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Natural variation in expression of the mitochondrial flavoprotein WAH-1 alters response to cyanide in C. elegans
Natural variation in expression of the mitochondrial flavoprotein WAH-1 alters response to cyanide in C. elegans
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Natural variation in expression of the mitochondrial flavoprotein WAH-1 alters response to cyanide in C. elegans
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Natural variation in expression of the mitochondrial flavoprotein WAH-1 alters response to cyanide in C. elegans
Natural variation in expression of the mitochondrial flavoprotein WAH-1 alters response to cyanide in C. elegans

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Natural variation in expression of the mitochondrial flavoprotein WAH-1 alters response to cyanide in C. elegans
Natural variation in expression of the mitochondrial flavoprotein WAH-1 alters response to cyanide in C. elegans
Paper

Natural variation in expression of the mitochondrial flavoprotein WAH-1 alters response to cyanide in C. elegans

2023
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Overview
C. elegans is a free-living nematode that must adapt to a wide range of environments including both aerobic and anaerobic conditions. To survive in low oxygen, C. elegans can use an unusual form of anaerobic respiration that relies on rhodoquinone (RQ) as an alternative electron carrier. Parasitic nematodes like hookworm and whipworm also require rhodoquinone-dependent metabolism (RQDM) to survive in the highly anaerobic conditions in the human gut. Understanding how RQDM is regulated in C. elegans may thus identify new ways to combat these closely-related major human pathogens. We previously established a simple movement-based assay for RQDM in C. elegans. In this study, we tested a panel of wild-type isolates of C. elegans in our RQDM assay and find substantial variation in their ability to use RQDM. We carried out a genome-wide association study (GWAS) to identify loci that affect RQDM — this identified a single major QTL on the right arm of Chromosome III. We used RNAi to test almost all genes within the QTL region for involvement in RQDM and found one gene, wah-1, that strongly modulates RQDM-dependent recovery in C. elegans. WAH-1 is a mitochondrial flavoprotein that affects the electron transport chain, consistent with a role in RQDM. We show that wah-1 expression varies between isolates due to major changes in wah-1 transcript structures and this correlates tightly with variation in RQDM. Finally, we show that there is similar complexity to wah-1 transcription in parasitic nematodes and that wah-1 transcript structures change as parasites shift from aerobic to anaerobic, RQ-requiring metabolism. We thus conclude that reduced wah-1 expression correlates with increased ability to survive in conditions where RQDM is essential.Competing Interest StatementThe authors have declared no competing interest.