Dissecting OGT’s TPR domain to identify determinants of cellular function

Author:

Potter Sarah C.12ORCID,Gibbs Bettine E.1ORCID,Hammel Forrest A.1,Joiner Cassandra M.1ORCID,Paulo Joao A.3ORCID,Janetzko John4,Levine Zebulon G.1ORCID,Fei George Q.1ORCID,Haggarty Stephen J.2ORCID,Walker Suzanne1

Affiliation:

1. Department of Microbiology, Blavatnik Institute of Harvard Medical School, Boston, MA 02115

2. Chemical Neurobiology Laboratory, Center for Genomic Medicine, Department of Neurology, Massachusetts General Hospital and Harvard Medical School, Boston, MA 02114

3. Department of Cell Biology, Blavatnik Institute of Harvard Medical School, Boston, MA 02115

4. Department of Chemistry and Chemical Biology, Harvard University, Cambridge, MA 02138

Abstract

O-GlcNAc transferase (OGT) is an essential mammalian enzyme that glycosylates myriad intracellular proteins and cleaves the transcriptional coregulator Host Cell Factor 1 to regulate cell cycle processes. Via these catalytic activities as well as noncatalytic protein–protein interactions, OGT maintains cell homeostasis. OGT’s tetratricopeptide repeat (TPR) domain is important in substrate recognition, but there is little information on how changing the TPR domain impacts its cellular functions. Here, we investigate how altering OGT’s TPR domain impacts cell growth after the endogenous enzyme is deleted. We find that disrupting the TPR residues required for OGT dimerization leads to faster cell growth, whereas truncating the TPR domain slows cell growth. We also find that OGT requires eight of its 13 TPRs to sustain cell viability. OGT-8, like the nonviable shorter OGT variants, is mislocalized and has reduced Ser/Thr glycosylation activity; moreover, its interactions with most of wild-type OGT’s binding partners are broadly attenuated. Therefore, although OGT’s five N-terminal TPRs are not essential for cell viability, they are required for proper subcellular localization and for mediating many of OGT’s protein–protein interactions. Because the viable OGT truncation variant we have identified preserves OGT’s essential functions, it may facilitate their identification.

Funder

HHS | National Institutes of Health

National Science Foundation

Canadian Government | Natural Sciences and Engineering Research Council of Canada

Massachusetts General Hospital

Publisher

Proceedings of the National Academy of Sciences

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