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Arginine-selective modulation of the lysosomal transporter PQLC2 through a gate-tuning mechanism

Lysosomes degrade excess or damaged cellular components and recycle their building blocks through membrane transporters. They also act as nutrient-sensing signaling hubs to coordinate cell responses. The membrane protein PQ-loop repeat-containing protein 2 (PQLC2; “picklock two”) is implicated in bo...

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Autores principales: Leray, Xavier, Conti, Rossella, Li, Yan, Debacker, Cécile, Castelli, Florence, Fenaille, François, Zdebik, Anselm A., Pusch, Michael, Gasnier, Bruno
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8364130/
https://www.ncbi.nlm.nih.gov/pubmed/34344826
http://dx.doi.org/10.1073/pnas.2025315118
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author Leray, Xavier
Conti, Rossella
Li, Yan
Debacker, Cécile
Castelli, Florence
Fenaille, François
Zdebik, Anselm A.
Pusch, Michael
Gasnier, Bruno
author_facet Leray, Xavier
Conti, Rossella
Li, Yan
Debacker, Cécile
Castelli, Florence
Fenaille, François
Zdebik, Anselm A.
Pusch, Michael
Gasnier, Bruno
author_sort Leray, Xavier
collection PubMed
description Lysosomes degrade excess or damaged cellular components and recycle their building blocks through membrane transporters. They also act as nutrient-sensing signaling hubs to coordinate cell responses. The membrane protein PQ-loop repeat-containing protein 2 (PQLC2; “picklock two”) is implicated in both functions, as it exports cationic amino acids from lysosomes and serves as a receptor and amino acid sensor to recruit the C9orf72/SMCR8/WDR41 complex to lysosomes upon nutrient starvation. Its transport activity is essential for drug treatment of the rare disease cystinosis. Here, we quantitatively studied PQLC2 transport activity using electrophysiological and biochemical methods. Charge/substrate ratio, intracellular pH, and reversal potential measurements showed that it operates in a uniporter mode. Thus, PQLC2 is uncoupled from the steep lysosomal proton gradient, unlike many lysosomal transporters, enabling bidirectional cationic amino acid transport across the organelle membrane. Surprisingly, the specific presence of arginine, but not other substrates (lysine, histidine), in the discharge (“trans”) compartment impaired PQLC2 transport. Kinetic modeling of the uniport cycle recapitulated the paradoxical substrate-yet-inhibitor behavior of arginine, assuming that bound arginine facilitates closing of the transporter’s cytosolic gate. Arginine binding may thus tune PQLC2 gating to control its conformation, suggesting a potential mechanism for nutrient signaling by PQLC2 to its interaction partners.
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spelling pubmed-83641302021-08-24 Arginine-selective modulation of the lysosomal transporter PQLC2 through a gate-tuning mechanism Leray, Xavier Conti, Rossella Li, Yan Debacker, Cécile Castelli, Florence Fenaille, François Zdebik, Anselm A. Pusch, Michael Gasnier, Bruno Proc Natl Acad Sci U S A Biological Sciences Lysosomes degrade excess or damaged cellular components and recycle their building blocks through membrane transporters. They also act as nutrient-sensing signaling hubs to coordinate cell responses. The membrane protein PQ-loop repeat-containing protein 2 (PQLC2; “picklock two”) is implicated in both functions, as it exports cationic amino acids from lysosomes and serves as a receptor and amino acid sensor to recruit the C9orf72/SMCR8/WDR41 complex to lysosomes upon nutrient starvation. Its transport activity is essential for drug treatment of the rare disease cystinosis. Here, we quantitatively studied PQLC2 transport activity using electrophysiological and biochemical methods. Charge/substrate ratio, intracellular pH, and reversal potential measurements showed that it operates in a uniporter mode. Thus, PQLC2 is uncoupled from the steep lysosomal proton gradient, unlike many lysosomal transporters, enabling bidirectional cationic amino acid transport across the organelle membrane. Surprisingly, the specific presence of arginine, but not other substrates (lysine, histidine), in the discharge (“trans”) compartment impaired PQLC2 transport. Kinetic modeling of the uniport cycle recapitulated the paradoxical substrate-yet-inhibitor behavior of arginine, assuming that bound arginine facilitates closing of the transporter’s cytosolic gate. Arginine binding may thus tune PQLC2 gating to control its conformation, suggesting a potential mechanism for nutrient signaling by PQLC2 to its interaction partners. National Academy of Sciences 2021-08-10 2021-08-03 /pmc/articles/PMC8364130/ /pubmed/34344826 http://dx.doi.org/10.1073/pnas.2025315118 Text en Copyright © 2021 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Leray, Xavier
Conti, Rossella
Li, Yan
Debacker, Cécile
Castelli, Florence
Fenaille, François
Zdebik, Anselm A.
Pusch, Michael
Gasnier, Bruno
Arginine-selective modulation of the lysosomal transporter PQLC2 through a gate-tuning mechanism
title Arginine-selective modulation of the lysosomal transporter PQLC2 through a gate-tuning mechanism
title_full Arginine-selective modulation of the lysosomal transporter PQLC2 through a gate-tuning mechanism
title_fullStr Arginine-selective modulation of the lysosomal transporter PQLC2 through a gate-tuning mechanism
title_full_unstemmed Arginine-selective modulation of the lysosomal transporter PQLC2 through a gate-tuning mechanism
title_short Arginine-selective modulation of the lysosomal transporter PQLC2 through a gate-tuning mechanism
title_sort arginine-selective modulation of the lysosomal transporter pqlc2 through a gate-tuning mechanism
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8364130/
https://www.ncbi.nlm.nih.gov/pubmed/34344826
http://dx.doi.org/10.1073/pnas.2025315118
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