Functional characterization of the alanine-serine-cysteine exchanger of Carnobacterium sp AT7

Author:

Bartoccioni Paola12,Fort Joana123ORCID,Zorzano Antonio134,Errasti-Murugarren Ekaitz1ORCID,Palacín Manuel123

Affiliation:

1. Institute for Research in Biomedicine, Barcelona Institute of Science and Technology, Barcelona, Spain

2. Centro de Investigación Biomédica en Red de Enfermedades Raras, Barcelona, Spain

3. Department of Biochemistry and Molecular Biomedicine, Faculty of Biology, University of Barcelona, Barcelona, Spain

4. Centro de Investigación Biomédica en Red de Diabetes y Enfermedades Metabólicas Asociadas, Barcelona, Spain

Abstract

Many key cell processes require prior cell uptake of amino acids from the environment, which is facilitated by cell membrane amino acid transporters such as those of the L-type amino acid transporter (LAT) subfamily. Alterations in LAT subfamily amino acid transport are associated with several human diseases, including cancer, aminoacidurias, and neurodegenerative conditions. Therefore, from the perspective of human health, there is considerable interest in obtaining structural information about these transporter proteins. We recently solved the crystal structure of the first LAT transporter, the bacterial alanine-serine-cysteine exchanger of Carnobacterium sp AT7 (BasC). Here, we provide a complete functional characterization of detergent-purified, liposome-reconstituted BasC transporter to allow the extension of the structural insights into mechanistic understanding. BasC is a sodium- and proton-independent small neutral amino acid exchanger whose substrate and inhibitor selectivity are almost identical to those previously described for the human LAT subfamily member Asc-1. Additionally, we show that, like its human counterparts, this transporter has apparent affinity asymmetry for the intra- and extracellular substrate binding sites—a key feature in the physiological role played by these proteins. BasC is an excellent paradigm of human LAT transporters and will contribute to our understanding of the molecular mechanisms underlying substrate recognition and translocation at both sides of the plasma membrane.

Funder

Sara Borrell

Spanish Biomedical Research Center in Rare Diseases

Spanish Ministry of Science and Innovation

Fundació la Marató TV3

Generalitat de Catalunya

Publisher

Rockefeller University Press

Subject

Physiology

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