Divergent functions of histone acetyltransferases KAT2A and KAT2B in keratinocyte self-renewal and differentiation

Author:

Walters Benjamin William12ORCID,Tan Tiak Ju1ORCID,Tan Chew Teng1ORCID,Dube Christabel Thembela12ORCID,Lee Kang Ting1ORCID,Koh Jace1ORCID,Ong Yasmin Hui Binn1ORCID,Tan Vanessa Xue Hui1ORCID,Jahan Fathima Rifkhana Shah1ORCID,Lim Xin Ni3,Wan Yue4,Lim Chin Yan13ORCID

Affiliation:

1. A*STAR Skin Research Labs 1 Epithelial Epigenetics and Development Laboratory , , 308232 Singapore

2. School of Medical Sciences, Faculty of Biology, Medicine and Health, University of Manchester 2 , Manchester M13 9PT, UK

3. Yong Loo Lin School of Medicine, National University of Singapore, 117596 3 Department of Biochemistry , Singapore

4. Genome Institute of Singapore, 138672 4 Singapore

Abstract

ABSTRACT The mammalian epidermis undergoes constant renewal, replenished by a pool of stem cells and terminal differentiation of their progeny. This is accompanied by changes in gene expression and morphology that are orchestrated, in part, by epigenetic modifiers. Here, we define the role of the histone acetyltransferase KAT2A in epidermal homeostasis and provide a comparative analysis that reveals key functional divergence with its paralog KAT2B. In contrast to the reported function of KAT2B in epidermal differentiation, KAT2A supports the undifferentiated state in keratinocytes. RNA-seq analysis of KAT2A- and KAT2B- depleted keratinocytes revealed dysregulated epidermal differentiation. Depletion of KAT2A led to premature expression of epidermal differentiation genes in the absence of inductive signals, whereas loss of KAT2B delayed differentiation. KAT2A acetyltransferase activity was indispensable in regulating epidermal differentiation gene expression. The metazoan-specific N terminus of KAT2A was also required to support its function in keratinocytes. We further showed that the interplay between KAT2A- and KAT2B-mediated regulation was important for normal cutaneous wound healing in vivo. Overall, these findings reveal a distinct mechanism in which keratinocytes use a pair of highly homologous histone acetyltransferases to support divergent functions in self-renewal and differentiation processes.

Funder

Agency for Science, Technology and Research

University of Manchester

Publisher

The Company of Biologists

Subject

Cell Biology

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