Thiazoline-related innate fear stimuli orchestrate hypothermia and anti-hypoxia via sensory TRPA1 activation

Author:

Matsuo Tomohiko,Isosaka Tomoko,Hayashi Yuichiro,Tang Lijun,Doi AkihiroORCID,Yasuda Aiko,Hayashi MikioORCID,Lee Chia-Ying,Cao Liqin,Kutsuna Natsumaro,Matsunaga SachihiroORCID,Matsuda Takeshi,Yao Ikuko,Setou Mitsuyoshi,Kanagawa Dai,Higasa Koichiro,Ikawa MasahitoORCID,Liu QinghuaORCID,Kobayakawa ReikoORCID,Kobayakawa KoORCID

Abstract

AbstractThiazoline-related innate fear-eliciting compounds (tFOs) orchestrate hypothermia, hypometabolism, and anti-hypoxia, which enable survival in lethal hypoxic conditions. Here, we show that most of these effects are severely attenuated in transient receptor potential ankyrin 1 (Trpa1) knockout mice. TFO-induced hypothermia involves the Trpa1-mediated trigeminal/vagal pathways and non-Trpa1 olfactory pathway. TFOs activate Trpa1-positive sensory pathways projecting from trigeminal and vagal ganglia to the spinal trigeminal nucleus (Sp5) and nucleus of the solitary tract (NTS), and their artificial activation induces hypothermia. TFO presentation activates the NTS-Parabrachial nucleus pathway to induce hypothermia and hypometabolism; this activation was suppressed in Trpa1 knockout mice. TRPA1 activation is insufficient to trigger tFO-mediated anti-hypoxic effects; Sp5/NTS activation is also necessary. Accordingly, we find a novel molecule that enables mice to survive in a lethal hypoxic condition ten times longer than known tFOs. Combinations of appropriate tFOs and TRPA1 command intrinsic physiological responses relevant to survival fate.

Funder

MEXT | Japan Society for the Promotion of Science

Takeda Science Foundation

Daiichi Sankyo Foundation of Life Science

Naito Foundation

Sumitomo Foundation

Uehara Memorial Foundation

Asahi Glass Foundation

Terumo Foundation for Life Sciences and Arts

Canon Foundation

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry

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