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May 18, 2026British Journal of Dermatology1 citations

Single-Cell transcriptomics unveils metabolic and cellular dysregulation in striae gravidarum

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YCYu ChengShanghai Jiao Tong UniversityCLChen LiangMinistry of Education of the People's Republic of ChinaZCZixin CaiShanghai Tenth People's Hospital

Key Points

  • The study aims to investigate the cellular landscape and molecular mechanisms underlying striae gravidarum at single-cell resolution.
  • Performed integrated single-cell RNA sequencing and single-nucleus RNA sequencing on SG and normal skin specimens.
  • Conducted functional validation using qPCR, histological staining, and immunofluorescence analysis.
  • Utilized Mendelian randomization analysis to explore metabolic pathways.
  • Significant cellular reorganization in SG skin, with profound transcriptional changes in fibroblasts.
  • Dysregulated intercellular communication identified between inflammatory sC7 and reparative sC5 fibroblast subsets.
  • Local Acsbg1 silencing improved dermal architecture and collagen organization in a mouse model.

Abstract

BACKGROUND: Striae gravidarum (SG) is a common skin condition characterized by disrupted dermal extracellular matrix (ECM) homeostasis. Despite its high prevalence, the underlying cellular and molecular pathogenesis remains poorly understood, particularly regarding fibroblast heterogeneity and metabolic dysregulation. OBJECTIVES: This study aimed to delineate the cellular landscape and molecular mechanisms of SG at single-cell resolution, with a focus on fibroblast subpopulation dynamics, intercellular communication, and metabolic reprogramming. METHODS: We performed integrated single-cell RNA sequencing (scRNA-seq) and single-nucleus RNA sequencing (snRNA-seq) on dermal specimens from human SG lesions and matched normal skin. Functional validation was conducted using qPCR, histological staining (H notably, it also downregulated representative sC7-associated genes while upregulating sC5-associated genes, suggesting partial restoration of a reparative transcriptional program. Furthermore, local Acsbg1 silencing in dorsal skin alleviated SG-like dermal remodeling in the mouse model, with improved dermal architecture, collagen organization, and elastic fiber integrity. CONCLUSIONS: Targeting ACSBG1-mediated fatty acid metabolic reprogramming in pro-fibrotic fibroblast subsets restores a reparative transcriptional programme and ameliorates dermal ECM disruption in SG. These findings identify ACSBG1 as a potential therapeutic target for SG.

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Cite This Study

Cheng et al. (2026) studied this question.

synapsesocial.com/papers/6a0aace55ba8ef6d83b70515https://doi.org/10.1093/bjd/ljag181
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