Development of the membrane ceiling method for in vitro spermatogenesis

M Maki Kamoshita (Department of Experimental Genome Research, Research Institute for Microbial Diseases, The University of Osaka) H Hiroki Shirai H Hiroko Nakamura (Division of Medical Engineering Collaboration for Medical Research, Micro/Nano Technology Center, Tokai University) T Tetsuya Kishimoto Y Yuki Hatanaka (Department of Experimental Genome Research, Research Institute for Microbial Diseases, The University of Osaka) D Daisuke Mashiko (Department of Experimental Genome Research, Research Institute for Microbial Diseases, The University of Osaka) K Katsuhiro Esashika J Jingjing Yang (Institute of Environmental Processes and Pollution Control, School of Environment and Ecology) S Satoshi Yamasaki T Takehiko Ogawa H Hiroshi Kimura (Cell Biology Center, Institute of Innovative Research) M Masahito Ikawa (Department of Experimental Genome Research, Research Institute for Microbial Diseases, The University of Osaka)

Abstract

AbstractSpermatogenesis is one of the most complex processes of cell differentiation and its failure is a major cause of male infertility. Therefore, a proper model that recapitulates spermatogenesis in vitro has been long sought out for basic and clinical research. Testis organ culture using the gas-liquid interphase method has been shown to support spermatogenesis in mice and rats. However, the conventional method using agarose gel has limitations including medium replacement efficiency and live imaging because agarose absorbs medium and is not transparent. To overcome this issue, we developed a new device using microporous membranes and oxygen-permeable materials. Mouse testes sandwiched between a microporous polyethylene terephthalate (PET) membrane on top and an oxygen-permeable 4-polymethyl-1-pentene polymer (PMP) membrane base maintained spermatogenesis over months. The chamber volume was minimized to 0.1% of the culture medium. Weekly time-lapse live imaging enabled us to observe transgenically fluorescent acrosome and nuclear shape formation throughout spermatogenesis. Finally, we obtained healthy fertile offspring from spermatozoa generated in our system. The device could be used not only for basic research to understand spermatogenesis but also for applied research, such as diagnosing and treating male infertility.

Article Details

Volume / Issue Vol. 15, Issue 1
Published January 03, 2025
ISSN 2045-2322
Publisher Nature Portfolio

Journal Info

Scientific Reports

Nature Portfolio

ISSN: 2045-2322 Open Access Life Sciences

Authors (12)

M

Maki Kamoshita

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

H

Hiroki Shirai

H

Hiroko Nakamura

Division of Medical Engineering Collaboration for Medical Research, Micro/Nano Technology Center, Tokai University

T

Tetsuya Kishimoto

Y

Yuki Hatanaka

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

D

Daisuke Mashiko

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

K

Katsuhiro Esashika

J

Jingjing Yang

Institute of Environmental Processes and Pollution Control, School of Environment and Ecology

S

Satoshi Yamasaki

T

Takehiko Ogawa

H

Hiroshi Kimura

Cell Biology Center, Institute of Innovative Research

M

Masahito Ikawa

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