The porcine reproductive and respiratory syndrome virus (PRRSV) is a highly contagious pathogen. Viral infections often enhance their replication by modulating the structure and expression of host genes. However, it remains unclear whether PRRSV employs a similar mechanism to achieve self-replication. To address this question, the current study combined assay for transposase accessible chromatin sequencing (ATAC-seq) and ribonucleic acid (RNA) sequencing (RNA-seq) to identify accessible chromatin regions and key host genes associated with PRRSV infection. By comparing the PRRSV-infected group with the control group, we initially detected 8664 differentially accessible chromatin regions and 4037 differentially expressed genes. Motif analysis of these differential chromatin regions revealed several potential cis-regulatory elements containing binding sites for transcription factors. Further integration of ATAC-seq and RNA-seq results identified 1352 overlapping genes between the PRRSV-infected and control groups. A significant positive correlation between differential gene expression and chromatin accessibility signals suggests that chromatin remodeling may drive transcriptional changes during infection. Protein–protein interaction (PPI) network analysis highlighted candidate genes potentially associated with PRRSV infection in hosts, such as IL1B, CCL20, CXCL10, CSF3, etc. Given their potential association with the infection mechanism, these genes could serve as candidate targets for the future development of prophylactic vaccines and therapeutic strategies. Additionally, several signaling pathways that may regulate immune and inflammatory responses were significantly enriched in our ATAC-seq and RNA-seq analyses. These findings provide valuable insights into the molecular mechanisms underlying PRRSV infection and pave the way for developing more effective preventive and treatment measures.
Glaesserella parasuis (G. parasuis) is a major respiratory pathogen in piglets, but the regulatory mechanisms underlying its induced pulmonary inflammation remain poorly understood. In this study, whole-transcriptome sequencing was carried out on lung tissues from colostrum-deprived piglets with mild and severe serotype 5 G. parasuis infection and healthy controls. Differential expression (DE) analysis revealed 299 nominally DE mRNAs and 408 nominally DE lncRNAs in the mild group, increasing to 625 and 1193, respectively, in the severe group. Ingenuity Pathway Analysis identified the S100 family signaling pathway as a core inflammatory module predicted to be activated across both infection grades, with its transcriptional involvement expanding from 8 genes in mild infection to 42 genes in severe infection. Notably, G-protein-coupled receptors (GPCRs) accounted for nearly half (19/42) of the S100-associated DE genes in severe infection, covering multiple functional categories including chemokine receptors, lipid mediator receptors, and metabotropic receptors, suggesting systemic activation of the GPCR family in severe inflammation. Weighted gene co-expression network analysis identified multiple lncRNA candidates, among which two—LOC110256217 and LOC110259349—showed severity-associated connectivity patterns and were selected for further validation. Following G. parasuis infection, time-series RT-qPCR in 3D4/21 cells confirmed their co-expression with corresponding mRNAs and revealed distinct temporal patterns, suggesting their potential differential involvement at early and late stages of the inflammatory response. Collectively, these findings identify a putative lncRNA-S100-GPCR-associated inflammatory module linked to pulmonary inflammation in G. parasuis infection, providing a transcriptomic resource and candidate lncRNA-mRNA pairs for further functional studies and investigation into host resilience. Given the limited sample size (n = 3 per group), these findings should be considered exploratory and warrant validation in larger cohorts.
Jiayi Zeng, Xinqi Zeng, Xiangwei Deng et al.· Animals· 0 citations