Araújo Rafael G, González-González Reyna Berenice, Martinez-Ruiz Manuel, Coronado-Apodaca Karina G, Reyes-Pardo Humberto, Morreeuw Zoé P, Oyervides-Muñoz Mariel Araceli, Sosa-Hernández Juan Eduardo, Barceló Damià, Parra-Saldívar Roberto, Iqbal Hafiz M N
Tecnologico de Monterrey, School of Engineering and Sciences, Monterrey 64849, Mexico.
Tecnologico de Monterrey, Institute of Advanced Materials for Sustainable Manufacturing, Monterrey 64849, Mexico.
ACS Omega. 2022 Sep 8;7(37):32863-32876. doi: 10.1021/acsomega.2c03155. eCollection 2022 Sep 20.
The synergistic interaction between advanced biotechnology and nanotechnology has allowed the development of innovative nanomaterials. Those nanomaterials can conveniently act as supports for enzymes to be employed as nanobiocatalysts and nanosensing constructs. These systems generate a great capacity to improve the biocatalytic potential of enzymes by improving their stability, efficiency, and product yield, as well as facilitating their purification and reuse for various bioprocessing operating cycles. The different specific physicochemical characteristics and the supramolecular nature of the nanocarriers obtained from different economical and abundant sources have allowed the continuous development of functional nanostructures for different industries such as food and agriculture. The remarkable biotechnological potential of nanobiocatalysts and nanosensors has generated applied research and use in different areas such as biofuels, medical diagnosis, medical therapies, environmental bioremediation, and the food industry. The objective of this work is to present the different manufacturing strategies of nanomaterials with various advantages in biocatalysis and nanosensing of various compounds in the industry, providing great benefits to society and the environment.
先进生物技术与纳米技术之间的协同相互作用推动了创新纳米材料的发展。这些纳米材料可方便地用作酶的载体,以用作纳米生物催化剂和纳米传感构建体。这些系统通过提高酶的稳定性、效率和产物产量,以及促进其纯化和在各种生物加工操作循环中的再利用,极大地提升了酶的生物催化潜力。从不同经济且丰富的来源获得的纳米载体具有不同的特定物理化学特性和超分子性质,这使得针对食品和农业等不同行业的功能性纳米结构得以持续发展。纳米生物催化剂和纳米传感器卓越的生物技术潜力已在生物燃料、医学诊断、医学治疗、环境生物修复和食品工业等不同领域产生了应用研究和应用。这项工作的目的是介绍纳米材料的不同制造策略,这些策略在工业中对各种化合物的生物催化和纳米传感具有各种优势,为社会和环境带来巨大益处。