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May 9, 2026Reproductive Biology and Endocrinology0 citationsOpen Access

SPATA22 heterozygous variants drive premature ovarian insufficiency: mechanism of granulosa cells dysfunction and therapeutic potential of N-acetylcysteine (NAC) treatment

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LXLingjin XiaWZWenjing ZhangMLM M Liu

Key Points

  • This research aims to explore the genetic basis of premature ovarian insufficiency and assess the therapeutic potential of NAC for SPATA22-related dysfunction.
  • Performed whole-exome sequencing in 608 idiopathic POI patients.
  • Conducted in vivo analysis using Spata22+/− mice and in vitro assays on primary mouse granulosa cells.
  • Administered N-acetylcysteine (NAC) to assess its effects on granulosa cell function and fertility.
  • Identified two pathogenic SPATA22 variants in a family with four individuals affected by POI.
  • SPATA22 defects led to granulosa cells dysfunction and significant fertility impairment in mice.
  • NAC treatment rescued granulosa cell defects and partially restored fertility and ovarian function in Spata22+/− mice.

Abstract

Premature ovarian insufficiency (POI) is a prevalent reproductive endocrine disorder, with genetic pathogenesis remaining largely elusive. SPATA22 is a known meiotic regulator in germ cells, while its function in ovarian somatic granulosa cells (GCs) and causal link to POI remain entirely uncharacterized. Whole-exome sequencing (WES) was performed in 608 idiopathic POI patients, with Sanger sequencing validating the identified SPATA22 variants in the affected pedigree. Pathogenicity and therapeutic potential were verified via in vivo phenotypic analysis of Spata22+/− mice, in vitro functional assays of primary mouse GCs, oocyte-GCs co-culture, and in vitro fertilization (IVF) embryo development assays, with N-acetylcysteine (NAC) intervention. Two heterozygous pathogenic SPATA22 variants were identified in a POI pedigree with four affected infertile individuals. SPATA22 defects caused GCs dysfunction, accumulated DNA damage, oxidative stress, ovarian insufficiency, impaired fertility in mice. The antioxidant NAC effectively rescued GCs defects, and partially restored Spata22+/− mice fertility, ovarian function, co-cultured oocyte competence and embryo development potential. The present study identifies SPATA22 as a causative gene for human POI, provides the first definitive demonstration of a non-canonical somatic function of SPATA22 in GCs, and offers a promising therapeutic strategy for SPATA22-related POI.

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Cite This Study

Xia et al. (2026) studied this question.

synapsesocial.com/papers/69fecf49b9154b0b82876490https://doi.org/10.1186/s12958-026-01547-8
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