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Updated: Jan 10, 2026

Cell-Specific Paired Interrogation of the Mouse Ovarian Epigenome and Transcriptome
Published on: February 24, 2023
Metabolic reprogramming and mitochondrial dysfunction underlie β gonia arrest and niche cell dysfunction in sterile
Huihui Wang1, Xi Lin1, Chunxue Zheng1
1Engineering Research Center of Mariculture (Ocean University of China), Ministry of Education, Qingdao, China.
Abstract:
Complementary to the classical view that triploid sterility results from meiotic failure, female triploid pacific oysters exhibit partial sterility also characterized by the impairment of the differentiation of germ cells, forming β gonia. However, the molecular basis underlying this sterility remains unclear, partly due to the diffuse nature of oyster gonads, which lack distinct structural boundaries, making cell-type identification challenging. Here, we integrate high-resolution spatial transcriptomics (Stereo-seq) and single-nucleus RNA sequencing (snRNA-seq) to construct a spatially resolved molecular atlas of sterile triploid oyster gonads, enabling precise characterization of β gonia transcriptional dysregulation and their disrupted interactions with niche cells. We find that β gonia exhibit germplasm mRNA downregulation, impaired ATP synthesis, and excessive mitochondrial autophagy, likely driven by the silencing of SOHLH2, a key regulator of oocyte differentiation. Additionally, triploid niche cells undergo G1 phase arrest via NOTCH-Hes1a-CCNA2 signaling, which may contribute to gonadal microenvironment disruption. We further observe disrupted metabolic partitioning between F3nβ-Niche and VCT cells, with niche cells displaying diminished steroidogenic activity and fatty acid metabolism, while VCT cells enhance lipogenesis and AMPK/PPAR signaling, forming a disrupted nutrient reservoir. Dysregulated GRN and cholesterol (LIPA/RORA) signaling further exacerbate metabolic imbalances and germ cell mitophagy. These findings establish a mechanistic framework for triploid sterility, implicating mitochondrial dysfunction, mitophagy, and niche-VCT metabolic reprogramming in germ cell arrest. Our study provides novel insights into germline-soma coordination, reproductive control strategies, and the broader implications of polyploid sterility in invertebrates.
Insights
Triploid oyster sterility involves germ cell differentiation issues and impaired mitochondrial function, not just meiotic failure. This study reveals molecular disruptions in sterile oyster gonads, offering insights into reproductive challenges.
Area of Science:
- Marine Biology
- Genomics
- Reproductive Biology
Background:
- Triploid sterility in Pacific oysters is partially attributed to germ cell differentiation impairment, forming β gonia.
- The molecular mechanisms behind this sterility are poorly understood due to challenges in identifying cell types in diffuse oyster gonads.
Purpose of the Study:
- To construct a spatially resolved molecular atlas of sterile triploid oyster gonads.
- To precisely characterize the transcriptional dysregulation of β gonia and their interactions with niche cells.
Main Methods:
- Integration of high-resolution spatial transcriptomics (Stereo-seq) and single-nucleus RNA sequencing (snRNA-seq).
- Construction of a molecular atlas to analyze sterile triploid oyster gonads.
Main Results:
- β gonia show downregulated germplasm mRNA, impaired ATP synthesis, and excessive mitochondrial autophagy, linked to SOHLH2 silencing.
- Niche cells exhibit G1 phase arrest via NOTCH-Hes1a-CCNA2 signaling, disrupting the gonadal microenvironment.
- Disrupted metabolic partitioning between niche and VCT cells, with altered steroidogenesis, fatty acid metabolism, and lipogenesis.
Conclusions:
- Mitochondrial dysfunction, mitophagy, and metabolic reprogramming in niche-VCT cells are implicated in triploid sterility.
- Findings provide insights into germline-soma coordination and polyploid sterility in invertebrates.
- This study establishes a mechanistic framework for understanding triploid sterility in Pacific oysters.
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