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Use of model systems to understand the etiology of fragile X-associated primary ovarian insufficiency (FXPOI). | LitMetric

AI Article Synopsis

  • FXPOI is a condition linked to a mutation in the FMR1 gene, affecting about 20% of women with a specific gene variant, leading to early menopause and fertility issues before 40 years old.
  • Research indicates that most women with FXPOI experience hormonal imbalances and face risks associated with low estrogen levels, yet the underlying causes remain poorly understood.
  • Animal models, particularly mice and fruit flies, have been pivotal in studying the relationship between the FMR1 mutation and ovarian function, revealing signs of ovarian dysfunction but showing normal primordial follicle counts in young animals.

Article Abstract

Fragile X-associated primary ovarian insufficiency (FXPOI) is among the family of disorders caused by the expansion of a CGG repeat sequence in the 5' untranslated region of the X-linked gene FMR1. About 20% of women who carry the premutation allele (55 to 200 unmethylated CGG repeats) develop hypergonadotropic hypogonadism and cease menstruating before age 40. Some proportion of those who are still cycling show hormonal profiles indicative of ovarian dysfunction. FXPOI leads to subfertility and an increased risk of medical conditions associated with early estrogen deficiency. Little progress has been made in understanding the etiology of this clinically significant disorder. Understanding the molecular mechanisms of FXPOI requires a detailed knowledge of ovarian FMR1 mRNA and FMRP's function. In humans, non-invasive methods to discriminate the mechanisms of the premutation on ovarian function are not available, thus necessitating the development of model systems. Vertebrate (mouse and rat) and invertebrate (Drosophila melanogaster) animal studies for the FMR1 premutation and ovarian function exist and have been instrumental in advancing our understanding of the disease phenotype. For example, rodent models have shown that FMRP is highly expressed in oocytes where it is important for folliculogenesis. The two premutation mouse models studied to date show evidence of ovarian dysfunction and, together, suggest that the long repeat in the transcript itself may have some pathological effect quite apart from any effect of the toxic protein. Further, ovarian morphology in young animals appears normal and the primordial follicle pool size does not differ from that of wild-type animals. However, there is a progressive premature decline in the levels of most follicle classes. Observations also include granulosa cell abnormalities and altered gene expression patterns. Further comparisons of these models are now needed to gain insight into the etiology of the ovarian dysfunction. Premutation model systems in non-human primates and those based on induced pluripotent stem cells show particular promise and will complement current models. Here, we review the characterization of the current models and describe the development and potential of the new models. Finally, we will discuss some of the molecular mechanisms that might be responsible for FXPOI.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4139715PMC
http://dx.doi.org/10.1186/1866-1955-6-26DOI Listing

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