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February 19, 2026Genetics0 citationsOpen Access

The TWK-26/KCNK3 potassium channel and FLR-4 protein kinase coordinate nutrient absorption in the C. elegans intestine

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STSarah K. TorzoneUniversity of North Carolina at Chapel HillTCTrae CarrollUniversity of Rochester Medical CenterPBPeter C Breen

Key Points

  • The research aims to explore the roles of TWK-26 and FLR-4 in nutrient absorption within the C. elegans intestine.
  • Investigated mutations in drl-1 and flr-4 genes and associated phenotypes
  • Examined gain-of-function mutations in twk-26
  • Analyzed pH gradients in flr-4 mutants
  • Evaluated impacts on amino acid absorption and lysosome activity
  • Gain-of-function mutation in twk-26 improves nutrient absorption in certain mutant backgrounds
  • Loss of flr-4 disrupts intestinal pH homeostasis
  • Impairment in amino acid absorption linked to altered ion channel signaling

Abstract

Abstract Ion channels are necessary for proper water and nutrient absorption in the intestine, thereby supporting cellular metabolism and organismal growth. While a role for Na+ co-transporters and pumps in intestinal nutrient absorption is well defined, how individual K+ uniporters function in this process is poorly understood. Mutations in the Caenorhabditis elegans genes drl-1 and flr-4, which encode two unique kinases that are components of a mitogen-activated protein kinase (MAPK) pathway, or the flr-1 Na+ ion channel, cause severe growth defects, reduced lipid storage, and a dramatic increase in autophagic lysosomes. Here, we show that a gain-of-function mutation in twk-26, which encodes a two-pore domain K+ ion channel orthologous to human KCNK3, facilitates nutrient absorption and suppresses the metabolic and developmental defects caused by loss of DRL-1, FLR-4, or FLR-1 signaling. We reveal that these phenotypes likely arise from impaired intestinal amino acid absorption, which is restored upon activation of TWK-26. Furthermore, we show that loss of flr-4 disrupts intracellular and extracellular pH gradients, suggesting that the FLR-4 pathway may be necessary to maintain intestinal ion homeostasis and facilitate nutrient absorption. Importantly, the altered pH gradients in the flr-4 mutant are partially restored by the twk-26 gain-of-function mutation. Thus, this study uncovers a new role for the TWK-26 ion channel in governing intestinal physiology and metabolism.

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Cite This Study

Torzone et al. (2026) studied this question.

synapsesocial.com/papers/6996a8c7ecb39a600b3efcafhttps://doi.org/10.1093/genetics/iyag044
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