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◆ Frontiers in bioengineering and biotechnology2026-01-01

An engineered and scalable human cell-derived extracellular matrix demonstrates advantages over recombinant collagen in biomimicry and wound healing.

Xiaolei Guo, Xiaoye Ran, Yi Zhang, Boxun Liu, Zhengbo Wen, Yuanbo Liu, Mengqi Zhou, Mengqing Zang, Jiadao Wang, Tao Xu

原始摘要(英文原文)· Original abstract
Skin wound healing remains a major clinical challenge due to impaired regeneration and incomplete restoration of dermal architecture, creating the need for biomaterials that reconstruct the human extracellular matrix (ECM) microenvironment, especially the collagen-rich structural network. Current strategies to obtain human-relevant collagen primarily include genetically engineered recombinant collagen and ECM directly produced by human cells. Although recombinant collagen has been extensively developed, it represents a simplified surrogate of native human collagen, and the biosynthesis of fully mature human collagen remains technically challenging. Therefore, we developed an engineered and scalable strategy to fabricate human cell-derived engineered ECM (HE-ECM) from human fibroblasts and systematically compared it with commercial recombinant collagen. Physicochemical analyses demonstrated that HE-ECM preserved native-like porous matrix architecture, collagen triple-helical integrity, enhanced thermal stability, and a more complex protein composition. HE-ECM significantly enhanced fibroblast viability, proliferation, and migration in vitro and accelerated wound closure with improved tissue organization in a rat full-thickness skin defect model. Overall, this controllable and donor-independent fabrication strategy enables scalable production of human collagen-rich HE-ECM that more faithfully recapitulates the native skin microenvironment than recombinant collagen, thereby suggesting its potential as a biomimetic platform for tissue regeneration.
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An engineered and scalable human cell-derived extracellular matrix demonstrates advantages over recombinant collagen in biomimicry and wound healing. — 科研速览 Science Skim