HIV-1 usurps mixed-charge domain-dependent CPSF6 phase separation for higher-order capsid binding, nuclear entry and viral DNA integration.

IF 16.6 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Nucleic Acids Research Pub Date : 2024-09-11 DOI:10.1093/nar/gkae769
Sooin Jang,Gregory J Bedwell,Satya P Singh,Hyun Jae Yu,Bjarki Arnarson,Parmit K Singh,Rajalingam Radhakrishnan,AidanDarian W Douglas,Zachary M Ingram,Christian Freniere,Onno Akkermans,Stefan G Sarafianos,Zandrea Ambrose,Yong Xiong,Praju V Anekal,Paula Montero Llopis,Vineet N KewalRamani,Ashwanth C Francis,Alan N Engelman
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Abstract

HIV-1 integration favors nuclear speckle (NS)-proximal chromatin and viral infection induces the formation of capsid-dependent CPSF6 condensates that colocalize with nuclear speckles (NSs). Although CPSF6 displays liquid-liquid phase separation (LLPS) activity in vitro, the contributions of its different intrinsically disordered regions, which includes a central prion-like domain (PrLD) with capsid binding FG motif and C-terminal mixed-charge domain (MCD), to LLPS activity and to HIV-1 infection remain unclear. Herein, we determined that the PrLD and MCD both contribute to CPSF6 LLPS activity in vitro. Akin to FG mutant CPSF6, infection of cells expressing MCD-deleted CPSF6 uncharacteristically arrested at the nuclear rim. While heterologous MCDs effectively substituted for CPSF6 MCD function during HIV-1 infection, Arg-Ser domains from related SR proteins were largely ineffective. While MCD-deleted and wildtype CPSF6 proteins displayed similar capsid binding affinities, the MCD imparted LLPS-dependent higher-order binding and co-aggregation with capsids in vitro and in cellulo. NS depletion reduced CPSF6 puncta formation without significantly affecting integration into NS-proximal chromatin, and appending the MCD onto a heterologous capsid binding protein partially restored virus nuclear penetration and integration targeting in CPSF6 knockout cells. We conclude that MCD-dependent CPSF6 condensation with capsids underlies post-nuclear incursion for viral DNA integration and HIV-1 pathogenesis.
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HIV-1 利用依赖混合电荷结构域的 CPSF6 相分离,实现更高阶的囊膜结合、核进入和病毒 DNA 整合。
HIV-1 整合有利于核斑点(NS)近端染色质,病毒感染会诱导形成依赖于囊盖的 CPSF6 凝聚物,这些凝聚物会与核斑点(NS)共定位。虽然CPSF6在体外显示出液-液相分离(LLPS)活性,但其不同的固有无序区(包括具有噬菌体结合FG基序的中央朊病毒样结构域(PrLD)和C端混合电荷结构域(MCD))对LLPS活性和HIV-1感染的贡献仍不清楚。在这里,我们确定 PrLD 和 MCD 都有助于 CPSF6 LLPS 的体外活性。与 FG 突变体 CPSF6 相似,感染表达 MCD 缺失的 CPSF6 的细胞会在核边缘异常地停滞。虽然异源 MCD 在 HIV-1 感染过程中有效地替代了 CPSF6 MCD 的功能,但相关 SR 蛋白的 Arg-Ser 结构域在很大程度上不起作用。虽然MCD缺失的CPSF6蛋白和野生型CPSF6蛋白显示出相似的帽状体结合亲和力,但MCD在体外和细胞内传授了依赖于LLPS的高阶结合以及与帽状体的共聚集。在 CPSF6 基因敲除的细胞中,将 MCD 附加到异源的帽状体结合蛋白上可部分恢复病毒的核穿透和整合靶向。我们的结论是,依赖于 MCD 的 CPSF6 与噬菌体凝集是病毒 DNA 整合和 HIV-1 发病的核后侵入的基础。
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来源期刊
Nucleic Acids Research
Nucleic Acids Research 生物-生化与分子生物学
CiteScore
27.10
自引率
4.70%
发文量
1057
审稿时长
2 months
期刊介绍: Nucleic Acids Research (NAR) is a scientific journal that publishes research on various aspects of nucleic acids and proteins involved in nucleic acid metabolism and interactions. It covers areas such as chemistry and synthetic biology, computational biology, gene regulation, chromatin and epigenetics, genome integrity, repair and replication, genomics, molecular biology, nucleic acid enzymes, RNA, and structural biology. The journal also includes a Survey and Summary section for brief reviews. Additionally, each year, the first issue is dedicated to biological databases, and an issue in July focuses on web-based software resources for the biological community. Nucleic Acids Research is indexed by several services including Abstracts on Hygiene and Communicable Diseases, Animal Breeding Abstracts, Agricultural Engineering Abstracts, Agbiotech News and Information, BIOSIS Previews, CAB Abstracts, and EMBASE.
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