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Updated: Feb 5, 2026

High-throughput Physical Mapping of Chromosomes using Automated in situ Hybridization
Published on: June 28, 2012
Genetic mapping of a male factor subfertility locus on mouse chromosome 4
Hideo Gotoh1, Ikuo Miura2, Shigeharu Wakana2,3
1Division of Animal Sciences, Reproductive Biology Unit, Institute of Agrobiological Sciences, NARO, 1-2 Owashi, Tsukuba, Ibaraki, 305-8634, Japan. gotoh@affrc.go.jp.
Abstract:
Male reproductive anomalies are widely distributed among mammals, and male factors are estimated to contribute to approximately 50% of cases of human infertility. The B10.M/Sgn (B10.M) mouse strain exhibits two adverse reproductive phenotypes: severe teratospermia and male subfertility. Although teratospermia is known to be heritable, the relationship between teratospermia and male subfertility has not been well characterized. The fertility of B10.M male mice is considerably lower (~ 30%) than that of standard laboratory mouse strains (~ 70%). To genetically analyze male subfertility, F2 males were produced by intercrossing the F1 progeny of female B10.M and male C3H/HeN mice. The fertility of each F2 male mouse was assessed based on the outcomes of matings with five females. Statistical analysis of correlations between the two reproductive phenotypes (teratospermia and subfertility) in F2 males (n = 177) revealed that teratospermia is not the cause of male subfertility. Quantitative trait loci (QTL) analysis of the male subfertility phenotype (n = 128) using GigaMUGA markers mapped one significant QTL peak to chromosome 4 at 62.9 centimorgans (cM) with a logarithm of odds score of 11.81 (P < 0.05). We named the QTL locus Mfsf1 (male factor subfertility 1). Further genetic analysis using recombinant males restricted the physical area to 1.53 megabasepairs (Mbp), encompassing 22 protein-coding genes. In addition, we found one significant QTL and one indicative QTL on chromosome 5 and 12, respectively, that interacted with the Mfsf1 locus. Our results demonstrate that genetic dissection of male subfertility in the B10.M strain is a useful model for characterizing the complex genetic mechanisms underlying reproduction and infertility.
Insights
Male subfertility in B10.M mice is not caused by teratospermia. Genetic analysis identified a major gene locus, Mfsf1, on chromosome 4, offering insights into male infertility causes.
Area of Science:
- Reproductive biology
- Genetics
- Mammalian reproduction
Background:
- Male reproductive anomalies contribute to ~50% of human infertility.
- The B10.M mouse strain exhibits severe teratospermia and male subfertility.
- The genetic basis of male subfertility and its relationship with teratospermia remain unclear.
Purpose of the Study:
- To genetically analyze the cause of male subfertility in the B10.M mouse strain.
- To determine if teratospermia is the cause of male subfertility.
- To identify genetic loci associated with male subfertility.
Main Methods:
- Crossed B10.M and C3H/HeN mice to produce F2 males.
- Assessed fertility and teratospermia in F2 males.
- Performed quantitative trait loci (QTL) analysis using GigaMUGA markers.
Main Results:
- Teratospermia was not found to be the cause of male subfertility.
- A significant QTL, named Mfsf1, was mapped to chromosome 4 (62.9 cM).
- Mfsf1 locus was refined to a 1.53 Mbp region containing 22 protein-coding genes.
- Interactions between Mfsf1 and QTLs on chromosomes 5 and 12 were observed.
Conclusions:
- Male subfertility in B10.M mice is genetically controlled and independent of teratospermia.
- The Mfsf1 locus is a key genetic factor influencing male subfertility.
- The B10.M strain serves as a valuable model for studying complex genetic mechanisms of male infertility.
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