Synthetic biology encompasses metagenomics, ecosystems, and biodiversity sustainability within its scope

David B. Levin, Nediljko Budisa
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Abstract

We envision the convergence of synthetic biology (SynBio) and metagenomics as a significant development for the engineering of complex biological systems. The entire biosphere with its diverse life forms can also be considered as a reservoir for evolutionary innovations and a source of modules for SynBio. Metagenomics, which is a large part of biodiversity, should be considered as an important source of modules. The abstraction hierarchy of amalgamating SynBio and metagenomics (“synthetic metagenomics”) entails the standardized integration of parts, devices, circuits, and modules into functional chassis. These principles transcend the boundaries of single cell design and apply to the engineering of biodiversity sustainability in multicellular entities, their interconnections, and their dynamics in communities and whole ecosystems. Examples include applications in environmental sustainability, such as analysis of antimicrobial resistance in waste management, bioremediation of oil spills, and degradation of plastics. Future research and experimental interventions will ultimately provide a strong link between bioengineering, metagenomics, microbial consortia, ecosystems, and biodiversity sustainability under the umbrella of synthetic biology.
合成生物学包括宏基因组学、生态系统和生物多样性可持续性
我们设想合成生物学(SynBio)和宏基因组学的融合是复杂生物系统工程的重大发展。拥有多种生命形式的整个生物圈也可以被视为进化创新的储存库和SynBio模块的来源。宏基因组学是生物多样性的重要组成部分,应被视为模块的重要来源。合并SynBio和宏基因组学(“合成宏基因组学”)的抽象层次需要将部件、设备、电路和模块标准化集成到功能机箱中。这些原则超越了单细胞设计的界限,适用于多细胞实体的生物多样性可持续性工程,它们的相互联系,以及它们在社区和整个生态系统中的动态。例子包括环境可持续性方面的应用,如废物管理中的抗菌素耐药性分析、石油泄漏的生物修复和塑料降解。未来的研究和实验干预将最终在合成生物学的保护伞下,为生物工程、宏基因组学、微生物群落、生态系统和生物多样性可持续性之间提供强有力的联系。
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