Gain-of-function genetic screens in human cells identify SLC transporters overcoming environmental nutrient restrictions

Author:

Rebsamen Manuele12ORCID,Girardi Enrico1,Sedlyarov Vitaly1,Scorzoni Stefania1,Papakostas Konstantinos1,Vollert Manuela1,Konecka Justyna1,Guertl Bettina1,Klavins Kristaps1,Wiedmer Tabea1ORCID,Superti-Furga Giulio13ORCID

Affiliation:

1. CeMM Research Center for Molecular Medicine of the Austrian Academy of Sciences, Vienna, Austria

2. Department of Immunobiology, University of Lausanne, Epalinges, Switzerland

3. Center for Physiology and Pharmacology, Medical University of Vienna, Vienna, Austria

Abstract

Solute carrier (SLC) transporters control fluxes of nutrients and metabolites across membranes and thereby represent a critical interface between the microenvironment and cellular and subcellular metabolism. Because of substantial functional overlap, the interplay and relative contributions of SLCs in response to environmental stresses remain poorly elucidated. To infer functional relationships between SLCs and metabolites, we developed a strategy to identify SLCs able to sustain cell viability and proliferation under growth-limiting concentrations of essential nutrients. One-by-one depletion of 13 amino acids required for cell proliferation enabled gain-of-function genetic screens using a SLC-focused CRISPR/Cas9–based transcriptional activation approach to uncover transporters relieving cells from growth-limiting metabolic bottlenecks. Among the transporters identified, we characterized the cationic amino acid transporterSLC7A3as a gene that, when up-regulated, overcame low availability of arginine and lysine by increasing their uptake, whereas SLC7A5 was able to sustain cellular fitness upon deprivation of several neutral amino acids. Moreover, we identified metabolic compensation mediated by the glutamate/aspartate transporters SLC1A2 and SLC1A3 under glutamine-limiting conditions. Overall, this gain-of-function approach using human cells uncovered functional transporter-nutrient relationships and revealed that transport activity up-regulation may be sufficient to overcome environmental metabolic restrictions.

Funder

Innovative Medicines Initiative 2 Joint Undertaking

European Research Council

Publisher

Life Science Alliance, LLC

Subject

Health, Toxicology and Mutagenesis,Plant Science,Biochemistry, Genetics and Molecular Biology (miscellaneous),Ecology

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