电子废物生物修复的生物工程微生物:路标、挑战和未来方向

Ping Han, Wei Zhe Teo, Wen Shan Yew
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引用次数: 5

摘要

面对全球范围内迅速增长的电子废物流,电子废物回收变得越来越迫切,不仅是为了减轻其带来的环境和健康风险,而且也是贵金属,稀土元素甚至塑料资源回收的城市采矿战略。作为开发传统电子垃圾回收方法更环保替代品的持续努力的一部分,利用某些微生物与金属相互作用或降解塑料的先天能力,生物辅助降解电子垃圾提供了一种有希望的资源。通过利用合成生物学中新兴的遗传工具,可以通过改善酶催化能力、修改底物特异性和增加毒性耐受性来加速推进生物修复和资源回收所需的新型或增强能力的进化。然而,由于其巨大的体积,高组件复杂性和相关的毒性,电子废物的管理提出了巨大的挑战。在新生的实验室规模的生物修复成果转化为可行的工业应用之前,需要解决几个限制。尽管如此,包括初创公司和老牌公司在内的既得利益团体已经采取了有远见的步骤,将微生物用于电子垃圾回收的商业实施。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Biologically engineered microbes for bioremediation of electronic waste: Wayposts, challenges and future directions

Biologically engineered microbes for bioremediation of electronic waste: Wayposts, challenges and future directions

In the face of a burgeoning stream of e-waste globally, e-waste recycling becomes increasingly imperative, not only to mitigate the environmental and health risks it poses but also as an urban mining strategy for resource recovery of precious metals, rare Earth elements, and even plastics. As part of the continual efforts to develop greener alternatives to conventional approaches of e-waste recycling, biologically assisted degradation of e-waste offers a promising recourse by capitalising on certain microorganisms' innate ability to interact with metals or degrade plastics. By harnessing emerging genetic tools in synthetic biology, the evolution of novel or enhanced capabilities needed to advance bioremediation and resource recovery could be potentially accelerated by improving enzyme catalytic abilities, modifying substrate specificities, and increasing toxicity tolerance. Yet, the management of e-waste presents formidable challenges due to its massive volume, high component complexity, and associated toxicity. Several limitations will need to be addressed before nascent laboratory-scale achievements in bioremediation can be translated to viable industrial applications. Nonetheless, vested groups, involving both start-up and established companies, have taken visionary steps towards deploying microbes for commercial implementation in e-waste recycling.

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