NASP maintains histone H3–H4 homeostasis through two distinct H3 binding modes

Author:

Bao Hongyu1,Carraro Massimo23ORCID,Flury Valentin23,Liu Yanhong1,Luo Min1,Chen Liu1,Groth Anja23,Huang Hongda1ORCID

Affiliation:

1. Key Laboratory of Molecular Design for Plant Cell Factory of Guangdong Higher Education Institutes, Department of Biology, School of Life Sciences, Southern University of Science and Technology, Shenzhen 518055, China

2. Novo Nordisk Center for Protein Research (CPR), Faculty of Health Sciences, University of Copenhagen, Copenhagen, Denmark

3. Biotech Research and Innovation Centre (BRIC), Faculty of Health Sciences, University of Copenhagen, Copenhagen, Denmark

Abstract

Abstract Histone chaperones regulate all aspects of histone metabolism. NASP is a major histone chaperone for H3–H4 dimers critical for preventing histone degradation. Here, we identify two distinct histone binding modes of NASP and reveal how they cooperate to ensure histone H3–H4 supply. We determine the structures of a sNASP dimer, a complex of a sNASP dimer with two H3 α3 peptides, and the sNASP–H3–H4–ASF1b co-chaperone complex. This captures distinct functionalities of NASP and identifies two distinct binding modes involving the H3 α3 helix and the H3 αN region, respectively. Functional studies demonstrate the H3 αN-interaction represents the major binding mode of NASP in cells and shielding of the H3 αN region by NASP is essential in maintaining the H3–H4 histone soluble pool. In conclusion, our studies uncover the molecular basis of NASP as a major H3–H4 chaperone in guarding histone homeostasis.

Funder

National Key Research and Development Program of China

Chinese National Natural Science Foundation

Shenzhen Science and Technology Program

Key Laboratory of Molecular Design for Plant Cell Factory of Guangdong Higher Education Institutes

Shenzhen Government ‘Peacock Plan’

Thousand Young Talents Program

Lundbeck Foundation

European Research Council

Independent Research Fund Denmark

Novo Nordisk Foundation

Publisher

Oxford University Press (OUP)

Subject

Genetics

Reference59 articles.

1. Histone chaperone networks shaping chromatin function;Hammond;Nature Reviews. Molecular Cell Biology,2017

2. The histone chaperoning pathway: from ribosome to nucleosome;Pardal;Essays Biochem.,2019

3. H3-H4 histone chaperone pathways;Grover;Annu. Rev. Genet.,2018

4. Histone chaperones: assisting histone traffic and nucleosome dynamics;Gurard-Levin;Annu. Rev. Biochem,2014

5. Histone chaperones in nucleosome assembly and human disease;Burgess;Nat. Struct. Mol. Biol.,2013

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