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Cellular Responses to Combinations of Hyperthermia and Radiation

Radiology · 1977 · Vol. 123(2) · pp. 463–474
William C. DeweyLarry E. HopwoodStephen A. SaparetoL.E. Gerweck

Abstract

The two principal rationales for applying hyperthermia in cancer therapy are that: (a) the S phase, which is relatively radioresistant, is the most sensitive phase to hyperthermia, and can be selectively radiosensitized by combining hyperthermia with x-irradiation; the cycling tumor cells in S phase which would normally survive an x-ray dose could thus be killed by subjecting these cells to hyperthermia; and (b) the relatively radioresistant hypoxic cells in the tumor may be selectively destroyed by combinations of hyperthermia and x-irradiation. Both of these rationales have been mentioned as reasons for using high LET irradiation in cancer therapy; therefore where such irradiation may be of use, hyperthermia may also be advantageous.

Ultrasound and Hyperthermia Applications3D Printing in Biomedical ResearchNanoplatforms for cancer theranosticsHyperthermiaRadioresistanceMedicineIrradiationRadiation therapyCancer researchCancer therapyCancerNuclear medicineInternal medicine

MeSH terms

AnimalsHypoxiaBody TemperatureCell DivisionCell MovementChromosomal Proteins, Non-HistoneHyperthermia, InducedMathematicsNeoplasmsOxygen ConsumptionProtein DenaturationTime FactorsX-Ray Therapy
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Cellular Responses to Combinations of Hyperthermia and Radiation · Scinovex