Literature DB >> 23564009

Integration of the mouse sperm fertilization-related protein equatorin into the acrosome during spermatogenesis as revealed by super-resolution and immunoelectron microscopy.

Chizuru Ito1, Kenji Yamatoya, Keiichi Yoshida, Lisa Fujimura, Masahiko Hatano, Kenji Miyado, Kiyotaka Toshimori.   

Abstract

Spermatids must precisely integrate specific molecules into structurally supported domains that develop during spermatogenesis. Once established, the architecture of the acrosome contributes to the acrosome reaction, which occurs prior to gamete interaction in mammals. The present study aims to clarify the morphology associated with the integration of the mouse fertilization-related acrosomal protein equatorin (mEQT) into the developing acrosome. EQT mRNA was first detected by in situ hybridization in round spermatids but disappeared in early elongating spermatids. The molecular size of mEQT was approximately 65 kDa in the testis. Developmentally, EQT protein was first detected on the nascent acrosomal membrane in round spermatids at approximately step 3, was actively integrated into the acrosomal membranes of round spermatids in the following step and then participated in acrosome remodeling in elongating spermatids. This process was clearly visualized by high-resolution fluorescence microscopy and super-resolution stimulated emission depletion nanoscopy by using newly generated C-terminally green-fluorescent-protein-tagged mEQT transgenic mice. Immunogold electron microscopy revealed that mEQT was anchored to the acrosomal membrane, with the epitope region observed as lying 5-70 nm away from the membrane and was associated with the electron-dense acrosomal matrix. This new information about the process of mEQT integration into the acrosome during spermatogenesis should provide a better understanding of the mechanisms underlying not only acrosome biogenesis but also fertilization and male infertility.

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Year:  2013        PMID: 23564009     DOI: 10.1007/s00441-013-1605-y

Source DB:  PubMed          Journal:  Cell Tissue Res        ISSN: 0302-766X            Impact factor:   5.249


  5 in total

1.  KIF11 as a Potential Marker of Spermatogenesis Within Mouse Seminiferous Tubule Cross-sections.

Authors:  Miki Hara-Yokoyama; Hidetake Kurihara; Shozo Ichinose; Hironori Matsuda; Shizuko Ichinose; Masaru Kurosawa; Norihiro Tada; Chihiro Iwahara; Kazue Terasawa; Katarzyna A Podyma-Inoue; Koichi Furukawa; Kazuhisa Iwabuchi
Journal:  J Histochem Cytochem       Date:  2019-08-19       Impact factor: 2.479

2.  Biogenesis of sperm acrosome is regulated by pre-mRNA alternative splicing of Acrbp in the mouse.

Authors:  Yoshinori Kanemori; Yoshitaka Koga; Mai Sudo; Woojin Kang; Shin-Ichi Kashiwabara; Masahito Ikawa; Hidetoshi Hasuwa; Kiyoshi Nagashima; Yu Ishikawa; Narumi Ogonuki; Atsuo Ogura; Tadashi Baba
Journal:  Proc Natl Acad Sci U S A       Date:  2016-06-14       Impact factor: 11.205

3.  Distinct expression and localization of the type II diacylglycerol kinase isozymes δ, η and κ in the mouse reproductive organs.

Authors:  Takao Shionoya; Takako Usuki; Suguru Komenoi; Takeshi Isozaki; Hiromichi Sakai; Fumio Sakane
Journal:  BMC Dev Biol       Date:  2015-01-23       Impact factor: 1.978

Review 4.  The control of male fertility by spermatid-specific factors: searching for contraceptive targets from spermatozoon's head to tail.

Authors:  Su-Ren Chen; Aalia Batool; Yu-Qian Wang; Xiao-Xia Hao; Chawn-Shang Chang; C Yan Cheng; Yi-Xun Liu
Journal:  Cell Death Dis       Date:  2016-11-10       Impact factor: 8.469

5.  Mass spectrometry-based, label-free quantitative proteomics of round spermatids in mice.

Authors:  Hailong Wang; Yan Li; Lijuan Yang; Baofeng Yu; Ping Yan; Min Pang; Xiaobing Li; Hong Yang; Guoping Zheng; Jun Xie; Rui Guo
Journal:  Mol Med Rep       Date:  2014-08-06       Impact factor: 2.952

  5 in total

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