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

Author:

Jang Sooin12,Bedwell Gregory J12,Singh Satya P3,Yu Hyun Jae4,Arnarson Bjarki1,Singh Parmit K12,Radhakrishnan Rajalingam1,Douglas AidanDarian W3,Ingram Zachary M5,Freniere Christian6,Akkermans Onno7,Sarafianos Stefan G8,Ambrose Zandrea5,Xiong Yong6,Anekal Praju V9,Montero Llopis Paula9,KewalRamani Vineet N4,Francis Ashwanth C3,Engelman Alan N12ORCID

Affiliation:

1. Department of Cancer Immunology and Virology, Dana-Farber Cancer Institute , Boston , MA 02215 , USA

2. Department of Medicine, Harvard Medical School , Boston , MA 02115 , USA

3. Institute of Molecular Biophysics, Department of Biological Sciences, Florida State University , Tallahassee , FL 32304 , USA

4. Model Development Section, Cancer Innovation Laboratory, National Cancer Institute , Frederick , MD 21702 , USA

5. Department of Microbiology and Molecular Genetics, University of Pittsburgh School of Medicine , Pittsburgh , PA 15219 , USA

6. Department of Molecular Biophysics and Biochemistry, Yale University , New Haven , CT 06511 , USA

7. Department of Biology, Massachusetts Institute of Technology , Cambridge , MA 02139 , USA

8. Center for ViroScience and Cure, Laboratory of Biochemical Pharmacology, Department of Pediatrics, School of Medicine, Emory University , Atlanta , GA 30322 , USA

9. MicRoN Core, Harvard Medical School , Boston , MA 02215 , USA

Abstract

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.

Funder

US National Institutes of Health

Gilead Research Scholars

Publisher

Oxford University Press (OUP)

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