Improving Microbial Cell Factory Performance by Engineering SAM Availability.

Md Asraful Alam, Shen Zhang, Jingliang Xu, Anqi Zhao, Song Chen, Weiping Zhang, Xian Wang, Peng Xu, Shilei Wang, Yongkun Lv, Jinmian Chang, Hanyu Dong, Chaojun Du, Weigao Wang

Journal: Journal of agricultural and food chemistry 2024;72(8):3846-3871

PMID: 38372640

Abstract

Methylated natural products are widely spread in nature. -Adenosyl-l-methionine (SAM) is the secondary abundant cofactor and the primary methyl donor, which confer natural products with structural and functional diversification. The increasing demand for SAM-dependent natural products (SdNPs) has motivated the development of microbial cell factories (MCFs) for sustainable and efficient SdNP production. Insufficient and unsustainable SAM availability hinders the improvement of SdNP MCF performance. From the perspective of developing MCF, this review summarized recent understanding of SAM biosynthesis and its regulatory mechanism. SAM is just the methyl mediator but not the original methyl source. Effective and sustainable methyl source supply is critical for efficient SdNP production. We compared and discussed the innate and relatively less explored alternative methyl sources and identified the one involving cheap one-carbon compound as more promising. The SAM biosynthesis is synergistically regulated on multilevels and is tightly connected with ATP and NAD(P)H pools. We also covered the recent advancement of metabolic engineering in improving intracellular SAM availability and SdNP production. Dynamic regulation is a promising strategy to achieve accurate and dynamic fine-tuning of intracellular SAM pool size. Finally, we discussed the design and engineering constraints underlying construction of SAM-responsive genetic circuits and envisioned their future applications in developing SdNP MCFs.

Address: School of Chemical Engineering, Zhengzhou University, No. 100 Science Avenue, Zhengzhou 450001, China.; Bloomage Biotechnology Corporation Limited, 678 Tianchen Street, Jinan, Shandong 250101, China.; School of Life Sciences, Zhengzhou University, No. 100 Science Avenue, Zhengzhou, 450001, China.; Nanyang Research Institute of Zhengzhou University, Nanyang Institute of Technology, No. 80 Changjiang Road, Nanyang 473004, China.; School of Chemical Engineering, Zhengzhou University, No. 100 Science Avenue, Zhengzhou 450001, China.; National Key Laboratory of Biobased Transportation Fuel Technology, No. 100 Science Avenue, Zhengzhou 450001, China.; Department of Chemical Engineering, Stanford University, 443 Via Ortega, Palo Alto, California 94305, United States.; Department of Chemical Engineering, Guangdong Technion-Israel Institute of Technology (GTIIT), Shantou, Guangdong 515063, China.

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