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Published on: November 28, 2018
Multi-Proteomic Insights into Lysine Propionylation and Malonylation Remodeling in PRRSV-Infected Porcine Lungs
Yue Feng1, Dake Chen1, Houchun Liu1
1Key Laboratory of Animal Embryo Engineering and Molecular Breeding of Hubei Province, Institute of Animal Sciences and Veterinary Medicine, Hubei Academy of Agricultural Sciences, Wuhan 430064, China.
Abstract:
Porcine reproductive and respiratory syndrome virus is a major pathogen that causes massive economic losses in the global swine industry. Lysine propionylation and malonylation are metabolism-sensitive post-translational modifications, yet their coordinated regulatory roles during PRRSV pulmonary infection remain unknown. This study combined quantitative proteomics, propionylome and malonylome to characterize host molecular alterations between healthy and PRRSV-infected porcine lung tissues (three piglets per group). Quantitative proteomics identified 1467 significantly downregulated proteins and only 129 upregulated proteins, indicating a profound host protein shutoff during PRRSV pulmonary infection. The two acyl modifications displayed opposite regulatory patterns independent of global protein expression changes: 51 propionylation sites (24 proteins) were upregulated with only 1 downregulated, while 37 malonylation sites (30 proteins) were downregulated and only 5 upregulated. Functional enrichment and PPI network analysis revealed clear functional divergence: hyper-propionylated hub proteins were exclusively enriched in mitochondrial energy metabolism pathways, whereas hypo-malonylated core proteins were mainly involved in lipid metabolism and cell fate regulation. Integrated multi-omics analysis confirmed that protein expression and lysine acylation constitute two coordinated but independent regulatory layers, with histone H4 identified as a candidate target of competitive propionylation/malonylation. This work reports the comprehensive landscape of lysine propionylation and malonylation upon PRRSV infection, reveals a dual-PTM remodeling strategy for viral hijacking of host homeostasis, and provides candidate targets for future functional investigation and antiviral development.
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