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工程菌生物制造: sp. LM7 胞外聚合物的特性与操控。

Engineering bacterial biomanufacturing: characterization and manipulation of sp. LM7 extracellular polymers.

机构信息

Sibley School of Mechanical and Aerospace Engineering, Cornell University, Ithaca, NY, USA.

Department of Bacteriology, University of Wisconsin-Madison, Madison, WI, USA.

出版信息

Soft Matter. 2024 Aug 14;20(32):6399-6410. doi: 10.1039/d4sm00712c.

Abstract

Biologically produced materials are an attractive alternative to traditional materials such as metals and plastics and offer improved functionalities such as better biodegradability and biocompatibility. Polysaccharides are an example of biologically produced materials that can have a range of chemical and physical properties including high stiffness to weight ratios and thermal stability. Polysaccharides synthesized by bacteria can come with many advantages such as being non-toxic and are mechanically robust relative to proteins and lipids, which are also secreted by bacteria to generate a biofilm. Biomanufacturing offers benefits compared to traditional manufacturing including low resource investment and equipment requirements, providing an alternative to sourcing fossil fuel byproducts, and relatively low temperatures needed for production. However, many biologically produced materials require complex and lengthy purification processes before use. This paper (1) identifies the material properties of a novel polysaccharide, dubbed promonan, isolated from the extracellular polymeric substances of sp. LM7; (2) demonstrates that these properties can be manipulated to suit specific applications; and (3) presents two alternative methods of processing to shorten purification time by more than 50% while maintaining comparable material properties.

摘要

生物合成材料是传统金属和塑料材料的一种有吸引力的替代品,具有更好的生物降解性和生物相容性等改进功能。多糖是生物合成材料的一个例子,它具有多种化学和物理性质,包括高刚性重量比和热稳定性。由细菌合成的多糖具有许多优点,例如无毒,相对于细菌分泌的蛋白质和脂质具有机械强度,蛋白质和脂质也用于生成生物膜。与传统制造相比,生物制造具有许多优势,包括低资源投资和设备要求,为避免使用化石燃料副产品提供了替代方案,以及生产所需的相对较低温度。然而,许多生物合成材料在使用前需要复杂而冗长的纯化过程。本文(1)确定了从 sp. LM7 的细胞外聚合物中分离出的新型多糖 promonan 的材料特性;(2)证明可以对这些特性进行处理,以适应特定的应用;(3)提出了两种替代加工方法,可以在保持可比材料特性的同时,将纯化时间缩短 50%以上。

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