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Published on: March 16, 2022
A single amino acid mutation in the mouse MEIG1 protein disrupts a cargo transport system necessary for sperm
Wei Li1, Qian Huang2, Ling Zhang3
1Department of Physiology, Wayne State University, Detroit, Michigan, USA.
Abstract:
Mammalian spermatogenesis is a highly coordinated process that requires cooperation between specific proteins to coordinate diverse biological functions. For example, mouse Parkin coregulated gene (PACRG) recruits meiosis-expressed gene 1 (MEIG1) to the manchette during normal spermiogenesis. Here we mutated Y68 of MEIG1 using the CRISPR/cas9 system and examined the biological and physiological consequences in mice. All homozygous mutant males examined were completely infertile, and sperm count was dramatically reduced. The few developed sperm were immotile and displayed multiple abnormalities. Histological staining showed impaired spermiogenesis in these mutant mice. Immunofluorescent staining further revealed that this mutant MEIG1 was still present in the cell body of spermatocytes, but also that more MEIG1 accumulated in the acrosome region of round spermatids. The mutant MEIG1 and a cargo protein of the MEIG1/PACRG complex, sperm-associated antigen 16L (SPAG16L), were no longer found to be present in the manchette; however, localization of the PACRG component was not changed in the mutants. These findings demonstrate that Y68 of MEIG1 is a key amino acid required for PACRG to recruit MEIG1 to the manchette to transport cargo proteins during sperm flagella formation. Given that MEIG1 and PACRG are conserved in humans, small molecules that block MEIG1/PACRG interaction are likely ideal targets for the development of male contraconception drugs.
Insights
Mutating MEIG1 in mice caused infertility by disrupting sperm development. This key protein interaction is essential for sperm flagella formation and may be a target for male contraception.
Area of Science:
- Reproductive Biology
- Molecular Genetics
Background:
- Spermatogenesis relies on protein complexes for proper sperm development.
- Parkin coregulated gene (PACRG) and meiosis-expressed gene 1 (MEIG1) are crucial for spermiogenesis.
Purpose of the Study:
- To investigate the role of tyrosine 68 (Y68) in MEIG1 during spermatogenesis.
- To determine the physiological consequences of MEIG1 Y68 mutation in mice.
Main Methods:
- CRISPR/cas9 gene editing was used to mutate Y68 in the MEIG1 gene in mice.
- Analysis included fertility assessments, sperm counts, motility, morphology, and immunofluorescence staining.
Main Results:
- Homozygous MEIG1 Y68 mutant mice were completely infertile with severely reduced sperm counts.
- Mutant sperm were immotile and showed morphological abnormalities, indicating impaired spermiogenesis.
- Mutant MEIG1 failed to localize to the manchette, disrupting cargo protein transport and sperm flagella formation.
Conclusions:
- Y68 of MEIG1 is essential for PACRG-mediated recruitment of MEIG1 to the manchette during sperm development.
- The MEIG1/PACRG complex is critical for transporting cargo proteins involved in sperm flagella formation.
- Targeting the MEIG1/PACRG interaction could lead to novel male contraceptive strategies due to conserved human homologs.
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