Formation of a complex between TMEM217 and the sodium-proton exchanger SLC9C1 is crucial for mouse sperm motility and male fertility

R Rie Iida-Norita (Department of Experimental Genome Research, Research Institute for Microbial Diseases, The University of Osaka) H Haruhiko Miyata (Department of Experimental Genome Research, Research Institute for Microbial Diseases, The University of Osaka) A Akinori Ninomiya (Department of Experimental Genome Research, Research Institute for Microbial Diseases, The University of Osaka) C Chihiro Emori (Department of Experimental Genome Research, Research Institute for Microbial Diseases, The University of Osaka) M Maki Kamoshita (Department of Experimental Genome Research, Research Institute for Microbial Diseases, The University of Osaka) C Chen Pan (Department of Experimental Genome Research, Research Institute for Microbial Diseases, The University of Osaka) H Haoting Wang (Department of Experimental Genome Research, Research Institute for Microbial Diseases, The University of Osaka) M Masahito Ikawa (Department of Experimental Genome Research, Research Institute for Microbial Diseases, The University of Osaka)

Abstract

Sperm motility is essential for male fertility and is tightly controlled by signaling events in the flagellum. Slc9c1 encodes a sperm-specific Na + /H + exchanger (sNHE/SLC9C1) that localizes to the flagellum and is indispensable for sperm motility and male fertility. SLC9C1 is unique among Na + /H + exchangers in that it possesses a voltage-sensing domain (VSD), the physiological function of which remains poorly understood in mammals. Here, by analyzing coevolving genes with Slc9c1 , we identified Tmem217 , which encodes a transmembrane protein that is localized in the sperm flagellum. Knockout (KO) of Tmem217 in mice resulted in sperm motility defects and male infertility, phenocopying Slc9c1 KO mice. Coimmunoprecipitation and structural prediction analyses indicated that TMEM217 binds to SLC9C1 via its VSD. Further analyses indicated that the amounts of SLC9C1 and its associated protein, soluble adenylyl cyclase (sAC), were lost in mature Tmem217 KO spermatozoa, leading to disrupted 3′,5′-cyclic monophosphate (cAMP) signaling pathways. Remarkably, cAMP analogs restored the impaired motility and fertilizing ability of Tmem217 KO spermatozoa in vitro, validating the essential role of TMEM217 in regulating cAMP production. Our findings indicate that the association of TMEM217 with SLC9C1 via its VSD is critical for the proper organization and function of the SLC9C1–sAC–cAMP axis in mature spermatozoa.

Article Details

Volume / Issue Vol. 122, Issue 42
Published October 21, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (8)

R

Rie Iida-Norita

Department of Experimental Genome Research, Research Institute for Microbial Diseases, The University of Osaka

H

Haruhiko Miyata

Department of Experimental Genome Research, Research Institute for Microbial Diseases, The University of Osaka

A

Akinori Ninomiya

Department of Experimental Genome Research, Research Institute for Microbial Diseases, The University of Osaka

C

Chihiro Emori

Department of Experimental Genome Research, Research Institute for Microbial Diseases, The University of Osaka

M

Maki Kamoshita

Department of Experimental Genome Research, Research Institute for Microbial Diseases, The University of Osaka

C

Chen Pan

Department of Experimental Genome Research, Research Institute for Microbial Diseases, The University of Osaka

H

Haoting Wang

Department of Experimental Genome Research, Research Institute for Microbial Diseases, The University of Osaka

M

Masahito Ikawa

Department of Experimental Genome Research, Research Institute for Microbial Diseases, The University of Osaka