Faculty of Applied Sciences and Biotechnology, Shoolini University of Biotechnology and Management Sciences, Solan, Himachal Pradesh, India.
Department of Biotechnology, University Institute of Biotechnology, Chandigarh University, SAS Nagar, Punjab, India.
J Appl Microbiol. 2022 Aug;133(2):287-310. doi: 10.1111/jam.15574. Epub 2022 Apr 27.
There is an intricate network of relations between endophytic fungi and their hosts that affects the production of various bioactive compounds. Plant-associated endophytic fungi contain industrially important enzymes and have the potential to fulfil their rapid demand in the international market to boost business in technology. Being safe and metabolically active, they have replaced the usage of toxic and harmful chemicals and hold a credible application in biotransformation, bioremediation and industrial processes. Despite these, there are limited reports on fungal endophytes that can directly cater to the demand and supply of industrially stable enzymes. The underlying reasons include low endogenous production and secretion of enzymes from fungal endophytes which have raised concern for widely accepted applications. Hence, it is imperative to augment the biosynthetic and secretory potential of fungal endophytes. Modern state-of-the-art biotechnological technologies aiming at strain improvement using cell factory engineering as well as precise gene editing like Clustered Regularly Interspaced Palindromic Repeats (CRISPR) and its Associated proteins (Cas) systems which can provide a boost in fungal endophyte enzyme production. Additionally, it is vital to characterize optimum conditions to grow one strain with multiple enzymes (OSME). The present review encompasses various plants-derived endophytic fungal enzymes and their applications in various sectors. Furthermore, we postulate the feasibility of new precision approaches with an aim for strain improvement and enhanced enzyme production.
植物内生真菌与其宿主之间存在着复杂的关系网络,这种关系会影响各种生物活性化合物的产生。与植物相关的内生真菌含有具有工业重要性的酶,并且有可能满足国际市场对快速增长的需求,从而推动技术业务的发展。由于内生真菌安全且具有代谢活性,它们已经取代了有毒有害化学物质的使用,并且在生物转化、生物修复和工业过程中具有可靠的应用。尽管如此,关于能够直接满足工业稳定酶需求和供应的真菌内生菌的报道仍然有限。其根本原因包括内生真菌酶的内源性产量和分泌量低,这引起了人们对广泛应用的关注。因此,提高真菌内生菌的生物合成和分泌潜力势在必行。现代最先进的生物技术旨在利用细胞工厂工程进行菌株改良,并使用精确的基因编辑技术,如成簇规律间隔短回文重复(CRISPR)及其相关蛋白(Cas)系统,这可以促进真菌内生菌酶的产生。此外,确定最佳条件以生长具有多种酶的单一菌株(OSME)也至关重要。本综述涵盖了各种植物来源的内生真菌酶及其在各个领域的应用。此外,我们还提出了新的精确方法的可行性,旨在进行菌株改良和提高酶的产量。