Blended nexus molecules promote CO 2 to l -tyrosine conversion

Author:

Fan Lei1ORCID,Zhu Zihan2ORCID,Zhao Siyan2ORCID,Panda Smaranika1ORCID,Zhao Yilin1ORCID,Chen Jingyi1,Chen Lei1,Chen Junmei1,He Jianzhong2ORCID,Zhou Kang1ORCID,Wang Lei1ORCID

Affiliation:

1. Department of Chemical and Biomolecular Engineering, National University of Singapore, 4 Engineering Drive 4, Singapore 117585, Singapore.

2. Department of Civil and Environmental Engineering, National University of Singapore, 1 Engineering Drive 2, Singapore 117576, Singapore.

Abstract

Using CO 2 as the primary feedstock offers the potential for high-value utilization of CO 2 while forging sustainable pathways for producing valuable natural products, such as l -tyrosine. Cascade catalysis is a promising approach but limited by stringent purity demands of nexus molecules. We developed an abiotic/biotic cascade catalysis using blended nexus molecules for l -tyrosine synthesis. Specifically, we begin by constructing a solid-state reactor to reduce CO 2 electrochemically, yielding a mixture of acetic acid and ethanol, which serves as the blended nexus molecules. Subsequently, we use genetic engineering to introduce an ethanol utilization pathway and a tyrosine producing pathway to Escherichia coli to facilitate l -tyrosine production. The ethanol pathway synergistically cooperated with the acetic acid pathway, boosting l -tyrosine production rate (nearly five times higher compared to the strain without ethanol utilization pathway) and enhancing carbon efficiency. Our findings demonstrate that using blended nexus molecules could potentially offer a more favorable strategy for the cascade catalysis aimed at producing valuable natural products.

Publisher

American Association for the Advancement of Science (AAAS)

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