Evolutionarily divergent, Na+-regulated H+-transporting membrane-bound pyrophosphatases

Biochem J. 2015 Apr 15;467(2):281-91. doi: 10.1042/BJ20141434.

Abstract

Membrane-bound pyrophosphatase (mPPases) of various types consume pyrophosphate (PPi) to drive active H+ or Na+ transport across membranes. H+-transporting PPases are divided into phylogenetically distinct K+-independent and K+-dependent subfamilies. In the present study, we describe a group of 46 bacterial proteins and one archaeal protein that are only distantly related to known mPPases (23%-34% sequence identity). Despite this evolutionary divergence, these proteins contain the full set of 12 polar residues that interact with PPi, the nucleophilic water and five cofactor Mg2+ ions found in 'canonical' mPPases. They also contain a specific lysine residue that confers K+ independence on canonical mPPases. Two of the proteins (from Chlorobium limicola and Cellulomonas fimi) were expressed in Escherichia coli and shown to catalyse Mg2+-dependent PPi hydrolysis coupled with electrogenic H+, but not Na+ transport, in inverted membrane vesicles. Unique features of the new H+-PPases include their inhibition by Na+ and inhibition or activation, depending on PPi concentration, by K+ ions. Kinetic analyses of PPi hydrolysis over wide ranges of cofactor (Mg2+) and substrate (Mg2-PPi) concentrations indicated that the alkali cations displace Mg2+ from the enzyme, thereby arresting substrate conversion. These data define the new proteins as a novel subfamily of H+-transporting mPPases that partly retained the Na+ and K+ regulation patterns of their precursor Na+-transporting mPPases.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Bacterial Proteins / genetics
  • Bacterial Proteins / metabolism*
  • Cell Membrane / enzymology
  • Cell Membrane / genetics
  • Cellulomonas / enzymology*
  • Cellulomonas / genetics
  • Chlorobium / enzymology*
  • Chlorobium / genetics
  • Diphosphates / metabolism
  • Escherichia coli / enzymology
  • Escherichia coli / genetics
  • Ion Transport / physiology
  • Magnesium / metabolism
  • Membrane Proteins / genetics
  • Membrane Proteins / metabolism*
  • Potassium / metabolism
  • Protons*
  • Pyrophosphatases / genetics
  • Pyrophosphatases / metabolism*
  • Recombinant Proteins / genetics
  • Recombinant Proteins / metabolism
  • Sodium / metabolism*

Substances

  • Bacterial Proteins
  • Diphosphates
  • Membrane Proteins
  • Protons
  • Recombinant Proteins
  • diphosphoric acid
  • Sodium
  • Pyrophosphatases
  • Magnesium
  • Potassium