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bioRxiv · 10.1101/2024.05.23.595652

Stearoyl coenzyme A desaturase 1 (SCD1) regulates foot-and-mouth disease virus replication by modulating host cell lipid metabolism and 2C-mediated replication complex formation

Abstract

The life cycle of foot-and-mouth disease virus (FMDV) is tightly regulated by host cell lipid metabolism. In a previous study, we successfully established a BHK-21 cell model (BHK-Op) for persistent FMDV infection by single-cell clone selection and isolated a virus-negative cell line (BHK-VEC cells) from high-passage BHK-Op cells. BHK-VEC cells could be not infected with FMDV. By conforming the transcriptome data of BHK-VEC cells and BHK-21 cells, we identified that the stearoyl coenzyme A desaturase 1 (SCD1), a key enzyme for the fatty acid metabolism, regulates FMDV replication. SCD1 overexpression or exogenous addition of oleic acid (OA), a product of SCD1 enzyme activity, promoted or upregulated FMDV replication in BHK-21 cells or SCD1 knockdown cells, respectively. Interestingly, overexpression of SCD1 or exogenous addition of OA restored the FMDV infection and replication in BHK-VEC cells. Exogenous addition of OA also promoted FMDV replication in BHK-Op. SCD1 recruited the nonstructural FMDV protein 2C to the detergent-resistant membrane located in the perinuclear nucleus to form replication complex. Inhibition of SCD1 enzyme activity resulted in significantly decreased number of FMDV replication complexes with also abnormal morphology. Importantly, inhibition of SCD1 enzyme activity effectively suppressed replication of other positive-sense RNA viruses, such as REO176, PV1 and EV71. Our results demonstrated that, as a key host regulator of RNA virus replication, SCD1 is a potential target for developing novel drugs against positive-sense RNA virus infection.

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BibTeXRIS

Lv, B., Yuan, Y., Yang, Z., Wang, X., Hu, J., Sun, Y., Du, H., Liu, X., Duan, H., Ding, R., Pan, Z., Tang, X.-F., Shen, C.. 2024-05-24. Stearoyl coenzyme A desaturase 1 (SCD1) regulates foot-and-mouth disease virus replication by modulating host cell lipid metabolism and 2C-mediated replication complex formation. https://doi.org/10.1101/2024.05.23.595652

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