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KCS1 deletion in Saccharomyces cerevisiae leads to a defect in translocation of autophagic proteins and reduces autophagosome formation

机译:酿酒酵母中KCS1缺失导致自噬蛋白易位缺陷并减少自噬体形成

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摘要

Inositol phosphates are implicated in the regulation of autophagy; however, the exact role of each inositol phosphate species is unclear. In this study, we systematically analyzed the highly conserved inositol polyphosphate synthesis pathway in S. cerevisiae for its role in regulating autophagy. Using yeast mutants that harbored a deletion in each of the genes within the inositol polyphosphate synthesis pathway, we found that deletion of KCS1, and to a lesser degree IPK2, led to a defect in autophagy. KCS1 encodes an inositol hexakisphosphate/heptakisposphate kinase that synthesizes 5-IP7 and IP8; and IPK2 encodes an inositol polyphosphate multikinase required for synthesis of IP4 and IP5. We characterized the kcs1Δ mutant strain in detail. The kcs1Δ yeast exhibited reduced autophagic flux, which might be caused by both the reduction in autophagosome number and autophagosome size as observed under nitrogen starvation. The autophagy defect in kcs1Δ strain was associated with mislocalization of the phagophore assembly site (PAS) and a defect in Atg18 release from the vacuole membrane under nitrogen deprivation conditions. Interestingly, formation of autophagosome-like vesicles was commonly observed to originate from the plasma membrane in the kcs1Δ strain. Our results indicate that lack of KCS1 interferes with proper localization of the PAS, leads to reduction of autophagosome formation, and causes the formation of autophagosome-like structure in abnormal subcellular locations.
机译:肌醇磷酸参与自噬的调控。然而,每种肌醇磷酸酯的确切作用尚不清楚。在这项研究中,我们系统地分析了酿酒酵母中高度保守的肌醇多磷酸合成途径在调节自噬中的作用。使用在肌醇多磷酸合成途径中每个基因中都具有缺失的酵母突变体,我们发现KCS1的缺失以及较小程度的IPK2导致自噬缺陷。 KCS1编码合成5-IP7和IP8的肌醇六磷酸/七七磷酸激酶; IPK2编码合成IP4和IP5所需的肌醇多磷酸多激酶。我们详细描述了kcs1Δ突变株。 kcs1Δ酵母表现出降低的自噬通量,这可能是由于在氮饥饿下观察到的自噬体数目和自噬体大小的减少所致。 kcs1Δ菌株中的自噬缺陷与荧光团组装位点(PAS)的定位错误和氮剥夺条件下液泡膜释放的Atg18缺陷有关。有趣的是,通常观察到自噬体样小泡的形成源自kcs1Δ菌株中的质膜。我们的结果表明,缺少KCS1会干扰PAS的正确定位,导致自噬体形成减少,并导致在异常的亚细胞位置形成自噬体样结构。

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