Heterozygous FMN2 missense variant found in a family case of premature ovarian insufficiency

J Ovarian Res. 2022 Feb 28;15(1):31. doi: 10.1186/s13048-022-00960-y.

Abstract

Background: Premature ovarian insufficiency (POI) plagues 1% of women under 40, while quite a few remain an unknown cause. The development of sequencing has helped find pathogenic genes and reveal the relationship between DNA repair and ovarian reserve. Through the exome sequencing, our study targets screening out the possible POI pathogenic gene and variants in a Chinese family and 20 sporadic POI patients, preliminarily exploring the functional impact and finding out potential linkages between the gene and POI.

Results: The whole exome sequencing suggested a novel FMN2 heterozygous variant c.1949C > T (p.Ser650Leu) carried by all three patients in a Chinese family and another c.1967G > A(p.Arg656His) variant in a sporadic case. Since no FMN2 missense mutation is reported for causing human POI, we preliminarily assessed p.Ser650Leu variant via cross-species alignment and 3D modeling and found it possibly deleterious. A series of functional evidence was consistent with our hypothesis. We proved the expression of FMN2 in different stages of oocytes and observed a statistical difference of chromosomal breakages between the POI patient carrying p.Arg656His variant and the health control (p = 0.0013). Western Blot also suggested a decrease in FMN2 and P21 in the mutant type and an associated increase in H2AX. The p.Arg656His variant with an extremely low frequency also indicated that the gene FMN2 might play an essential role in the genetic etiology of POI. To the best of our knowledge, this is the first POI report on missense variants of FMN2.

Conclusion: This finding indicates a novel gene possibly related to POI and sheds lights on the study of FMN2.

Keywords: DNA damage; DNA repair; FMN2; Ovarian function; Ovarian reserve; POI.

Publication types

  • Case Reports

MeSH terms

  • Adult
  • DNA Repair / genetics
  • Exome Sequencing
  • Female
  • Fetus / metabolism
  • Formins / genetics*
  • Formins / metabolism*
  • Heterozygote
  • Histones / blood
  • Humans
  • Lymphocytes / metabolism
  • Molecular Structure
  • Mutation, Missense
  • Nuclear Proteins / genetics*
  • Nuclear Proteins / metabolism*
  • Ovary / metabolism
  • Pedigree
  • Primary Ovarian Insufficiency / blood
  • Primary Ovarian Insufficiency / genetics*

Substances

  • Fmn2 protein, human
  • Formins
  • H2AX protein, human
  • Histones
  • Nuclear Proteins