A Novel Class of Modular Transporters for Vitamins in Prokaryotes

Author:

Rodionov Dmitry A.12,Hebbeln Peter3,Eudes Aymerick4,ter Beek Josy5,Rodionova Irina A.1,Erkens Guus B.5,Slotboom Dirk J.5,Gelfand Mikhail S.26,Osterman Andrei L.1,Hanson Andrew D.4,Eitinger Thomas3

Affiliation:

1. Burnham Institute for Medical Research, La Jolla, California 92037

2. Institute for Information Transmission Problems, the A. A. Kharkevich Institute, RAS, Bolshoi Karetny pereulok 19, Moscow 127994, Russia

3. Institut für Biologie/Mikrobiologie, Humboldt Universität zu Berlin, Chausseestraße 117, 10115 Berlin, Germany

4. Horticultural Sciences Department, University of Florida, Gainesville, Florida 32611

5. Department of Biochemistry, University of Groningen, Groningen Biomolecular Science and Biotechnology Institute, Nijenborgh 4, 9747 AG Groningen, The Netherlands

6. Faculty of Bioengineering and Bioinformatics, Moscow State University, Vorobievy Gory 1-73, Moscow 119992, Russia

Abstract

ABSTRACT The specific and tightly controlled transport of numerous nutrients and metabolites across cellular membranes is crucial to all forms of life. However, many of the transporter proteins involved have yet to be identified, including the vitamin transporters in various human pathogens, whose growth depends strictly on vitamin uptake. Comparative analysis of the ever-growing collection of microbial genomes coupled with experimental validation enables the discovery of such transporters. Here, we used this approach to discover an abundant class of vitamin transporters in prokaryotes with an unprecedented architecture. These transporters have energy-coupling modules comprised of a conserved transmembrane protein and two nucleotide binding proteins similar to those of ATP binding cassette (ABC) transporters, but unlike ABC transporters, they use small integral membrane proteins to capture specific substrates. We identified 21 families of these substrate capture proteins, each with a different specificity predicted by genome context analyses. Roughly half of the substrate capture proteins (335 cases) have a dedicated energizing module, but in 459 cases distributed among almost 100 gram-positive bacteria, including numerous human pathogens, different and unrelated substrate capture proteins share the same energy-coupling module. The shared use of energy-coupling modules was experimentally confirmed for folate, thiamine, and riboflavin transporters. We propose the name energy-coupling factor transporters for the new class of membrane transporters.

Publisher

American Society for Microbiology

Subject

Molecular Biology,Microbiology

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