Faculty of Applied Sciences and Biotechnology, Shoolini University of Biotechnology and Management Sciences, Solan, 173229, India.
Department of Chemistry, Umea University, 90187, Umea, Sweden.
Appl Biochem Biotechnol. 2021 Nov;193(11):3812-3854. doi: 10.1007/s12010-021-03626-5. Epub 2021 Aug 4.
The polyhydroxyalkanoate was discovered almost around a century ago. Still, all the efforts to replace the traditional non-biodegradable plastic with much more environmentally friendly alternative are not enough. While the petroleum-based plastic is like a parasite, taking over the planet rapidly and without any feasible cure, its perennial presence has made the ocean a floating island of life-threatening debris and has flooded the landfills with toxic towering mountains. It demands for an immediate solution; most resembling answer would be the polyhydroxyalkanoates. The production cost is yet one of the significant challenges that various corporate is facing to replace the petroleum-based plastic. To deal with the economic constrain better strain, better practices, and a better market can be adopted for superior results. It demands for systems for polyhydroxyalkanoate production namely bacteria, yeast, microalgae, and transgenic plants. Solely strains affect more than 40% of overall production cost, playing a significant role in both upstream and downstream processes. The highly modifiable nature of the biopolymer provides the opportunity to replace the petroleum plastic in almost all sectors from food packaging to medical industry. The review will highlight the recent advancements and techno-economic analysis of current commercial models of polyhydroxyalkanoate production. Bio-compatibility and the biodegradability perks to be utilized highly efficient in the medical applications gives ample reason to tilt the scale in the favor of the polyhydroxyalkanoate as the new conventional and sustainable plastic.
聚羟基烷酸酯几乎在一个世纪前就被发现了。尽管人们一直在努力用更环保的替代品来取代传统的不可生物降解塑料,但这些努力还远远不够。石油基塑料就像寄生虫一样,迅速占领地球,而且没有任何可行的治疗方法,其常年存在使海洋成为了一个充满生命威胁的漂浮碎片的岛屿,并使垃圾填埋场充满了有毒的高耸山脉。这需要一个立即的解决方案;最相似的答案将是聚羟基烷酸酯。生产成本是各种公司面临的一个重大挑战,他们需要用这种材料来替代石油基塑料。为了更好地应对经济限制,可以采用更好的实践和更好的市场来获得更好的结果。这需要建立聚羟基烷酸酯生产系统,例如细菌、酵母、微藻和转基因植物。仅仅是菌株就影响了超过 40%的总成本,在上下游过程中都发挥了重要作用。这种生物聚合物的高度可修饰性为其提供了在从食品包装到医疗行业等几乎所有领域替代石油塑料的机会。本综述将重点介绍聚羟基烷酸酯生产的最新进展和当前商业模型的技术经济分析。生物相容性和可生物降解性使其在医疗应用中具有很高的效率,这充分证明了聚羟基烷酸酯作为新型常规和可持续塑料的优势。