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藻类生物质转化生产微生物聚羟基脂肪酸酯:最新进展、挑战与展望

Valorization of Algal Biomass to Produce Microbial Polyhydroxyalkanoates: Recent Updates, Challenges, and Perspectives.

作者信息

Narayanasamy Anand, Patel Sanjay K S, Singh Neha, Rohit M V, Lee Jung-Kul

机构信息

Bioconversion Technology Division, Sardar Patel Renewable Energy Research Institute, Vallabh Vidyanagar, Anand 388120, Gujarat, India.

Department of Biotechnology, Hemvati Nandan Bahuguna Garhwal University (A Central University), Srinagar 246174, Uttarakhand, India.

出版信息

Polymers (Basel). 2024 Aug 5;16(15):2227. doi: 10.3390/polym16152227.

Abstract

Biopolymers are highly desirable alternatives to petrochemical-based plastics owing to their biodegradable nature. The production of bioplastics, such as polyhydroxyalkanoates (PHAs), has been widely reported using various bacterial cultures with substrates ranging from pure to biowaste-derived sugars. However, large-scale production and economic feasibility are major limiting factors. Now, using algal biomass for PHA production offers a potential solution to these challenges with a significant environmental benefit. Algae, with their unique ability to utilize carbon dioxide as a greenhouse gas (GHG) and wastewater as feed for growth, can produce value-added products in the process and, thereby, play a crucial role in promoting environmental sustainability. The sugar recovery efficiency from algal biomass is highly variable depending on pretreatment procedures due to inherent compositional variability among their cell walls. Additionally, the yields, composition, and properties of synthesized PHA vary significantly among various microbial PHA producers from algal-derived sugars. Therefore, the microalgal biomass pretreatments and synthesis of PHA copolymers still require considerable investigation to develop an efficient commercial-scale process. This review provides an overview of the microbial potential for PHA production from algal biomass and discusses strategies to enhance PHA production and its properties, focusing on managing GHGs and promoting a sustainable future.

摘要

由于其可生物降解的特性,生物聚合物是基于石化的塑料非常理想的替代品。使用各种细菌培养物和从纯糖到生物废料衍生糖等底物来生产生物塑料,如聚羟基脂肪酸酯(PHA),已有广泛报道。然而,大规模生产和经济可行性是主要限制因素。现在,利用藻类生物质生产PHA为应对这些挑战提供了一个潜在的解决方案,同时具有显著的环境效益。藻类具有独特的能力,能够利用二氧化碳作为温室气体(GHG),并利用废水作为生长的养分,在此过程中可以生产增值产品,从而在促进环境可持续性方面发挥关键作用。由于藻类细胞壁成分固有的变异性,根据预处理程序的不同,从藻类生物质中回收糖的效率差异很大。此外,从藻类衍生的糖合成的PHA在各种微生物PHA生产者中的产量、组成和性质也有很大差异。因此,微藻生物质预处理和PHA共聚物的合成仍需要大量研究,以开发出高效的商业规模生产工艺。本综述概述了利用藻类生物质生产PHA的微生物潜力,并讨论了提高PHA产量及其性能的策略,重点关注温室气体管理和促进可持续未来。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a5a9/11314723/817ae1f4d996/polymers-16-02227-g001.jpg

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