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To, T.-L.

Publications and source records attributed to To, T.-L..

2 recordsLinked to original sources

Effectors enabling adaptation to mitochondrial complex I loss in Hurthle cell carcinoma

Oncocytic (Hurthle cell) carcinoma of the thyroid (HCC) is genetically characterized by complex I mitochondrial DNA mutations and widespread chromosomal losses. Here, we utilize RNA-seq and metabolomics to identify candidate molecular effectors activated by these genetic drivers. We find glutathione biosynthesis, amino acid metabolism, mitochondrial unfolded protein response, and lipid peroxide scavenging, a safeguard against ferroptosis, to be increased in HCC. A CRISPR-Cas9 knockout screen in a new HCC model reveals which pathways are key for fitness, and highlights loss of GPX4, a defense against ferroptosis, as a strong liability. Rescuing complex I redox activity with the yeast NADH dehydrogenase (NDI1) in HCC cells diminishes ferroptosis sensitivity, while inhibiting complex I in normal thyroid cells augments ferroptosis induction. Our work demonstrates unmitigated lipid peroxide stress to be an HCC vulnerability that is mechanistically coupled to the genetic loss of mitochondrial complex I activity. SignificanceOncocytic (Hurthle cell) carcinoma of the thyroid (HCC) is a unique tumor with a remarkable accumulation of mitochondria. HCC harbors unique genetic alterations, including mitochondrial DNA (mtDNA) mutations in complex I genes and widespread loss-of-heterozygosity in the nuclear DNA. With less favorable clinical outcomes, new therapies for HCC are needed, especially since these tumors show intrinsic resistance to radioactive iodine, which is one of the main treatments for metastatic well-differentiated thyroid cancer. An absence of authentic HCC cell lines and animal models has hindered the mechanistic understanding of this disease and slowed therapeutic progress. In this study, we describe the transcriptomic and metabolomic landscape of HCC and present new HCC models that recapitulate key mtDNA and nuclear DNA alterations. A targeted CRISPR-Cas9 knockout screen in an HCC cell line highlights the molecular programs nominated by our -omics profiling that are required for cell fitness. This screen suggests that lipid peroxide scavenging, a defense system against an iron-dependent form of cell death known as ferroptosis, is a vulnerability in HCC that is coupled to complex I loss, and that targeting this pathway may help patients with HCC.

cancer biology↗

Combinatorial G x G x E CRISPR screening and functional analysis highlights SLC25A39 in mitochondrial GSH transport

The SLC25 carrier family consists of 53 transporters that shuttle nutrients and co-factors across mitochondrial membranes1-3. The family is highly redundant and their transport activities coupled to metabolic state. Here, we introduce a pooled, dual CRISPR screening strategy that knocks out pairs of transporters in four metabolic states -- glucose, galactose, OXPHOS inhibition, and absence of pyruvate -- designed to unmask the inter-dependence of these genes. In total, we screened 63 genes in four metabolic states, corresponding to 2016 single and pair-wise genetic perturbations. We recovered 19 gene-by-environment (GxE) interactions and 9 gene-by-gene (GxG) interactions. One GxE interaction hit illustrated that the fitness defect in the mitochondrial folate carrier (SLC25A32) KO cells was genetically buffered in galactose due to a lack of substrate in de novo purine biosynthesis. Another GxE interaction hit revealed non-equivalence of the paralogous ATP/ADP exchangers (ANTs) with ANT2 specifically required during OXPHOS inhibition. GxG analysis highlighted a buffering interaction between the iron transporter SLC25A37 and the poorly characterized SLC25A39. Mitochondrial metabolite profiling, organelle transport assays, and structure-guided mutagenesis suggests SLC25A39 is critical for mitochondrial glutathione (GSH) transport. Our work underscores the importance of systemetically investigating family-wide genetic interactions between mitochondrial transporters across many metabolic environments.

cell biology↗