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在精氨酸受限条件下,癌细胞生长需要溶质载体家族7成员5(SLC7A5)。

SLC7A5 is required for cancer cell growth under arginine-limited conditions.

作者信息

Dunlap Kyle N, Bender Austin, Bowles Alexis, Bott Alex J, Tay Joshua, Grossmann Allie H, Rutter Jared, Ducker Gregory S

机构信息

Department of Biochemistry, University of Utah, Salt Lake City, UT 84112, USA.

Department of Biochemistry, University of Utah, Salt Lake City, UT 84112, USA; Howard Hughes Medical Institute, University of Utah School of Medicine, Salt Lake City, UT 84112, USA.

出版信息

Cell Rep. 2025 Jan 28;44(1):115130. doi: 10.1016/j.celrep.2024.115130. Epub 2025 Jan 3.

Abstract

Tumor cells must optimize metabolite acquisition between synthesis and uptake from a microenvironment characterized by hypoxia, lactate accumulation, and depletion of many amino acids, including arginine. We performed a metabolism-focused functional screen using CRISPR-Cas9 to identify pathways and factors that enable tumor growth in an arginine-depleted environment. Our screen identified the SLC-family transporter SLC7A5 as required for growth, and we hypothesized that this protein functions as a high-affinity citrulline transporter. Using isotope tracing experiments, we show that citrulline uptake and metabolism into arginine are dependent upon expression of SLC7A5. Pharmacological inhibition of SLC7A5 blocks growth under low-arginine conditions across a diverse group of cancer cell lines. Loss of SLC7A5 reduces tumor growth and citrulline import in a mouse tumor model. We identify a conditionally essential role for SLC7A5 in arginine metabolism, and we propose that SLC7A5-targeting therapeutic strategies in cancer may be effective in the context of arginine limitation.

摘要

肿瘤细胞必须在合成和从以缺氧、乳酸积累以及包括精氨酸在内的多种氨基酸耗竭为特征的微环境中摄取代谢物之间优化代谢物获取。我们使用CRISPR-Cas9进行了一项以代谢为重点的功能筛选,以确定在精氨酸耗竭环境中使肿瘤生长的途径和因子。我们的筛选确定溶质载体(SLC)家族转运蛋白SLC7A5是生长所必需的,并且我们推测该蛋白作为一种高亲和力瓜氨酸转运蛋白发挥作用。使用同位素示踪实验,我们表明瓜氨酸摄取和代谢为精氨酸依赖于SLC7A5的表达。SLC7A5的药理学抑制在多种癌细胞系的低精氨酸条件下阻断生长。在小鼠肿瘤模型中,SLC7A5的缺失减少肿瘤生长和瓜氨酸导入。我们确定SLC7A5在精氨酸代谢中具有条件必需作用,并且我们提出在癌症中靶向SLC7A5的治疗策略在精氨酸限制的情况下可能有效。

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