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3D Bioprinting of Artificial Skin Substitute with Improved Mechanical Property and Regulated Cell Behavior through Integrating Patterned Nanofibrous Films

材料科学 人造皮肤 纳米技术 财产(哲学) 纳米纤维 3D生物打印 组织工程 复合材料 生物医学工程 工程类 认识论 哲学
作者
Shaoquan Bian,Xiaohua Hu,Hao Zhu,Weili Du,Chenmin Wang,Liang‐Liang Wang,Liuzhi Hao,Yuming Xiang,Fengzhen Meng,Chengwei Hu,Zhiyun Wu,Jing Wang,Xiaohua Pan,Min Guan,William W. Lu,Xiaoli Zhao
出处
期刊:ACS Nano [American Chemical Society]
卷期号:18 (28): 18503-18521 被引量:34
标识
DOI:10.1021/acsnano.4c04088
摘要

Three-dimensional (3D) bioprinting has advantages for constructing artificial skin tissues in replicating the structures and functions of native skin. Although many studies have presented improved effect of printing skin substitutes in wound healing, using hydrogel inks to fabricate 3D bioprinting architectures with complicated structures, mimicking mechanical properties, and appropriate cellular environments is still challenging. Inspired by collagen nanofibers withstanding stress and regulating cell behavior, a patterned nanofibrous film was introduced to the printed hydrogel scaffold to fabricate a composite artificial skin substitute (CASS). The artificial dermis was printed using gelatin-hyaluronan hybrid hydrogels containing human dermal fibroblasts with gradient porosity and integrated with patterned nanofibrous films simultaneously, while the artificial epidermis was formed by seeding human keratinocytes upon the dermis. The collagen-mimicking nanofibrous film effectively improved the tensile strength and fracture resistance of the CASS, making it sewable for firm implantation into skin defects. Meanwhile, the patterned nanofibrous film also provided the biological cues to guide cell behavior. Consequently, CASS could effectively accelerate the regeneration of large-area skin defects in mouse and pig models by promoting re-epithelialization and collagen deposition. This research developed an effective strategy to prepare composite bioprinting architectures for enhancing mechanical property and regulating cell behavior, and CASS could be a promising skin substitute for treating large-area skin defects.
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