Completed Genetics & Molecular Biology Diabetes, Hormones & Metabolism

X-gene functions in spermatogonia, and their role in idiopathic and sex chromosome aneuploidy associated infertility.

In plain English

AI plain-English summary

Men with Klinefelter syndrome lose their germ cells before birth, and scientists do not yet understand why. This research tackles a fundamental gap in reproductive biology: how the X chromosome controls the stem cells that sustain sperm production throughout a man’s life. While the Y chromosome’s role in male fertility is well known, the X chromosome carries many genes that are active specifically in spermatogonial stem cells (SSCs). The team has already identified several such X-linked genes, but their function in SSC self-renewal versus differentiation remains unknown. Klinefelter syndrome (XXY) is the most common sex chromosome abnormality and a leading cause of non-obstructive infertility, yet the molecular mechanism behind the early spermatogonial block is poorly understood. If successful, this work will reveal the gene networks that keep SSCs healthy and explain how an extra X chromosome disrupts them. The immediate impact is fundamental: a deeper understanding of how sex chromosomes regulate male germline maintenance. In the longer term, that knowledge could inform diagnostic tests for idiopathic infertility or guide strategies to preserve fertility in boys with Klinefelter syndrome.

View original technical description
The sex chromosomes underscore basic differences between males and females, and the X and Y chromosomes have specialized functions in the gonad and germ cells. Sex chromosome aneuploidies, i.e. Klinefelter (XXY), Turner (XO) and double-Y (XYY) syndromes), form the largest group of chromosomal abnormalities and are associated with infertility. While recent studies have defined the mechanisms for germ cell loss in XO and XYY mice, Klinefelter syndrome (KS) infertility remains poorly understood. KS males experience an early spermatogonial block and germ cell loss initiates in utero. The early loss of gonadal function has significant long-term consequences. Gametogenesis in males occurs throughout their lifespan and relies on germline (spermatogonial) stem cells (SSCs), differing with females. Recent work from our group has identified the concerted activity of gene networks in driving spermatogenesis, and unique regulation of X-linked genes during this process. We observe that a number of X-genes express specifically in SSCs. However, regulation of SSCs self-renewal vs. differentiation dynamics, and the functional importance of X-linked genes in this process, remain poorly understood. We aim to understand physiological gene regulatory networks functional in SSCs using a combination of single-cell methods, to explain how perturbation in X-gene dosage in SSCs may cause infertility.

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Researchers

Fiona Watt (EPMC Awardee)James Turner (EPMC Awardee)Mahesh Sangrithi (EPMC Awardee)

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Original classification

Clinical Research Career Development Fellowship

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