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Design-driven, multi-use research agendas to enable applied synthetic biology for global health

机译:设计驱动,多用途研究议程,以实现应用合成生物学促进全球健康

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Many of the synthetic biological devices, pathways and systems that can be engineered are multi-use, in the sense that they could be used both for commercially-important applications and to help meet global health needs. The on-going development of models and simulation tools for assembling component parts into functionally-complex devices and systems will enable successful engineering with much less trial-and-error experimentation and laboratory infrastructure. As illustrations, I draw upon recent examples from my own work and the broader Keasling research group at the University of California Berkeley and the Joint BioEnergy Institute, of which I was formerly a part. By combining multi-use synthetic biology research agendas with advanced computer-aided design tool creation, it may be possible to more rapidly engineer safe and effective synthetic biology technologies that help address a wide range of global health problems.
机译:从某种意义上讲,它们既可以用于商业上重要的应用,又可以满足全球健康需求,因此可以设计的许多合成生物设备,途径和系统都是多用途的。不断开发的模型和仿真工具可将组件组装到功能复杂的设备和系统中,从而通过少得多的反复试验和实验室基础设施,即可实现成功的工程设计。作为说明,我借鉴了我自己的工作以及加州大学伯克利分校和联合生物能源研究所的更广泛的Keasling研究小组的最新实例,我以前曾参与其中。通过将多用途合成生物学研究议程与先进的计算机辅助设计工具创建相结合,可能有可能更快地设计出安全有效的合成生物学技术,以帮助解决广泛的全球健康问题。

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