The surprising structural and mechanistic dichotomy of membrane-associated phosphoglycosyl transferases

Author:

O'Toole Katherine H.1,Bernstein Hannah M.2ORCID,Allen Karen N.1ORCID,Imperiali Barbara23ORCID

Affiliation:

1. Department of Chemistry, Boston University, 590 Commonwealth Ave, Boston, MA 02215, U.S.A

2. Department of Biology, Massachusetts Institute of Technology, 31 Ames St, Cambridge, MA 02139, U.S.A

3. Department of Chemistry, Massachusetts Institute of Technology, 77 Massachusetts Ave, Cambridge, MA 02139, U.S.A

Abstract

Phosphoglycosyl transferases (PGTs) play a pivotal role at the inception of complex glycoconjugate biosynthesis pathways across all domains of life. PGTs promote the first membrane-committed step in the en bloc biosynthetic strategy by catalyzing the transfer of a phospho-sugar from a nucleoside diphospho-sugar to a membrane-resident polyprenol phosphate. Studies on the PGTs have been hampered because they are integral membrane proteins, and often prove to be recalcitrant to expression, purification and analysis. However, in recent years exciting new information has been derived on the structures and the mechanisms of PGTs, revealing the existence of two unique superfamilies of PGT enzymes that enact catalysis at the membrane interface. Genome neighborhood analysis shows that these superfamilies, the polytopic PGT (polyPGT) and monotopic PGT (monoPGT), may initiate different pathways within the same organism. Moreover, the same fundamental two-substrate reaction is enacted through two different chemical mechanisms with distinct modes of catalysis. This review highlights the structural and mechanistic divergence between the PGT enzyme superfamilies and how this is reflected in differences in regulation in their varied glycoconjugate biosynthesis pathways.

Publisher

Portland Press Ltd.

Subject

Biochemistry

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