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How and why to study autophagy in Drosophila: It’s more than just a garbage chute

机译:在果蝇中研究自噬的方式和原因:不仅仅是垃圾溜槽

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摘要

class="kwd-title">Keywords: Atg8, Autophagy, Autophagosome, Drosophila, Flux, p62/Ref(2)P class="head no_bottom_margin" id="idm139950789706624title">AbstractDuring the catabolic process of autophagy, cytoplasmic material is transported to the lysosome for degradation and recycling. This way, autophagy contributes to the homeodynamic turnover of proteins, lipids, nucleic acids, glycogen, and even whole organelles. Autophagic activity is increased by adverse conditions such as nutrient limitation, growth factor withdrawal and oxidative stress, and it generally protects cells and organisms to promote their survival. Misregulation of autophagy is likely involved in numerous human pathologies including aging, cancer, infections and neurodegeneration, so its biomedical relevance explains the still growing interest in this field. Here we discuss the different microscopy-based, biochemical and genetic methods currently available to study autophagy in various tissues of the popular model Drosophila. We show examples for results obtained in different assays, explain how to interpret these with regard to autophagic activity, and how to find out which step of autophagy a given gene product is involved in.
机译:<!-fig ft0-> <!-fig @ position =“ anchor” mode =文章f4-> <!-fig mode =“ anchred” f5-> <!-fig / graphic | fig / alternatives / graphic mode =“ anchored” m1-> class =“ kwd-title”>关键字: Atg8,自噬,自噬,果蝇,通量,p62 / Ref(2)P class =摘要在自噬的分解代谢过程中,细胞质物质被运输到溶酶体中进行降解和循环利用。这样,自噬有助于蛋白质,脂质,核酸,糖原乃至整个细胞器的动态平衡。营养不良,营养不良,氧化应激等不利条件会增加自噬活性,通常可保护细胞和生物体存活。自噬的调控异常可能涉及许多人类疾病,包括衰老,癌症,感染和神经退行性变,因此其生物医学相关性解释了该领域仍在增长的兴趣。在这里,我们讨论了不同的基于显微镜的,生化和遗传方法,这些方法目前可用于研究流行模型果蝇的各种组织中的自噬。我们展示了在不同测定中获得的结果的实例,解释了如何解释自噬活性,以及​​如何找出给定基因产物参与自噬的哪个步骤。

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