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Heissel, S.

Publications and source records attributed to Heissel, S..

2 recordsLinked to original sources

Integrative genetic analysis identifies FLVCR1 as an essential component of choline transport in mammals

Genome-wide association studies (GWAS) of serum metabolites have the potential to uncover genes that influence human metabolism. Here, we combined an integrative genetic analysis associating serum metabolites to membrane transporters with a coessentiality map of metabolic genes. This analysis revealed a connection between feline leukemia virus subgroup C cellular receptor 1 (FLVCR1) - a plasma membrane protein - and phosphocholine, a downstream metabolite of choline metabolism. Loss of FLVCR1 in human cells and in mice strongly impairs choline metabolism due to a block in choline import. Consistently, CRISPR-based genetic screens identified several components of the membrane phospholipid machinery as synthetic lethal with FLVCR1 loss. Finally, cells lacking FLVCR1 exhibit mitochondrial defects and upregulate the integrated stress response (ISR) through heme regulated inhibitors kinase (HRI). Altogether, these findings identify FLVCR1 as a universal mediator of choline transport in mammals and provide a platform to discover substrates for unknown metabolite transporters.

cell biology↗

SLC25A39 is necessary for mitochondrial glutathione import in mammalian cells

Glutathione (GSH) is a small molecule thiol abundantly present in all eukaryotes with key roles in oxidative metabolism1. Mitochondria, as the major site of oxidative reactions, must maintain sufficient levels of GSH to perform protective and biosynthetic functions2. GSH is exclusively synthesized in the cytosol, yet the molecular machinery involved in mitochondrial GSH import remain elusive. Here, using organellar proteomics and metabolomics approaches, we identify SLC25A39, a mitochondrial membrane carrier of unknown function, to regulate GSH transport into mitochondria. SLC25A39 loss reduces mitochondrial GSH import and abundance without impacting whole cell GSH levels. Cells lacking both SLC25A39 and its paralog SLC25A40 exhibit defects in the activity and stability of ironsulfur cluster containing proteins. Moreover, mitochondrial GSH import is necessary for cell proliferation in vitro and red blood cell development in mice. Remarkably, the heterologous expression of an engineered bifunctional bacterial GSH biosynthetic enzyme (GshF) in mitochondria enabled mitochondrial GSH production and ameliorated the metabolic and proliferative defects caused by its depletion. Finally, GSH availability negatively regulates SLC25A39 protein abundance, coupling redox homeostasis to mitochondrial GSH import in mammalian cells. Our work identifies SLC25A39 as an essential and regulated component of the mitochondrial GSH import machinery.

biochemistry↗