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缺氧诱导培养神经元程序性细胞死亡的证据。

Evidence for hypoxia-induced, programmed cell death of cultured neurons.

作者信息

Rosenbaum D M, Michaelson M, Batter D K, Doshi P, Kessler J A

机构信息

Department of Neurology, Albert Einstein College of Medicine, Bronx, NY 10461.

出版信息

Ann Neurol. 1994 Dec;36(6):864-70. doi: 10.1002/ana.410360610.

Abstract

Apoptosis, a form of cell death ("programmed" cell death) in which the nucleus and cytoplasm shrink and often fragment, serves to eliminate excessive or unwanted cells during remodeling of embryonic tissues, during organ involution, and in tumor regression. In acute pathological states, such as ischemia, the cells tend to swell and lyse--a process called necrosis. We hypothesize that the delayed neural death clinically associated with hypoxia may, in part, represent apoptosis. A tissue culture model of 24 hours of hypoxia was employed using sympathetic neurons. Pretreatment with an endonuclease inhibitor (aurintricarboxylic acid) decreased cell death by 53%, depolarizing conditions (55 mM potassium chloride) decreased cell death by 33%, and an RNA synthesis inhibitor (actinomycin D) by 26% (all have been shown to prevent apoptosis). Pretreatment with antisense c-myc had no effect. Fluorescent staining with propidium iodide (a DNA marker) demonstrated chromatin condensation and agarose gel electrophoresis demonstrated a DNA "ladder." These data suggest that apoptosis may play a role in hypoxic cell death and that in this paradigm, expression of c-myc is unnecessary. This would suggest a new approach to our understanding of hypoxia and open new strategies to lessen neuronal damage secondary to this process.

摘要

细胞凋亡是一种细胞死亡形式(“程序性”细胞死亡),在此过程中细胞核和细胞质会收缩并常常碎片化,其作用是在胚胎组织重塑、器官退化及肿瘤消退过程中清除多余或不需要的细胞。在急性病理状态下,如局部缺血时,细胞往往会肿胀并裂解,这一过程称为坏死。我们推测临床上与缺氧相关的延迟性神经死亡可能部分代表细胞凋亡。我们使用交感神经元建立了一个缺氧24小时的组织培养模型。用核酸内切酶抑制剂(金精三羧酸)预处理可使细胞死亡减少53%,去极化条件(55 mM氯化钾)可使细胞死亡减少33%,RNA合成抑制剂(放线菌素D)可使细胞死亡减少26%(所有这些都已被证明可预防细胞凋亡)。用反义c-myc预处理则没有效果。用碘化丙啶(一种DNA标记物)进行荧光染色显示染色质凝聚,琼脂糖凝胶电泳显示出DNA“梯形条带”。这些数据表明细胞凋亡可能在缺氧性细胞死亡中起作用,并且在此模型中,c-myc的表达并非必需。这将为我们理解缺氧提供一种新方法,并为减轻这一过程继发的神经元损伤开辟新策略。

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