Bindu Anagha, Bhadra Sudipa, Nayak Soubhagya, Khan Rizwan, Prabhu Ashish A, Sevda Surajbhan
Department of Biotechnology, National Institute of Technology Warangal, Warangal 506004, Telangana, India.
Open Life Sci. 2024 Aug 23;19(1):20220933. doi: 10.1515/biol-2022-0933. eCollection 2024.
Bioelectrochemical biosensors offer a promising approach for real-time monitoring of industrial bioprocesses. Many bioelectrochemical biosensors do not require additional labelling reagents for target molecules. This simplifies the monitoring process, reduces costs, and minimizes potential contamination risks. Advancements in materials science and microfabrication technologies are paving the way for smaller, more portable bioelectrochemical biosensors. This opens doors for integration into existing bioprocessing equipment and facilitates on-site, real-time monitoring capabilities. Biosensors can be designed to detect specific heavy metals such as lead, mercury, or chromium in wastewater. Early detection allows for the implementation of appropriate removal techniques before they reach the environment. Despite these challenges, bioelectrochemical biosensors offer a significant leap forward in wastewater monitoring. As research continues to improve their robustness, selectivity, and cost-effectiveness, they have the potential to become a cornerstone of efficient and sustainable wastewater treatment practices.
生物电化学生物传感器为工业生物过程的实时监测提供了一种很有前景的方法。许多生物电化学生物传感器不需要针对目标分子的额外标记试剂。这简化了监测过程,降低了成本,并将潜在的污染风险降至最低。材料科学和微制造技术的进步为更小、更便携的生物电化学生物传感器铺平了道路。这为集成到现有的生物处理设备中打开了大门,并促进了现场实时监测能力。生物传感器可以设计用于检测废水中特定的重金属,如铅、汞或铬。早期检测能够在这些重金属进入环境之前实施适当的去除技术。尽管存在这些挑战,但生物电化学生物传感器在废水监测方面实现了重大飞跃。随着研究不断提高其稳健性、选择性和成本效益,它们有可能成为高效且可持续的废水处理实践的基石。