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February 28, 2026Nature Communications0 citationsOpen Access

Single-cell transcriptomics reveals hair growth retardation mediated by aberrant connective tissue sheath contraction in male androgenetic alopecia

GLGuo LiLYL.I. YangSDShixin Duan

Key Points

  • This research investigates the cellular mechanisms causing hair growth retardation in male androgenetic alopecia (AGA).
  • Utilized spatial and single-cell transcriptomics to create a cellular atlas of hair follicles.
  • Conducted ex vivo organ culture and utilized humanized mouse models.
  • Examined the effects of connective tissue sheath contraction on hair follicle dynamics.
  • Applied pharmacological inhibition of MLCK to assess effects on hair growth.
  • Hypercontractility of connective tissue sheath was linked to ectopic apoptosis in hair follicle progenitor cells.
  • Inhibition of connective tissue sheath contraction improved hair follicle growth in models.
  • Identified mechanosensitive activation of PIEZO1 as a key factor in hair follicle miniaturization.
  • Demonstrated changes in cell populations and communications affecting hair follicle stem cell fate.

Abstract

Androgenetic alopecia (AGA) manifests as progressive hair follicle (HF) miniaturization; however, its drivers remain poorly elucidated. Combining spatial and single-cell transcriptomics, we generate a concise single-cell atlas of anagen HFs in male AGA, revealing early changes in cell subpopulations, altered HF stem cell fate determination, and disrupted cell-cell communications. Through ex vivo HF organ culture and humanized mouse models, we demonstrate that hypercontractility of connective tissue sheath (CTS) activates the mechanosensitive channel PIEZO1 in anagen HFs. This mechanotransduction induces ectopic apoptosis of HF progenitor cells and suppresses matrix/ORS cell proliferation, depleting progenitor pools and impairing HF growth, thereby driving progressive miniaturization. Critically, pharmacological inhibition of CTS contraction via ML-7, a selective myosin light chain kinase (MLCK) inhibitor, improves HF growth in both male AGA patient-derived ex vivo models and humanized mice. Our study delineates the cellular dynamics underlying male AGA pathogenesis and identifies mechanopathologically activated CTS as a key driver of HF miniaturization, positioning the peri-follicular CTS as a promising therapeutic target for AGA intervention. Androgenetic alopecia is the most common type of hair loss, but its drivers remain poorly elucidated. Here, the authors show that hyperactive contraction of the follicle connective tissue sheath impairs hair growth by activating mechanosensitive signaling, suggesting a tractable therapeutic target.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69a287e20a974eb0d3c03b66https://doi.org/10.1038/s41467-026-70153-4
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