Structural basis of human 20S proteasome biogenesis

Hanxiao Zhang, Chenyu Zhou, Zarith Sofiya Mohammad, Jianhua Zhao
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Abstract

New proteasomes are produced to accommodate increases in cellular catabolic demand and prevent the accumulation of cytotoxic proteins. Formation of the proteasomal 20S core complex relies on the function of the five chaperones PAC1-4 and POMP. To understand how these chaperones facilitate proteasome assembly, we tagged the endogenous chaperones using CRISPR/Cas gene editing and examined the chaperone-bound complexes by cryo-EM. We observed an early α-ring intermediate subcomplex that is stabilized by PAC1-4, which transitions to β-ring assembly upon dissociation of PAC3/PAC4 and rearrangement of the PAC1 N-terminal tail. Completion of the β-ring and dimerization of half-proteasomes repositions critical lysine K33 to trigger cleavage of the β pro-peptides, leading to the concerted dissociation of POMP and PAC1/PAC2 to yield mature 20S proteasomes. This study reveals structural insights into critical points along the assembly pathway of the human proteasome and provides a molecular blueprint for 20S biogenesis.
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人类 20S 蛋白酶体生物发生的结构基础
产生新的蛋白酶体是为了适应细胞分解需求的增加,并防止细胞毒性蛋白质的积累。蛋白酶体 20S 核心复合物的形成依赖于五种伴侣蛋白 PAC1-4 和 POMP 的功能。为了了解这些伴侣如何促进蛋白酶体的组装,我们利用 CRISPR/Cas 基因编辑技术标记了内源性伴侣,并通过冷冻电镜检查了与伴侣结合的复合物。我们观察到一个早期的α-环中间亚复合物,它由PAC1-4稳定,在PAC3/PAC4解离和PAC1 N端尾部重排后过渡到β-环组装。β环的完成和半蛋白酶体的二聚化使关键赖氨酸K33重新定位,从而引发β原肽的裂解,导致POMP和PAC1/PAC2协同解离,产生成熟的20S蛋白酶体。这项研究从结构上揭示了人类蛋白酶体组装途径的关键点,并提供了 20S 生物发生的分子蓝图。
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