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Rewiring Cell-free Metabolic Flux in Lysates Using a Block-push-pull Approach

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Date 2023 Nov 1
PMID 37908558
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Abstract

Cell-free systems can expedite the design and implementation of biomanufacturing processes by bypassing troublesome requirements associated with the use of live cells. In particular, the lack of survival objectives and the open nature of cell-free reactions afford engineering approaches that allow purposeful direction of metabolic flux. The use of lysate-based systems to produce desired small molecules can result in competitive titers and productivities when compared to their cell-based counterparts. However, pathway crosstalk within endogenous lysate metabolism can compromise conversion yields by diverting carbon flow away from desired products. Here, the 'block-push-pull' concept of conventional cell-based metabolic engineering was adapted to develop a cell-free approach that efficiently directs carbon flow in lysates from glucose and toward endogenous ethanol synthesis. The approach is readily adaptable, is relatively rapid and allows for the manipulation of central metabolism in cell extracts. In implementing this approach, a block strategy is first optimized, enabling selective enzyme removal from the lysate to the point of eliminating by-product-forming activity while channeling flux through the target pathway. This is complemented with cell-free metabolic engineering methods that manipulate the lysate proteome and reaction environment to push through bottlenecks and pull flux toward ethanol. The approach incorporating these block, push and pull strategies maximized the glucose-to-ethanol conversion in an lysate that initially had low ethanologenic potential. A 10-fold improvement in the percent yield is demonstrated. To our knowledge, this is the first report of successfully rewiring lysate carbon flux without source strain optimization and completely transforming the consumed input substrate to a desired output product in a lysate-based, cell-free system.

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References
1.
Kay J, Jewett M . Lysate of engineered Escherichia coli supports high-level conversion of glucose to 2,3-butanediol. Metab Eng. 2015; 32:133-142. DOI: 10.1016/j.ymben.2015.09.015. View

2.
Takahashi K, Sato G, Doi N, Fujiwara K . A Relationship between NTP and Cell Extract Concentration for Cell-Free Protein Expression. Life (Basel). 2021; 11(3). PMC: 7999496. DOI: 10.3390/life11030237. View

3.
Pardee K . Perspective: Solidifying the impact of cell-free synthetic biology through lyophilization. Biochem Eng J. 2019; 138:91-97. PMC: 6358126. DOI: 10.1016/j.bej.2018.07.008. View

4.
Ugurbil K, Rottenberg H, Glynn P, Shulman R . 31P nuclear magnetic resonance studies of bioenergetics and glycolysis in anaerobic Escherichia coli cells. Proc Natl Acad Sci U S A. 1978; 75(5):2244-8. PMC: 392528. DOI: 10.1073/pnas.75.5.2244. View

5.
Bujara M, Schumperli M, Billerbeck S, Heinemann M, Panke S . Exploiting cell-free systems: Implementation and debugging of a system of biotransformations. Biotechnol Bioeng. 2010; 106(3):376-89. DOI: 10.1002/bit.22666. View