Complete cysteine-scanning mutagenesis of the Salmonella typhimurium melibiose permease

J Biol Chem. 2021 Sep;297(3):101090. doi: 10.1016/j.jbc.2021.101090. Epub 2021 Aug 18.

Abstract

The melibiose permease of Salmonella typhimurium (MelBSt) catalyzes the stoichiometric symport of galactopyranoside with a cation (H+, Li+, or Na+) and is a prototype for Na+-coupled major facilitator superfamily (MFS) transporters presenting from bacteria to mammals. X-ray crystal structures of MelBSt have revealed the molecular recognition mechanism for sugar binding; however, understanding of the cation site and symport mechanism is still vague. To further investigate the transport mechanism and conformational dynamics of MelBSt, we generated a complete single-Cys library containing 476 unique mutants by placing a Cys at each position on a functional Cys-less background. Surprisingly, 105 mutants (22%) exhibit poor transport activities (<15% of Cys-less transport), although the expression levels of most mutants were comparable to that of the control. The affected positions are distributed throughout the protein. Helices I and X and transmembrane residues Asp and Tyr are most affected by cysteine replacement, while helix IX, the cytoplasmic middle-loop, and C-terminal tail are least affected. Single-Cys replacements at the major sugar-binding positions (K18, D19, D124, W128, R149, and W342) or at positions important for cation binding (D55, N58, D59, and T121) abolished the Na+-coupled active transport, as expected. We mapped 50 loss-of-function mutants outside of these substrate-binding sites that suffered from defects in protein expression/stability or conformational dynamics. This complete Cys-scanning mutagenesis study indicates that MelBSt is highly susceptible to single-Cys mutations, and this library will be a useful tool for further structural and functional studies to gain insights into the cation-coupled symport mechanism for Na+-coupled MFS transporters.

Keywords: Cys-scanning mutagenesis; MFS transporter; MelB(St); cation-coupled symporter; structure and function analysis.

Publication types

  • Research Support, N.I.H., Extramural
  • Research Support, U.S. Gov't, Non-P.H.S.

MeSH terms

  • Bacterial Proteins / metabolism
  • Binding Sites
  • Biological Transport, Active
  • Cysteine / metabolism*
  • Ion Transport
  • Models, Molecular
  • Mutagenesis / genetics
  • Salmonella typhimurium / genetics
  • Salmonella typhimurium / metabolism
  • Sodium / metabolism
  • Symporters / genetics*
  • Symporters / metabolism

Substances

  • Bacterial Proteins
  • Symporters
  • melibiose permease
  • Sodium
  • Cysteine