首页> 外文期刊>Scientific reports. >In Situ Bioprinting of Autologous Skin Cells Accelerates Wound Healing of Extensive Excisional Full-Thickness Wounds
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In Situ Bioprinting of Autologous Skin Cells Accelerates Wound Healing of Extensive Excisional Full-Thickness Wounds

机译:自体皮肤细胞的原位生物打印加速广泛的全层切除伤口的伤口愈合

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摘要

The early treatment and rapid closure of acute or chronic wounds is essential for normal healing and prevention of hypertrophic scarring. The use of split thickness autografts is often limited by the availability of a suitable area of healthy donor skin to harvest. Cellular and non-cellular biological skin-equivalents are commonly used as an alternative treatment option for these patients, however these treatments usually involve multiple surgical procedures and associated with high costs of production and repeated wound treatment. Here we describe a novel design and a proof-of-concept validation of a mobile skin bioprinting system that provides rapid on-site management of extensive wounds. Integrated imaging technology facilitated the precise delivery of either autologous or allogeneic dermal fibroblasts and epidermal keratinocytes directly into an injured area, replicating the layered skin structure. Excisional wounds bioprinted with layered autologous dermal fibroblasts and epidermal keratinocytes in a hydrogel carrier showed rapid wound closure, reduced contraction and accelerated re-epithelialization. These regenerated tissues had a dermal structure and composition similar to healthy skin, with extensive collagen deposition arranged in large, organized fibers, extensive mature vascular formation and proliferating keratinocytes.
机译:急性或慢性伤口的早期治疗和快速闭合对于正常愈合和预防肥厚性瘢痕至关重要。分割厚度的自体移植物的使用通常受到健康的供体皮肤适合收获区域的可用性的限制。细胞和非细胞生物皮肤等效物通常被用作这些患者的替代治疗选择,但是这些治疗通常涉及多个外科手术过程,并伴随着高昂的生产成本和重复的伤口治疗。在这里,我们描述了一种新颖的设计和移动皮肤生物打印系统的概念验证,该系统可对大量伤口进行快速现场管理。集成的成像技术有助于将自体或同种异体真皮成纤维细胞和表皮角质形成细胞直接精确输送到受伤区域,从而复制分层的皮肤结构。在水凝胶载体中用分层的自体真皮成纤维细胞和表皮角质形成细胞进行生物印记的切除伤口显示出快速的伤口闭合,收缩减少和加速了上皮再生。这些再生的组织具有与健康皮肤相似的真皮结构和成分,胶原蛋白大量沉积排列在大而有组织的纤维中,形成广泛的成熟血管并增殖角化细胞。

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