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Research Article | Open Access

Modulating hypertrophic scar formation by targeting endothelial transient receptor potential vanilloid-1/nuclear factor kappa-B/interleukin-6 axis to regulate angiogenesis

Hao Ma1,2,Liuhanghang Cheng1,2,3,Ruoyu Ling4Jingyi Chen1,2Shunuo Zhang1Shujing Lin5Liang Ding6Chengliang Deng7 ( )Yixin Zhang1( )Peiru Min1 ( )
Department of Plastic and Reconstructive Surgery, Shanghai Ninth People’s Hospital affiliated to Shanghai Jiao Tong University School of Medicine, No. 639 Zhizaoju Road, Shanghai, 200011, China
Shanghai Institute for Plastic and Reconstructive Surgery, Shanghai Ninth People’s Hospital affiliated to Shanghai Jiao Tong University School of Medicine, No. 639 Zhizaoju Road, Shanghai, 200011, China
Department of Oral and Maxillofacial Surgery, Leiden University Medical Centre, Albinusdreef 2, 2333 ZA Leiden, the Netherlands
Department of Burn and Plastic Surgery, Southern Theater General Hospital, No. 111 Liuhua Road, Guangzhou, 510010, China
School of Electronic Information and Electrical Engineering, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai, 200240, China
State Key Laboratory for Chemistry and Molecular Engineering of Medical Resources, School of Chemistry and Pharmaceutical Sciences, Guangxi Normal University, 15 Yucai Road, Guilin, 541004, China
Department of Burns and Plastic Surgery, Affiliated Hospital of Zunyi Medical University, 149 Dalian Road, Zunyi, 563003, China

Hao Ma and Liuhanghang Cheng contributed equally to this work.

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Highlights

• This study reveals distinct differences in the phenotypic profiles of vascular endothelial cells between NS and HS.

• CAP exposure modulates vascular endothelial cell function via the TRPV1 signaling pathway, ultimately exacerbating the pathogenesis of hypertrophic scarring.

• We provide a mechanistic framework demonstrating that TRPV1 channel activation drives HS development by promoting NF-κB/IL-6 axis-mediated angiogenesis.

• The TRPV1 channel and its downstream effectors NF-κB and IL-6 are identified as potential novel diagnostic biomarkers, prognostic indicators, and therapeutic targets for hypertrophic scarring.

Abstract

Background

Noxious lifestyle factors including spicy diets and hot baths may lead to scar formation and recurrence. These phenomena are related to the activation of the transient receptor potential vanilloid-1 (TRPV1) cation channel. Our previous study revealed significant upregulation of TRPV1 expression in the dermis of hypertrophic scar (HS), while the exact underlying mechanism of TRPV1 activation in HS remains ill-defined. This study aims to clarify the contribution of TRPV1 activation to HS pathogenesis, particularly in relation to aberrant angiogenesis.

Methods

First, this study employs single-cell RNA sequencing technology to analyze the association between vascular endothelial cells and the development of HS. Complementarily, bioinformatics analysis combined with histological validation is utilized to investigate the relationship between TRPV1 channels and aberrant angiogenesis within HS formation. Furthermore, the correlation between TRPV1 activation and HS phenotypes is rigorously validated at the in vivo level. In parallel, in vitro experiments are conducted to elucidate the impact of TRPV1 channel activation on the biological behaviors and functions of vascular endothelial cells. Subsequently, key downstream signaling pathways of TRPV1 are screened, and their molecular mechanisms in regulating vascular endothelial cell-mediated angiogenesis are systematically verified. Finally, a comprehensive analysis is performed to establish the clinical relevance of the TRPV1/nuclear factor kappa-B (NF-κB)/interleukin-6 (IL-6) axis with vascularization severity and adverse prognostic outcomes in hypertrophic scarring.

Results

Single-cell RNA sequencing revealed significant cellular heterogeneity in vascular endothelial cells between normal skin and HS, indicating activated angiogenesis and substantial vascular endothelial cell alterations during HS development. Bulk RNA-seq and clinical analyses further confirmed this angiogenesis activation, demonstrating a close association with TRPV1 channel activation. In vivo studies established that capsaicin (CAP)-induced TRPV1 activation exacerbated HS progression through enhanced angiogenesis, whereas TRPV1 ablation or local inhibition markedly attenuated this effect. In vitro experiments demonstrated that TRPV1 activation regulated angiogenesis by promoting pro-angiogenic phenotypes. Transcriptomic analysis and functional validation identified the IL-6/signal transducer and activator of transcription 3 pathway as a downstream NF-κB-dependent pro-angiogenic axis mediated by TRPV1 in HS vascular endothelial cells. Critically, dermal overexpression of the TRPV1/NF-κB/IL-6 axis in HS patients correlated strongly with both disease severity and recurrence.

Conclusions

Here, we show that the development of HS is strongly correlated with endothelial angiogenic activity. TRPV1 activation by CAP enhances proangiogenic processes including endothelial proliferation, migration, and tubule formation, while reducing apoptosis through the TRPV1/NF-κB/IL-6 axis. In a rabbit ear HS model, stimulation of TRPV1 contributes to the formation of HS via the TRPV1/NF-κB/IL-6 axis, whereas pharmacological ablation of TRPV1 significantly reversed these phenotypes. These findings shed light on the underlying molecular mechanisms and provide a potential therapeutic target for HS.

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Burns & Trauma

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Cite this article:
Ma H, Cheng L, Ling R, et al. Modulating hypertrophic scar formation by targeting endothelial transient receptor potential vanilloid-1/nuclear factor kappa-B/interleukin-6 axis to regulate angiogenesis. Burns & Trauma, 2026, 14(2). https://doi.org/10.1093/burnst/tkag009

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Received: 12 February 2025
Revised: 30 December 2025
Accepted: 13 January 2026
Published: 16 January 2026
© The Author(s) 2026. Published by Oxford University Press.

This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.