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Podocytes maintain high basal levels of autophagy independent of mtor signaling

机译:平粒细胞保持高基础的自噬水平独立于MTOR信号传导

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摘要

While constant basal levels of macroautophagy/autophagy are a prerequisite to preserve long-lived podocytes at the filtration barrier, MTOR regulates at the same time podocyte size and compensatory hypertrophy. Since MTOR is known to generally suppress autophagy, the apparently independent regulation of these two key pathways of glomerular maintenance remained puzzling. We now report that long-term genetic manipulation of MTOR activity does in fact not influence high basal levels of autophagy in podocytes either in vitro or in vivo. Instead we present data showing that autophagy in podocytes is mainly controlled by AMP-activated protein kinase (AMPK) and ULK1 (unc-51 like kinase 1). Pharmacological inhibition of MTOR further shows that the uncoupling of MTOR activity and autophagy is time dependent. Together, our data reveal a novel and unexpected cell-specific mechanism, which permits concurrent MTOR activity as well as high basal autophagy rates in podocytes. Thus, these data indicate manipulation of the AMPK-ULK1 axis rather than inhibition of MTOR as a promising therapeutic intervention to enhance autophagy and preserve podocyte homeostasis in glomerular diseases.
机译:虽然恒定基础型巨大型药物/自噬水平是保持在过滤屏障处的长寿命的长织物的先决条件,MTOR在同一时间孔节细胞尺寸和补偿肥大调节。由于已知MTOR通常抑制自噬,因此显然独立的肾小球维护途径对这两个关键途径的调节仍然是令人费解的。现在我们报告说,MTOR活性的长期遗传操纵实际上不影响体外或体内足细胞中的高基础自噬水平。相反,我们呈现数据显示龟粒细胞中的自噬主要由AMP活化蛋白激酶(AMPK)和ULK1(UNC-51如激酶1)控制。 MTOR的药理学抑制进一步表明,MTOR活性和自噬的解耦是时间依赖性的。我们的数据在一起揭示了一种新颖和意外的细胞特异性机制,其允许同时的MTOR活性以及高织物中的高基础自噬率。因此,这些数据表明AMPK-ULK1轴的操纵而不是抑制MTOR,以提高肾小球疾病中的自噬和保存Podocyte Hoosostasis的有前途的治疗干预。

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