Rekhi Pavni, Goswami Moushmi, Ramakrishna Seeram, Debnath Mousumi
Department of Biosciences, Manipal University Jaipur, Jaipur, India.
Department of Mechanical Engineering, National University of Singapore, Singapore, Singapore.
Crit Rev Biotechnol. 2022 Aug;42(5):668-692. doi: 10.1080/07388551.2021.1960265. Epub 2021 Oct 13.
Polymers are synonymous with the modern way of living. However, polymers with a large carbon footprint, especially those derived from nonrenewable petrochemical sources, are increasingly perceived as detrimental to the environment and a sustainable future. Polyhydroxyalkanoate (PHA) is a microbial biopolymer and a plausible alternative for renewable sources. However, PHA in its monomeric forms has very limited applications due to its limited flexibility, tensile strength, and moldability. Herein, the life cycle of PHA molecules, from biosynthesis to commercial utilization for diverse applications is discussed. For clarity, the applications of this bioplastic biocomposite material are further segregated into two domains, namely, the industrial sector and the medical sector. The industry sectors reviewed here include food packaging, textiles, agriculture, automotive, and electronics. High-value addition of PHA for a sustainable future can be foreseen in the medical domain. Properties such as biodegradability and biocompatibility make PHA a suitable candidate for decarbonizing biomaterials during tissue repair, organ reconstruction, drug delivery, bone tissue engineering, and chemotherapeutics.
聚合物与现代生活方式同义。然而,碳足迹大的聚合物,尤其是那些源自不可再生石化资源的聚合物,越来越被视为对环境和可持续未来有害。聚羟基脂肪酸酯(PHA)是一种微生物生物聚合物,是可再生资源的一种合理替代品。然而,PHA的单体形式由于其有限的柔韧性、拉伸强度和可模塑性,应用非常有限。本文讨论了PHA分子从生物合成到各种应用的商业利用的生命周期。为了清晰起见,这种生物塑料生物复合材料的应用进一步分为两个领域,即工业领域和医疗领域。这里审查的工业领域包括食品包装、纺织品、农业、汽车和电子。在医疗领域,可以预见PHA为可持续未来带来的高附加值。生物可降解性和生物相容性等特性使PHA成为组织修复、器官重建、药物递送、骨组织工程和化疗过程中生物材料脱碳的合适候选者。