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脑肿瘤的热疗:生物物理学原理

Hyperthermia for brain tumors: biophysical rationale.

作者信息

Salcman M, Samaras G M

出版信息

Neurosurgery. 1981 Sep;9(3):327-35.

PMID:7029341
Abstract

Hyperthermia has great potential as an antineoplastic agent because: (a) it is effective against relatively radioresistant hypoxic cells and cells in S phase; (b) unlike most chemotherapeutic agents, it is effective against poorly vascularized and metabolically quiescent tissues; (c) as a physical agent, its biological effect is related to the duration and intensity of its application; (d) it seems to have no cumulative toxicity; and (e) it potentiates the effects of both chemotherapy and ionizing radiation at the cellular level. The use of hyperthermia for malignant brain tumors is constrained by a relatively narrow therapeutic index and the considerable thermal sensitivity of normal neural tissue. Glioblastoma multiforme, by virtue of its low growth fraction and heterogeneous cell populations, seems to be an ideal candidate for hyperthermia administered as part of a combined modality treatment program. Focal hyperthermia can be produced by a number of energy sources, including those utilizing ultrasound, microwave, and radiofrequency generators. The clinical safety and feasibility of a miniature microwave radiator/sensor system for direct implantation have been demonstrated. In comparison to normal feline brain, malignant brain tumors in humans are unable to dissipate heat efficiently.

摘要

热疗作为一种抗肿瘤药物具有巨大潜力,原因如下:(a) 它对相对耐辐射的缺氧细胞和处于S期的细胞有效;(b) 与大多数化疗药物不同,它对血管化不良和代谢静止的组织有效;(c) 作为一种物理因子,其生物学效应与其应用的持续时间和强度有关;(d) 它似乎没有累积毒性;(e) 在细胞水平上,它能增强化疗和电离辐射的效果。热疗用于恶性脑肿瘤受到相对较窄的治疗指数和正常神经组织相当高的热敏感性的限制。多形性胶质母细胞瘤因其低生长分数和异质性细胞群体,似乎是作为联合治疗方案一部分进行热疗的理想候选者。局部热疗可由多种能量源产生,包括利用超声、微波和射频发生器的能量源。一种用于直接植入的微型微波辐射器/传感器系统的临床安全性和可行性已得到证实。与正常猫脑相比,人类恶性脑肿瘤无法有效地散热。

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