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Biodegradable and Biocompatible Polyhydroxy-alkanoates (PHA): Auspicious Microbial Macromolecules for Pharmaceutical and Therapeutic Applications

机译:可生物降解和生物相容的聚羟基链烷酸酯(PHA):用于药物和治疗应用的吉祥微生物大分子

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Polyhydroxyalkanoates (PHA) are bio-based microbial biopolyesters; their stiffness, elasticity, crystallinity and degradability are tunable by the monomeric composition, selection of microbial production strain, substrates, process parameters during production, and post-synthetic processing; they display biological alternatives for diverse technomers of petrochemical origin. This, together with the fact that their monomeric and oligomeric in vivo degradation products do not exert any toxic or elsewhere negative effect to living cells or tissue of humans or animals, makes them highly stimulating for various applications in the medical field. This article provides an overview of PHA application in the therapeutic, surgical and tissue engineering area, and reviews strategies to produce PHA at purity levels high enough to be used in vivo. Tested applications of differently composed PHA and advanced follow-up products as carrier materials for controlled in vivo release of anti-cancer drugs or antibiotics, as scaffolds for tissue engineering, as guidance conduits for nerve repair or as enhanced sutures, implants or meshes are discussed from both a biotechnological and a material-scientific perspective. The article also describes the use of traditional processing techniques for production of PHA-based medical devices, such as melt-spinning, melt extrusion, or solvent evaporation, and emerging processing techniques like 3D-printing, computer-aided wet-spinning, laser perforation, and electrospinning.
机译:聚羟基链烷酸酯(PHA)是生物基微生物生物聚酯;它们的刚度,弹性,结晶度和降解性可通过单体组成,微生物生产菌株的选择,底物,生产过程中的工艺参数以及合成后工艺进行调节。它们为石油化学起源的各种技术人员展示了生物替代品。这以及它们的单体和低聚体内降解产物不会对人或动物的活细胞或组织产生任何毒性或其他负面影响的事实,使得它们在医学领域的各种应用中受到极大的刺激。本文概述了PHA在治疗,外科和组织工程领域的应用,并综述了生产纯度足以在体内使用的PHA的策略。讨论了不同成分的PHA和先进的后续产品作为载体材料用于控制体内抗癌药物或抗生素的释放,作为组织工程的支架,作为神经修复的引导导管或作为增强的缝合线,植入物或网状材料的测试应用从生物技术和材料科学的角度来看。本文还介绍了使用传统的加工技术生产基于PHA的医疗器械,例如熔纺,熔体挤出或溶剂蒸发,以及新兴的加工技术(例如3D打印,计算机辅助湿纺,激光打孔)和静电纺丝。

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