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基于热酶的纳米生物传感器的生物制造:其组件与现状

Bio-fabrication of thermozyme-based nano-biosensors: their components and present scenario.

作者信息

Soy Snehi, Sharma Shubha Rani, Nigam Vinod Kumar

机构信息

Department of Bioengineering and Biotechnology, Birla Institute of Technology, Mesra, Ranchi, Jharkhand 835215 India.

出版信息

J Mater Sci Mater Electron. 2022;33(8):5523-5533. doi: 10.1007/s10854-022-07741-9. Epub 2022 Jan 29.

Abstract

An amalgamation of microbiology, biocatalysis, recombinant molecular biology, and nanotechnology is crucial for groundbreaking innovation in developing nano-biomedicines and sensoristics. Enzyme-based nano-biosensor finds prospective applications in various sectors (environmental, pharmaceutical, food, biorefineries). These applications demand reliable catalytic efficiency and functionality of the enzyme under an extreme operational environment for a prolonged period. Over the last few years, bio-fabrication of nano-biosensors in conjunction with thermozymes from thermophilic microbes is being sought after as a viable design. Thermozymes are known for their robustness, are chemically resistant toward organic solvents, possess higher durability for constant use, catalytic ability, and stability at elevated temperatures. Additionally, several other attributes of thermozymes like substrate specificity, selectivity, and sensitivity make them desirable in developing a customized biosensor. In this review, crucial designing aspects of enzyme-based nano-biosensors like enzyme immobilization on an electrode surface, new materials derived from microbial sources (biopolymers based nanocomposites), improvisation measures for sensitivity, and selectivity have been addressed. It also covers microbial biosynthesis of nanomaterials used to develop sensoristic devices and its numerous applications such as wastewater treatment, biorefineries, and diagnostics. The knowledge will pave the way toward creating consistent eco-friendly, economically viable nanostructured-based technologies with broad applicability and exploitation for industrial use in the near future.

摘要

微生物学、生物催化、重组分子生物学和纳米技术的融合对于开发纳米生物医学和传感技术的突破性创新至关重要。基于酶的纳米生物传感器在各个领域(环境、制药、食品、生物精炼厂)都有潜在应用。这些应用要求酶在极端操作环境下长时间具有可靠的催化效率和功能。在过去几年中,结合嗜热微生物的嗜热酶进行纳米生物传感器的生物制造作为一种可行的设计受到追捧。嗜热酶以其稳健性、对有机溶剂的化学抗性、持续使用的更高耐久性、催化能力以及在高温下的稳定性而闻名。此外,嗜热酶的其他几个特性,如底物特异性、选择性和灵敏度,使其在开发定制生物传感器方面具有优势。在这篇综述中,探讨了基于酶的纳米生物传感器的关键设计方面,如酶固定在电极表面、源自微生物来源的新材料(基于生物聚合物的纳米复合材料)、灵敏度和选择性的改进措施。它还涵盖了用于开发传感装置的纳米材料的微生物生物合成及其众多应用,如废水处理、生物精炼厂和诊断。这些知识将为在不久的将来创造一致的、环保的、经济可行的、具有广泛适用性并可用于工业用途的纳米结构技术铺平道路。

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