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ATHENA: a dynamic metabolic hub balancing carbon economy and energy supply in microbial synthesis

Likun Guo, Xinjun Feng, Xingyu Zhang, Chao Xu, Wei Liu, Yujia Bi, Qingsheng Qi, Mo Xian, Guang Zhao

Revista con revisión por paresAfirmaciones fuertes, leer con cuidadoUso en el mundo real

En palabras de los autores

Diverse chemicals biosynthesis demand distinct precursor acetyl-CoA and energy inputs, yet strategies balancing carbon atom economy and energy generation for varied products remain scarce. Here, we design an autonomous hybrid energy-carbon balancing apparatus (ATHENA) to establish a paradigm for redox-driven, dynamically adaptive regulation of carbon conservation and energy synthesis in Escherichia coli. ATHENA features modularization of acetyl-CoA and NADH synthesis pathways for carbon conservation and energy generation, paired with NADH-responsive positive and negative genetic circuits constructed using the BsRex sensor and antisense RNA. This system enables intracellular redox state-dependent rational metabolic flux allocation to balance carbon atom economy and energy generation. Ultimately, ATHENA significantly improves yields and titers of five products with differential acetyl-CoA and energy demands. In the 5-L bioreactor, acetate yield markedly exceeds its native theoretical yield, while that of mevalonate nearly approaches this theoretical upper limit. This work provides a universal strategy for constructing high carbon-yield microbial chassis cells. Metabolic engineering strategies that balance carbon atom economy and energy generation remain scarce. Here the authors engineer E. coli with an NADH-responsive genetic circuit to regulate carbon-conserving and energy-generating modules, improving yields and titres of diverse products.

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Apareció: domingo, 27 de septiembre. Nature Communications. Revista con revisión por pares.

DOI: 10.1038/s41467-026-78191-8