Strand Deserah D, Walker Berkley J
U. S. Department of Energy (DOE) Plant Research Laboratory, Michigan State University, East Lansing, MI, United States.
Department of Plant Biology, Michigan State University, East Lansing, MI, United States.
Front Plant Sci. 2023 Feb 6;14:1116812. doi: 10.3389/fpls.2023.1116812. eCollection 2023.
Humans have been harnessing biology to make valuable compounds for generations. From beer and biofuels to pharmaceuticals, biology provides an efficient alternative to industrial processes. With the continuing advancement of molecular tools to genetically modify organisms, biotechnology is poised to solve urgent global problems related to environment, increasing population, and public health. However, the light dependent reactions of photosynthesis are constrained to produce a fixed stoichiometry of ATP and reducing equivalents that may not match the newly introduced synthetic metabolism, leading to inefficiency or damage. While photosynthetic organisms have evolved several ways to modify the ATP/NADPH output from their thylakoid electron transport chain, it is unknown if the native energy balancing mechanisms grant enough flexibility to match the demands of the synthetic metabolism. In this review we discuss the role of photosynthesis in the biotech industry, and the energetic considerations of using photosynthesis to power synthetic biology.
人类利用生物学制造有价值的化合物已有数代之久。从啤酒、生物燃料到药品,生物学为工业生产过程提供了一种高效的替代方案。随着用于对生物体进行基因改造的分子工具不断进步,生物技术有望解决与环境、人口增长和公共卫生相关的紧迫全球问题。然而,光合作用的光反应被限制为产生固定化学计量比的ATP和还原当量,这可能与新引入的合成代谢不匹配,从而导致效率低下或造成损害。虽然光合生物已经进化出几种方法来改变其类囊体电子传递链的ATP/NADPH输出,但尚不清楚天然的能量平衡机制是否具有足够的灵活性来满足合成代谢的需求。在这篇综述中,我们讨论了光合作用在生物技术产业中的作用,以及利用光合作用为合成生物学提供动力时的能量考量。