Behr Matthias, Ganesan Kathirvel
Institute of Biology, Leipzig University, Philipp-Rosenthal-Str. 55, 04103 Leipzig, Germany.
German Aerospace Center, Institute of Materials Research, Linder Höhe, 51147 Cologne, Germany.
Materials (Basel). 2022 Jan 28;15(3):1041. doi: 10.3390/ma15031041.
Improved wound healing of burnt skin and skin lesions, as well as medical implants and replacement products, requires the support of synthetical matrices. Yet, producing synthetic biocompatible matrices that exhibit specialized flexibility, stability, and biodegradability is challenging. Synthetic chitin/chitosan matrices may provide the desired advantages for producing specialized grafts but must be modified to improve their properties. Synthetic chitin/chitosan hydrogel and aerogel techniques provide the advantages for improvement with a bioinspired view adapted from the natural molecular toolbox. To this end, animal genetics provide deep knowledge into which molecular key factors decisively influence the properties of natural chitin matrices. The genetically identified proteins and enzymes control chitin matrix assembly, architecture, and degradation. Combining synthetic chitin matrices with critical biological factors may point to the future direction with engineering materials of specific properties for biomedical applications such as burned skin or skin blistering and extensive lesions due to genetic diseases.
改善烧伤皮肤和皮肤损伤的伤口愈合,以及医疗植入物和替代产品,需要合成基质的支持。然而,生产具有特殊柔韧性、稳定性和生物降解性的合成生物相容性基质具有挑战性。合成几丁质/壳聚糖基质可能为生产特殊移植物提供所需的优势,但必须进行改性以改善其性能。合成几丁质/壳聚糖水凝胶和气凝胶技术从天然分子工具箱中汲取灵感,为性能改善提供了优势。为此,动物遗传学深入了解了哪些分子关键因素对天然几丁质基质的性能具有决定性影响。通过基因鉴定的蛋白质和酶控制着几丁质基质的组装、结构和降解。将合成几丁质基质与关键生物因素相结合,可能为生物医学应用(如烧伤皮肤、皮肤水疱和由遗传疾病引起的广泛损伤)的特定性能工程材料指明未来方向。