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层状双氢氧化物是用于组织生物工程应用的有前途的纳米材料。

Layered Double Hydroxides Are Promising Nanomaterials for Tissue Bioengineering Application.

作者信息

Jr da Costa Fernandes Célio, Pinto Thaís Silva, Kang Ha Ram, de Magalhães Padilha Pedro, Koh Ivan Hong Jun, Constantino Vera Regina Leopoldo, Zambuzzi Willian F

机构信息

Lab. de Bioensaios e Dinâmica Celular, Departamento de Química e Bioquímica, Instituto de Biociências, Universidade Estadual Paulista - UNESP, Campus Botucatu, São Paulo, CEP 18618-970, Brazil.

Departamento de Cirurgia, Universidade Federal de São Paulo-UNIFESP, Rua Botucatu 740, CEP 04023-900, São Paulo, SP, Brazil.

出版信息

Adv Biosyst. 2019 Jul;3(7):e1800238. doi: 10.1002/adbi.201800238. Epub 2019 May 28.

Abstract

Layered double hydroxides (LDHs) have emerged as promising nanomaterials for human health and although it has achieved some progress on this matter, their application within bioengineering is not fully addressed. This prompted to subject fibroblasts to two compositions of LDHs (Mg Al-Cl and Zn Al-Cl), considering an acute response. First, LDH particles are addressed by scanning electron microscopy, and no significant effect of the cell culture medium on the shape of LDHs particles is reported although it seems to adsorb some soluble proteins as proposed by energy-dispersive X-ray analysis. These LDHs release magnesium, zinc, and aluminum, but there is no cytotoxic or biocompatibility effects. The data show interference to fibroblast adhesion by driving the reorganization of actin-based cytoskeleton, preliminarily to cell cycle progression. Additionally, these molecular findings are validated by performing a functional wound-healing assay, which is accompanied by a dynamic extracellular matrix remodeling in response to the LDHs. Altogether, the results show that LDHs nanomaterials modulate cell adhesion, proliferation, and migration, delineating new advances on the biomaterial field applied in the context of soft tissue bioengineering, which must be explored in health disorders, such as wound healing in burn injuries.

摘要

层状双氢氧化物(LDHs)已成为对人类健康有前景的纳米材料,尽管在此方面已取得一些进展,但它们在生物工程中的应用尚未得到充分探讨。考虑到急性反应,这促使对成纤维细胞使用两种LDHs组合物(Mg Al-Cl和Zn Al-Cl)。首先,通过扫描电子显微镜观察LDH颗粒,尽管能量色散X射线分析表明细胞培养基似乎吸附了一些可溶性蛋白质,但未报告细胞培养基对LDH颗粒形状有显著影响。这些LDHs会释放镁、锌和铝,但没有细胞毒性或生物相容性影响。数据显示,通过驱动基于肌动蛋白的细胞骨架重组,对成纤维细胞黏附产生干扰,这先于细胞周期进程。此外,通过进行功能性伤口愈合试验验证了这些分子发现,该试验伴随着对LDHs的动态细胞外基质重塑。总之,结果表明LDHs纳米材料可调节细胞黏附、增殖和迁移,描绘了在软组织生物工程背景下应用的生物材料领域的新进展,这在健康障碍如烧伤伤口愈合中必须加以探索。

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