Microbes and plants will be engineered to extract critical metals from waste, soil, and water, replacing environmentally destructive mining. This matters because metals like lithium, cobalt, and rare earth elements are essential for batteries, wind turbines, and electronics, yet their extraction currently causes severe pollution and relies on geopolitically unstable supply chains. Recycling these metals from industrial waste, old electronics, and contaminated land is inefficient at scale. The ELEMENTAL hub aims to change that by engineering microorganisms and plants with enhanced metal transporters and genetic circuits. These biological systems could leach metals from mine tailings, accumulate rare earths from polluted soil, and sense metal concentrations in real time. If successful, the approach could turn toxic waste sites into sources of valuable materials, reduce the need for new mining, and create a circular economy for critical minerals. The project also includes techno-economic analysis and policy development to ensure the engineered organisms are safe, scalable, and economically viable. While still at the fundamental science stage, the work directly targets a practical bottleneck in the clean energy transition.
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The Engineering Biology Mission Hub for Environmental Processing and Recovery of Metals (ELEMENTAL) aims to address the growing need for critical minerals and metals in clean energy technologies and promote a circular economy. The project brings together specialists from various UK institutions to establish an open knowledge hub focused on bio-extraction and bio-recovery of metals. The hub aims to enhance ongoing projects related to mineral extraction, urban mining, industrial waste, and nuclear waste by leveraging engineering biology tools and approaches. The project emphasizes the importance of sustainable and efficient solutions to tackle environmental challenges associated with metal waste and scarcity. Technologically critical metals, such as rare earth elements (REEs), cobalt, lithium, and indium, pose significant challenges due to their limited availability and the environmental damage caused by their extraction. Recycling these metals is crucial for reducing the demand for primary mining and minimizing environmental impacts. The hub focuses on targeted approaches such as bioleaching, bioremediation, and biorecovery to address metal waste, REE and radionuclide waste, and metal scarcity. Bioleaching uses microorganisms to recover metals from various sources, while bioremediation employs microorganisms or plants to remove metals from polluted water and land. The project also explores the potential of phytomining, where certain plants naturally accumulate metals and REEs from the soil. The integration of engineering biology, including genetic engineering and synthetic biology, offers opportunities to enhance the capabilities of microorganisms and plants involved in metal recovery processes. By optimizing metal transporters and developing genetic circuits, the project aims to improve metal accumulation, develop biosensors for real-time monitoring, and enhance metal bioremediation and recovery practices. The project acknowledges challenges related to process optimization, scalability, economic viability, and environmental impact assessments. A multidisciplinary approach will be employed to develop strategies for improved metal recovery and address social, economic, and environmental challenges. The hub will work closely with policymakers and stakeholders to develop policy recommendations and guidelines for the use of engineered organisms in metal remediation within a circular economy framework. The project's objectives will be realized through six work packages focused on bioleaching, biorecovery, industrial biotechnology, biosensors, bioremediation, and scale-up, techno-economic analysis, and life cycle assessment. The hub members possess expertise in synthetic biology, protein design, biogeochemistry, metal transporters, responsible research and innovation, and phytoremediation. The engineering biology approach within the hub follows a design-build-test cycle to optimize engineered systems for metal recovery applications. Genetic techniques, including massively parallel transposon mutagenesis, will be used to identify genes involved in metal tolerance and develop mutant libraries. Additionally, physical techniques such as EPR spectroscopy, NMR, electron microscopy, and XAS will provide molecular insights into the speciation and interaction of metals with biological systems. By harnessing synthetic biology-based systems and interdisciplinary collaborations, the ELEMENTAL hub aims to revolutionize metal bioremediation and recovery practices, contributing to a cleaner and more sustainable environment.
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