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In vitro models of angiogenesis and vasculogenesis in fibrin gel.纤维蛋白凝胶中的血管生成和血管发生的体外模型。
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Structural and dynamical aspects of skin studied by multiphoton excitation fluorescence microscopy-based methods.基于多光子激发荧光显微镜的方法研究皮肤的结构和动力学特性。
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Acute and impaired wound healing: pathophysiology and current methods for drug delivery, part 1: normal and chronic wounds: biology, causes, and approaches to care.急性和受损的伤口愈合:病理生理学和当前的药物输送方法,第 1 部分:正常和慢性伤口:生物学、原因和护理方法。
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基于纤维蛋白支架的预血管化器官型皮肤移植物中恒流生物反应器培养和角质形成细胞接种密度的影响。

The effects of constant flow bioreactor cultivation and keratinocyte seeding densities on prevascularized organotypic skin grafts based on a fibrin scaffold.

作者信息

Helmedag Marius Julian, Weinandy Stefan, Marquardt Yvonne, Baron Jens Malte, Pallua Norbert, Suschek Christoph V, Jockenhoevel Stefan

机构信息

1 Department for Tissue Engineering & Textile Implants, Institute of Applied Medical Engineering, Helmholtz Institute Applied Medical Engineering, RWTH Aachen University Hospital , Aachen, Germany .

出版信息

Tissue Eng Part A. 2015 Jan;21(1-2):343-52. doi: 10.1089/ten.TEA.2013.0640. Epub 2014 Nov 20.

DOI:10.1089/ten.TEA.2013.0640
PMID:25159286
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4293133/
Abstract

Organotypic full-thickness skin grafts (OTSG) are already an important technology for treating various skin conditions and are well established for skin research and development. These obvious benefits are often impaired by the need of laborious production, their noncomplete autologous composition, and, most importantly, their lack of included vasculature. Therefore, our study focused on combining a prevascularized dermal layer with an epidermis to cultivate full-thickness skin grafts incorporating capillary-like networks. It has been shown that prevascularization accelerates ingrowth of tissue-engineered grafts, and it is a prerequisite to circumvent diffusion limits due to graft thickness. To obtain such a graft, we chose a dermal layer incorporating human umbilical vein endothelial cells (HuVEC) amid human dermal fibroblasts within a fibrin-based scaffold, seeded apically with human foreskin keratinocytes (hfKC). Our research investigated the used concept's feasibility, as well as the effect of hfKC addition on the development of a well-connected capillary-like network after approximately 21 days. In addition, we evaluated the utilization of a custom-made constant flow bioreactor for simplified cultivation of these grafts, therefore possibly easing graft production and presumably increasing their cost effectiveness. Skin grafts were assessed by conventional two-dimensional histology. In addition, software-assisted three-dimensional evaluation of the capillary-like structure networks was performed by two-photon laser scanning microscopy (TPLSM) and subsequent image processing was done with ImagePro(®) Analyzer 7.0 software, thereby evaluating its platform technology power in the field of prevascularized skin grafts. All samples showed a capillary-like structure network, but we could report a significant reduction of its total length after 14 days of tri-culture with 5×10(5)/cm(2) seeded hfKC, possibly indicating nutritional deficiencies for this particular high cell density experimental setup. Lower concentrations of hfKC did not affect the formation of the capillary-like structures significantly. The developed bioreactor simplified cultivation of prevascularized OTSG. However, a flow-dependent reduction of capillary-like structures in 1 and 5 mL/min flow conditions occurred. We conclude that our technique for creating prevascularized OTSG is feasible. In addition, TPLSM is well suited for analyzing the prevascularization process. We hypothesize that the handling benefits of our bioreactor can be preserved by using considerably lower flow rates while not impairing the forming of capillary-like structure networks.

摘要

器官型全层皮肤移植(OTSG)已经是治疗各种皮肤疾病的一项重要技术,并且在皮肤研究与开发中已得到充分确立。这些明显的优势常常因生产过程繁琐、非完全自体成分,以及最重要的是缺乏包含的脉管系统而受到损害。因此,我们的研究重点是将预血管化的真皮层与表皮相结合,以培养包含毛细血管样网络的全层皮肤移植。已经表明,预血管化可加速组织工程移植的向内生长,并且这是规避由于移植厚度导致的扩散限制的一个先决条件。为了获得这样的移植,我们选择了在基于纤维蛋白的支架内,在人真皮成纤维细胞中掺入人脐静脉内皮细胞(HuVEC)的真皮层,并在顶端接种人包皮角质形成细胞(hfKC)。我们的研究调查了所采用概念的可行性,以及在大约21天后添加hfKC对发育良好的毛细血管样网络的影响。此外,我们评估了定制的恒流生物反应器用于简化这些移植培养的效用,因此可能会简化移植生产并可能提高其成本效益。通过传统的二维组织学评估皮肤移植。此外,通过双光子激光扫描显微镜(TPLSM)对毛细血管样结构网络进行软件辅助的三维评估,并随后使用ImagePro(®) Analyzer 7.0软件进行图像处理,从而评估其在预血管化皮肤移植领域的平台技术能力。所有样本均显示出毛细血管样结构网络,但我们可以报告,在与接种密度为5×10(5)/cm(2)的hfKC进行共培养14天后,其总长度显著减少,这可能表明这种特定的高细胞密度实验设置存在营养缺陷。较低浓度的hfKC对毛细血管样结构的形成没有显著影响。所开发的生物反应器简化了预血管化OTSG的培养。然而,在1和5毫升/分钟的流动条件下出现了与流动相关的毛细血管样结构减少。我们得出结论,我们创建预血管化OTSG的技术是可行的。此外,TPLSM非常适合分析预血管化过程。我们假设,通过使用相当低的流速,可以保留我们生物反应器的操作优势,同时不损害毛细血管样结构网络的形成。