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Solution structure of the autophagy-related protein LC3C reveals a polyproline II motif on a mobile tether with phosphorylation site

机译:自噬相关蛋白LC3C的溶液结构在带有磷酸化位点的可移动系链上揭示了聚脯氨酸II基序

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摘要

(Macro-)autophagy is a compartmental degradation pathway conserved from yeast to mammals. The yeast protein Atg8 mediates membrane tethering/hemifusion and cargo recruitment and is essential for autophagy. The human MAP1LC3/GABARAP family proteins show high sequence identity with Atg8, but MAP1LC3C is distinguished by a conspicuous amino-terminal extension with unknown functional significance. We have determined the high-resolution three-dimensional structure and measured the backbone dynamics of MAP1LC3C by NMR spectroscopy. From Ser18 to Ala120, MAP1LC3C forms an α-helix followed by the ubiquitin-like tertiary fold with two hydrophobic binding pockets used by MAP1LC3/GABARAP proteins to recognize targets presenting LC3-interacting regions (LIRs). Unlike other MAP1LC3/GABARAP proteins, the amino-terminal region of MAP1LC3C does not form a stable helix α1 but a “sticky arm” consisting of a polyproline II motif on a flexible linker. Ser18 at the interface between this linker and the structural core can be phosphorylated in vitro by protein kinase A, which causes additional conformational heterogeneity as monitored by NMR spectroscopy and molecular dynamics simulations, including changes in the LIR-binding interface. Based on these results we propose that the amino-terminal polyproline II motif mediates specific interactions with the microtubule cytoskeleton and that Ser18 phosphorylation modulates the interplay of MAP1LC3C with its various target proteins.
机译:(宏)自噬是从酵母到哺乳动物保守的区室降解途径。酵母蛋白Atg8介导膜的束缚/融合和货物募集,并且对于自噬至关重要。人MAP1LC3 / GABARAP家族蛋白与Atg8具有高度的序列同一性,但MAP1LC3C的特征是具有明显的氨基末端延伸,功能未知。我们已经确定了高分辨率的三维结构,并通过NMR光谱测量了MAP1LC3C的骨架动力学。从Ser18到Ala120,MAP1LC3C形成一个α-螺旋,随后是泛素样三级折叠,并带有两个疏水结合袋,MAP1LC3 / GABARAP蛋白使用该结合袋来识别呈递LC3相互作用区域(LIR)的靶标。与其他MAP1LC3 / GABARAP蛋白不同,MAP1LC3C的氨基末端区域不是形成稳定的螺旋α1,而是形成由柔性接头上的聚脯氨酸II基序组成的“粘臂”。可以通过蛋白激酶A在体外将该接头和结构核心之间的界面处的Ser18磷酸化,这会导致其他构象异质性,如NMR光谱学和分子动力学模拟所监测的,包括LIR结合界面的变化。基于这些结果,我们建议氨基末端多脯氨酸II基序介导与微管细胞骨架的特定相互作用,并且Ser18磷酸化调节MAP1LC3C与它的各种靶蛋白的相互作用。

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