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Updated: Sep 28, 2025

Flow Cytometric Analysis of Biomarkers for Detecting Human Sperm Functional Defects
Published on: April 21, 2022
Structural analysis of M1AP variants associated with severely impaired spermatogenesis causing male infertility
Umut Gerlevik1,2, Mahmut Cerkez Ergoren3,4, Osman Uğur Sezerman1,5
1Department of Biostatistics and Bioinformatics, Institute of Health Sciences, Acibadem Mehmet Ali Aydinlar University, Istanbul, Turkey.
Background:
Impaired meiosis can result in absence of sperm in the seminal fluid. This condition, namely non-obstructive azoospermia (NOA), is one of the reasons of male infertility. Despite the low number of studies on meiosis 1-associated protein (M1AP) in the literature, M1AP is known to be crucial for spermatogenesis. Recently, seven variants (five missense, one frameshift, one splice-site) have been reported in the M1AP gene as associated with NOA, cryptozoospermia and oligozoospermia in two separate studies. However, all missense variants were evaluated as variant of uncertain significance by these studies. Therefore, we aimed to analyze their structural impacts on the M1AP protein that could lead to NOA.
Methods:
We firstly performed an evolutionary conservation analysis for the variant positions. Afterwards, a comprehensive molecular modelling study was performed for the M1AP structure. By utilizing this model, protein dynamics were sampled for the wild-type and variants by performing molecular dynamics (MD) simulations.
Results:
All variant positions are highly conserved, indicating that they are potentially important for function. In MD simulations, none of the variants led to a general misfolding or loss of stability in the protein structure, but they did cause severe modifications in the conformational dynamics of M1AP, particularly through changes in local interactions affecting flexibility, hinge and secondary structure.
Conclusions:
Due to critical perturbations in protein dynamics, we propose that these variants may cause NOA by affecting important interactions regulating meiosis, particularly in wild-type M1AP deficiency since the variants are reported to be homozygous or bi-allelic in the infertile individuals. Our results provided reasonable insights about the M1AP structure and the effects of the variants to the structure and dynamics, which should be further investigated by experimental studies to validate.
Insights
Genetic variants in M1AP, crucial for sperm production, can cause non-obstructive azoospermia (NOA). Our study reveals these variants alter M1AP protein dynamics, potentially explaining male infertility.
Area of Science:
- Genetics
- Molecular Biology
- Reproductive Medicine
Background:
- Non-obstructive azoospermia (NOA) is a significant cause of male infertility due to impaired meiosis.
- Meiosis 1-associated protein (M1AP) is vital for spermatogenesis, but its role in NOA is understudied.
- Seven M1AP gene variants have been linked to NOA, cryptozoospermia, and oligozoospermia, with missense variants previously classified as uncertain significance.
Purpose of the Study:
- To analyze the structural and dynamic impacts of previously reported M1AP missense variants.
- To elucidate the molecular mechanisms by which M1AP variants may contribute to non-obstructive azoospermia.
- To provide insights into M1AP protein function and its role in male fertility.
Main Methods:
- Evolutionary conservation analysis of M1AP variant positions.
- Comprehensive molecular modeling of the M1AP protein structure.
- Molecular dynamics (MD) simulations to assess wild-type and variant protein dynamics.
Main Results:
- Variant positions in M1AP are highly conserved, suggesting functional importance.
- MD simulations showed variants do not cause general misfolding or instability.
- Variants significantly altered M1AP conformational dynamics, affecting local interactions, flexibility, and secondary structure.
Conclusions:
- Perturbations in M1AP dynamics caused by variants likely contribute to NOA by disrupting meiotic interactions.
- Homozygous or bi-allelic variants in infertile individuals suggest a role in M1AP deficiency-related infertility.
- Further experimental validation is needed to confirm the impact of M1AP variants on male fertility.
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