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Updated: Sep 4, 2026

Yeast Luminometric and Xenopus Oocyte Electrophysiological Examinations of the Molecular Mechanosensitivity of TRPV4
Published on: December 31, 2013
A single-point mutation in TRPA1 drives heat resilience in oviparous embryos
Tian-Yu Feng1,2,3, Wenqi Dong4,5, Dong Zheng4
1State Key Laboratory of Wetland Conservation and Restoration, National Observations and Research Station for Wetland Ecosystems of the Yangtze Estuary, Ministry of Education Key Laboratory for Biodiversity Science and Ecological Engineering, and Institute of Eco-Chongming, School of Life Sciences, Fudan University, Shanghai 200438, China.
Abstract:
The molecular basis for species-specific thermal adaptation in vertebrate sensory systems is not well understood. We show that a single-amino-acid change in the pore domain of ion channel transient receptor potential ankyrin 1 (TRPA1) during the synapsid-diapsid split rewired its heat sensitivity. Many oviparous vertebrates retaining the ancestral residue display TRPA1 heat activation, protecting embryonic development under high temperatures, whereas selection for an aspartate in mammals reduced thermal responsiveness. Blocking heat-activated TRPA1 in oviparous embryos impaired dorsal-root-ganglion axon growth, disrupted myelination, and caused limb weakness at hatching. Mechanistically, TRPA1-mediated Ca2+ influx triggers nuclear translocation of SP1, activating CADM1 and MDGA1. Together, these results uncover an unexpected developmental role of TRPA1 in heat resilience, linking a single mutational event to embryonic survival under thermal stress and highlighting ion-channel evolution in adaptation.
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