首页> 外文期刊>American Journal of Physiology >Autophagy in health and disease. 5. Mitophagy as a way of life.
【24h】

Autophagy in health and disease. 5. Mitophagy as a way of life.

机译:健康和疾病中的自噬。 5.水墨作为一种生活方式。

获取原文
获取原文并翻译 | 示例
           

摘要

Our understanding of autophagy has expanded greatly in recent years, largely due to the identification of the many genes involved in the process and to the development of better methods to monitor the process, such as green fluorescent protein-LC3 to visualize autophagosomes in vivo. A number of groups have demonstrated a tight connection between autophagy and mitochondrial turnover. Mitochondrial quality control is the process whereby mitochondria undergo successive rounds of fusion and fission with a dynamic exchange of components to segregate functional and damaged elements. Removal of the mitochondrion that contains damaged components is accomplished via autophagy (mitophagy). Mitophagy also serves to eliminate the subset of mitochondria producing the most reactive oxygen species, and episodic removal of mitochondria will reduce the oxidative burden, thus linking the mitochondrial free radical theory of aging with longevity achieved through caloric restriction. Mitophagy must be balanced by biogenesis to meet tissue energy needs, but the system is tunable and highly dynamic. This process is of greatest importance in long-lived cells such as cardiomyocytes, neurons, and memory T cells. Autophagy is known to decrease with age, and the failure to maintain mitochondrial quality control through mitophagy may explain why the heart, brain, and components of the immune system are most vulnerable to dysfunction as organisms age.
机译:我们对自噬的理解近年来大大扩大,主要是由于鉴定了过程中涉及的许多基因以及开发更好的方法来监测绿色荧光蛋白-LC3以在体内可视化自噬物质。许多团体已经证明了自噬和线粒体周转之间的紧密联系。线粒体质量控制是线粒体接受连续融合和裂变的过程,具有动态交换组件来隔离功能和损坏的元素。除去含有受损组分的线粒体通过自噬(MITOCHAGY)完成。 MITophagy还用于消除产生最活力氧的线粒体的子集,并且线粒体的情节去除将降低氧化负担,从而通过热量限制实现了长寿的长寿的线粒体自由基理论。 MINOCHAGY必须通过生物生成来平衡,以满足组织能量需求,但系统是可调和高度动态的。该过程在长寿命细胞中具有最重要的重要性,如心肌细胞,神经元和记忆T细胞。众所周知,随着年龄减少自噬,并且通过MITOCHAGY保持线粒体质量控制的未能解释为什么免疫系统的心脏,脑和组分最容易具有功能障碍作为生物年龄的功能障碍。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号