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Chemical, physical, and biological coordination: An interplay between materials and enzymes as potential platforms for immobilization

机译:化学,物理和生物协调:材料和酶之间的相互作用作为固定化的潜在平台

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Suitable coordination between the new wave of nanostructured materials and catalyst of interests play a critical role in developing nanobiocatalysts with new or improved functionalities. In this context, enzymes with natural origin are versatile biocatalysts with multifunctional characteristics and have been widely utilized in various sectors such as environmental, energy, biomedical, pharmaceutical, cosmeceutical, nutraceutical, fine chemicals, agro-industrial, and food industry, etc. The deployment of enzymes in a non-natural environment has limited boundaries such as the high production cost, challenging separation, purification, and liability to deactivation under non-ambient conditions. These drawbacks can be overcome by the design and fabrication of novel hybrid and functionalized nanobiocatalyst. However, appropriate coordination at chemical, physical, and the biological level is highly requisite to engineer such nanobiocatalysts of supreme interests. Currently, the generation and development of diverse nano-materials along with new strategies have been established from the nanotechnology perspectives, where the integration of naturally occurring biocatalysts with suitable nanomaterials offer an exceptional corridor to upgrade the catalytic performances of pristine enzymes. Recent innovations in nanobiotechnology furnished numerous opportunities to integrate natural biocatalysts to a range of nanostructured materials with unique attributes. These newly introduced nanomaterials show/impart additional characteristics which enzyme in their pristine form fails to demonstrate on their own. Manipulation of these nanomaterials for enzyme delivery or recovery, remote access for activation or deactivation of enzymatic activity, and new catalytic entities with harmonizing functionalities has taken this field to a new horizon with pronounced biotechnological applications in the coming years. The present review emphases on the recent developments along with the exploitation of nanostructured materials including nanofibers, hybrid nanoflowers, mesoporousanoporous carriers, carbon nanotubes, magnetic or non-magnetic nanoparticles, and nanocomposites as support carriers for the immobilization of different enzymes to develop nanobiocatalysts with potential activity and stability characteristics. In addition, strategies for the synthesis and various types of new functionalization approaches, particularly the chemical method for its capability to modify nanomaterials with enormous functionalities are discussed. Towards the end, challenges related to the use of nanobiocatalysts and their possible solution are summarized. (C) 2019 Elsevier B.V. All rights reserved.
机译:新型纳米结构材料与目标催化剂之间的适当配合在开发具有新功能或改进功能的纳米生物催化剂中起着至关重要的作用。在这种情况下,天然来源的酶是具有多功能特性的通用生物催化剂,并已广泛用于各个领域,例如环境,能源,生物医学,制药,药妆,营养保健品,精细化学品,农业工业和食品工业等。在非自然环境中使用酶具有局限性,例如生产成本高,具有挑战性的分离,纯化以及在非环境条件下失活的责任。这些缺点可以通过设计和制造新型的杂化和功能化的纳米生物催化剂来克服。然而,在化学,物理和生物学水平上进行适当的协调是设计这种具有最高利益的纳米生物催化剂的高度必要条件。当前,已经从纳米技术的角度确定了多种纳米材料的产生和发展以及新的策略,其中天然存在的生物催化剂与合适的纳米材料的整合提供了卓越的途径来提高原始酶的催化性能。纳米生物技术的最新创新为将天然生物催化剂整合到一系列具有独特属性的纳米结构材料中提供了许多机会。这些新引入的纳米材料显示/赋予了其他特征,即原始形式的酶本身无法证明。操纵这些纳米材料用于酶的递送或回收,远程访问以激活或减活酶活性,以及​​具有协调功能的新催化实体,已在未来几年将这一领域推向了崭新的领域,并在生物技术领域得到了广泛应用。本综述着重介绍了纳米材料的最新发展,包括纳米纤维,杂化纳米花,中孔/纳米孔载体,碳纳米管,磁性或非磁性纳米颗粒以及纳米复合材料,这些载体作为固定化不同酶以开发纳米生物催化剂的载体具有潜在的活性和稳定性特征。此外,讨论了合成策略和各种新型功能化方法,尤其是化学方法,以其修饰具有巨大功能的纳米材料的能力。最后,总结了与使用纳米生物催化剂及其可能解决方案有关的挑战。 (C)2019 Elsevier B.V.保留所有权利。

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