Adipose-derived microvascular fragments: Functional microtissue units driving vascular integration and multidimensional tissue regeneration

Rapid and stable vascularization remains one of the major challenges in regenerative medicine and tissue engineering. Adipose-derived microvascular fragments (ad-MVFs) have emerged as a promising vascularization strategy because they preserve intact microvascular architecture while retaining endothelial cells, perivascular cells, extracellular matrix, and niche components. Unlike conventional strategies that primarily rely on host-driven angiogenesis, ad-MVFs can rapidly integrate with the host vasculature and establish functional perfusion. Beyond vascularization, ad-MVFs contribute to tissue remodeling, immune regulation, and microenvironment restoration. These properties have enabled their applications in ischemic tissue repair, soft tissue regeneration, metabolic tissue engineering, disease modeling, and biofabrication. This review summarizes current knowledge of ad-MVF biology, isolation and preservation strategies, mechanisms of vascular integration, and emerging biomedical applications. We also discuss key challenges for clinical translation and future development opportunities. By viewing ad-MVFs as functional microtissue units, this review highlights their potential as a versatile platform for regenerative medicine.

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Journal
Regenerative Therapy
Published
2026-09-30
DOI
https://doi.org/10.1016/j.reth.2026.101179
Primary Topic
Electrospun Nanofibers in Biomedical Applications
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article
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article

Adipose-derived microvascular fragments: Functional microtissue units driving vascular integration and multidimensional tissue regeneration

Wenxin Yu, Ziyi Fu, Zirun Yang, Yuyin Hou et al.
Regenerative Therapy
Electrospun Nanofibers in Biomedical Applications
article

Adipose-derived microvascular fragments: Functional microtissue units driving vascular integration and multidimensional tissue regeneration

Wenxin Yu, Ziyi Fu, Zirun Yang, Yuyin Hou, Shui Wang, Hui Xie, Chang Sun
article en

Abstract

Rapid and stable vascularization remains one of the major challenges in regenerative medicine and tissue engineering. Adipose-derived microvascular fragments (ad-MVFs) have emerged as a promising vascularization strategy because they preserve intact microvascular architecture while retaining endothelial cells, perivascular cells, extracellular matrix, and niche components. Unlike conventional strategies that primarily rely on host-driven angiogenesis, ad-MVFs can rapidly integrate with the host vasculature and establish functional perfusion. Beyond vascularization, ad-MVFs contribute to tissue remodeling, immune regulation, and microenvironment restoration. These properties have enabled their applications in ischemic tissue repair, soft tissue regeneration, metabolic tissue engineering, disease modeling, and biofabrication. This review summarizes current knowledge of ad-MVF biology, isolation and preservation strategies, mechanisms of vascular integration, and emerging biomedical applications. We also discuss key challenges for clinical translation and future development opportunities. By viewing ad-MVFs as functional microtissue units, this review highlights their potential as a versatile platform for regenerative medicine.

Regenerative TherapyVol. 33
Jiangsu Cancer Hospital (CN), Changzhou No.2 People's Hospital (CN), Jiangsu Province Hospital (CN), Nanjing Medical University (CN)
Openalex Percentile: Top 23%
Electrospun Nanofibers in Biomedical Applications
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Adipose-derived microvascular fragments: Functional microtissue units driving vascular integration and multidimensional tissue regeneration — Wenxin Yu, Ziyi Fu, et al. · Regenerative Therapy (2026) | TGRS Research Map | TGRS