Biocompatibility
/ Biological and Medical Physics
/ Biomedical and Life Sciences
/ Biophysics
/ Biotechnology
/ Cell Biology
/ Chemotherapy
/ Effectiveness
/ Elastomers
/ Electron paramagnetic resonance
/ Electron Spin Resonance Spectroscopy
/ Equipment Design
/ Humans
/ Hypoxia
/ In vivo methods and tests
/ Laboratories
/ Life Sciences
/ Linear arrays
/ Original Paper
/ Oximetry
/ Oxygen
/ Oxygen - analysis
/ Particulates
/ Pharmacology/Toxicology
/ Prostheses and Implants
/ Radiation therapy
/ Radio frequency heating
/ Resonators
/ Silicones
/ Therapeutic applications
/ Tumors
2017
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
Development of the Implantable Resonator System for Clinical EPR Oximetry
by
Flood, Ann Barry
, Jarvis, Lesley A.
, Williams, Benjamin B.
, Schreiber, Wilson
, Chen, Eunice Y.
, Kmiec, Maciej M.
, Swartz, Harold M.
, Schaner, Philip E.
, Petryakov, Sergey V.
, Caston, Rose M.
, Hou, Huagang
, Kuppusamy, Periannan
in
Animals
/ Biochemistry
/ Biocompatibility
/ Biological and Medical Physics
/ Biomedical and Life Sciences
/ Biophysics
/ Biotechnology
/ Cell Biology
/ Chemotherapy
/ Effectiveness
/ Elastomers
/ Electron paramagnetic resonance
/ Electron Spin Resonance Spectroscopy
/ Equipment Design
/ Humans
/ Hypoxia
/ In vivo methods and tests
/ Laboratories
/ Life Sciences
/ Linear arrays
/ Original Paper
/ Oximetry
/ Oxygen
/ Oxygen - analysis
/ Particulates
/ Pharmacology/Toxicology
/ Prostheses and Implants
/ Radiation therapy
/ Radio frequency heating
/ Resonators
/ Silicones
/ Therapeutic applications
/ Tumors
2017
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Development of the Implantable Resonator System for Clinical EPR Oximetry
Journal Article
Development of the Implantable Resonator System for Clinical EPR Oximetry
2017
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Overview
Hypoxic tumors are more resistant to radiotherapy and chemotherapy, which decreases the efficacy of these common forms of treatment. We have been developing implantable paramagnetic particulates to measure oxygen in vivo using electron paramagnetic resonance. Once implanted, oxygen can be measured repeatedly and non-invasively in superficial tissues (<3 cm deep), using an electron paramagnetic resonance spectrometer and an external surface-loop resonator. To significantly extend the clinical applications of electron paramagnetic resonance oximetry, we developed an implantable resonator system to obtain measurements at deeper sites. This system has been used to successfully obtain oxygen measurements in animal studies for several years. We report here on recent developments needed to meet the regulatory requirements to make this technology available for clinical use. radio frequency heating is discussed and magnetic resonance compatibility testing of the device has been carried out by a Good Laboratory Practice-certified laboratory. The geometry of the implantable resonator has been modified to meet our focused goal of verifying safety and efficacy for the proposed use of intracranial measurements and also for future use in tissue sites other than the brain. We have encapsulated the device within a smooth cylindrical-shaped silicone elastomer to prevent tissues from adhering to the device and to limit perturbation of tissue during implantation and removal. We have modified the configuration for simultaneously measuring oxygen at multiple sites by developing a linear array of oxygen sensing probes, which each provide independent measurements. If positive results are obtained in additional studies which evaluate biocompatibility and chemical characterization, we believe the implantable resonator will be at a suitable stage for initial testing in human subjects.
Publisher
Springer US,Springer Nature B.V
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