半胱天冬酶在4-氢过氧环磷酰胺(一种活化的环磷酰胺类似物)诱导小鼠肢芽细胞死亡中的作用

Teratology Pub Date : 2002-12-01 DOI:10.1002/tera.10100
Chunwei Huang, Barbara F Hales
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引用次数: 35

摘要

背景:半胱天冬酶在调节和执行细胞凋亡中起关键作用,细胞凋亡是肢体发育的重要过程。Caspase 8的激活通常在Fas/FasL死亡受体的下游,而Caspase 9介导凋亡的线粒体信号通路。Caspase 3是一种效应Caspase。先前的研究表明,体外培养的胚胎小鼠肢体暴露于4-氢过氧环磷酰胺(4-OOHCPA),一种抗癌烷基化剂环磷酰胺的活化类似物,可诱导肢体畸形和细胞凋亡。本研究的目的是确定半胱天冬酶在该模型系统中介导细胞凋亡的作用。方法:取孕12天CD-1小鼠的肢芽,在不含或不含4-OOHCPA的情况下,在化学定义的培养基中,在滚轮瓶中培养6天。TUNEL染色显示核小体间DNA断裂表明细胞凋亡。用Western blot和免疫组化方法对对照组和实验组的半胱天冬酶激活谱进行分析。为了确定抑制caspase激活对肢体形态的影响,将caspase-3抑制剂DEVD-CHO添加到培养物中。结果:4-OOHCPA培养的肢体发育迟缓、畸形;细胞凋亡在顶端外胚层脊和指间区增加。Western blot分析显示,4-OOHCPA暴露没有激活四肢原aspase 8或9。相反,暴露于4-OOHCPA后,procaspase-3的切割以浓度和时间依赖性的方式增加。免疫反应激活的caspase-3定位于对照肢体指间区和顶端外胚层脊区;暴露于4-OOHCPA的四肢,这些区域和指间区域的染色显著增加。用DEVD-CHO抑制caspase 3激活部分保护四肢免受4-OOHCPA的损伤。结论:caspase依赖性和非caspase依赖性细胞死亡通路在4-OOHCPA损伤引起的肢体发育异常中均起重要作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Role of caspases in murine limb bud cell death induced by 4-hydroperoxycyclophosphamide, an activated analog of cyclophosphamide.

Background: Caspases play a pivotal role in the regulation and execution of apoptosis, an essential process during limb development. Caspase 8 activation is usually downstream of the Fas/FasL death receptors, whereas caspase 9 mediates the mitochondrial signaling pathway of apoptosis. Caspase 3 is an effector caspase. Previous studies have shown that the exposure of embryonic murine limbs in vitro to 4-hydroperoxycyclophosphamide (4-OOHCPA), an activated analog of the anticancer alkylating agent, cyclophosphamide, induced limb malformations and apoptosis. The goal of this study was to determine the role of caspases in mediating apoptosis in this model system.

Methods: Limb buds from gestational day 12 CD-1 mice were excised and cultured in roller bottles in a chemically defined medium for up to 6 days in the absence or presence of 4-OOHCPA. Apoptosis was indicated by internucleosomal DNA fragmentation, as detected by TUNEL staining. The profile of caspase activation was characterized by Western blot analysis and immunohistochemistry of control and treated limbs. To determine the consequences to limb morphology of inhibiting caspase activation, DEVD-CHO, a caspase-3 inhibitor, was added to the cultures.

Results: Limbs cultured in the presence of 4-OOHCPA were growth retarded and malformed; apoptosis was increased in the apical ectodermal ridge and interdigital areas. Western blot analysis showed that 4-OOHCPA exposure did not activate procaspases 8 or 9 in limbs. In contrast, procaspase-3 cleavage was increased in a concentration and time-dependent manner after exposure of limbs to 4-OOHCPA. Immunoreactive activated caspase-3 was localized in the interdigital areas and the apical ectodermal ridge region in control limbs; staining in these areas and in the interdigital areas was increased dramatically in limbs exposed to 4-OOHCPA. Inhibition of caspase 3 activation with DEVD-CHO partially protected limbs from insult with 4-OOHCPA.

Conclusion: Caspase-dependent and caspase-independent pathways of cell death are both important is mediating the abnormal limb development triggered by insult with 4-OOHCPA.

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