Natural variations in small RNA origin loci generate circuit diversity underlying temperature acclimation in <i> <i>Caenorhabditis elegans</i> </i>

M Misaki Okahata (Department of Biology, Graduate School of Natural Science, Konan University) T Taichiro Iki (Graduate School of Biostudies, Kyoto University) S Sawako Yoshina (Department of Physiology, Tokyo Women’s Medical University School of Medicine) Y Yohei Minakuchi (Advanced Genomics Center, National Institute of Genetics) Y Yukina Mori (Department of Biology, Graduate School of Natural Science, Konan University) N Natsumi Sawada (Department of Biology, Graduate School of Natural Science, Konan University) T Toru Miura (Misaki Marine Biological Station, School of Science, The University of Tokyo) T Toshie Kai (Germline Biology Group, Graduate School of Frontier Biosciences, The University of Osaka) A Atsushi Toyoda S Shohei Mitani (Department of Physiology, Tokyo Women’s Medical University School of Medicine) A Akane Ohta (Department of Biology, Graduate School of Natural Science, Konan University) A Atsushi Kuhara (Department of Biology, Graduate School of Natural Science, Konan University)

Abstract

Individuals respond differently to environmental cues because of inherent variations in genome sequences. This study demonstrates that natural variation in small RNA (sRNA) within embryos epigenetically shapes adaptive neural circuits underlying diverse animal temperature acclimation. We performed comparative genome profiling of Caenorhabditis elegans variants with differential temperature acclimation and identified smrn-1 , a member of a novel gene family predicted to be conserved within nematode genomes. Unexpectedly, determination of full-length smrn-1 sequence by long-read sequencing revealed 1791 orthologues present in human genome. smrn-1 was among the most abundant sRNA-accumulating genes downstream of the helicase ERI-6/7 functioning in embryos. smrn-1 -derived sRNAs were loaded onto the Argonaute protein HRDE-1, thereby regulating axonogenesis of O 2 -sensing BAG neurons through upregulation of an axonogenesis regulator protein. O 2 information from BAG influences the thermal responsiveness of temperature-sensing neurons, resulting in individual diversity in temperature acclimation. Thus, natural variation in embryonic sRNA epigenetically forms adaptive neural circuits associated with diverse temperature acclimation. We propose that accumulation of gene polymorphisms producing epigenetic regulators during nematode evolution generates adaptive neural circuits for temperature acclimation.

Article Details

Volume / Issue Vol. 123, Issue 21
Published May 26, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (12)

M

Misaki Okahata

Department of Biology, Graduate School of Natural Science, Konan University

T

Taichiro Iki

Graduate School of Biostudies, Kyoto University

S

Sawako Yoshina

Department of Physiology, Tokyo Women’s Medical University School of Medicine

Y

Yohei Minakuchi

Advanced Genomics Center, National Institute of Genetics

Y

Yukina Mori

Department of Biology, Graduate School of Natural Science, Konan University

N

Natsumi Sawada

Department of Biology, Graduate School of Natural Science, Konan University

T

Toru Miura

Misaki Marine Biological Station, School of Science, The University of Tokyo

T

Toshie Kai

Germline Biology Group, Graduate School of Frontier Biosciences, The University of Osaka

A

Atsushi Toyoda

S

Shohei Mitani

Department of Physiology, Tokyo Women’s Medical University School of Medicine

A

Akane Ohta

Department of Biology, Graduate School of Natural Science, Konan University

A

Atsushi Kuhara

Department of Biology, Graduate School of Natural Science, Konan University