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Published on: November 28, 2018
Identification of Long Non-coding RNA Isolated From Naturally Infected Macrophages and Associated With Bovine Johne's
Andrew Marete1, Olivier Ariel1,2, Eveline Ibeagha-Awemu1
1Agriculture and Agri-Food Canada, Sherbrooke Research and Development Centre, Sherbrooke, QC, Canada.
Abstract:
Mycobacterium avium ssp. paratuberculosis (MAP) causes chronic enteritis in most ruminants. The pathogen MAP causes Johne's disease (JD), a chronic, incurable, wasting disease. Weight loss, diarrhea, and a gradual drop in milk production characterize the disease's clinical phase, culminating in death. Several studies have characterized long non-coding RNA (lncRNA) in bovine tissues, and a previous study characterizes (lncRNA) in macrophages infected with MAP in vitro. In this study, we aim to characterize the lncRNA in macrophages from cows naturally infected with MAP. From 15 herds, feces and blood samples were collected for each cow older than 24 months, twice yearly over 3-5 years. Paired samples were analyzed by fecal PCR and blood ELISA. We used RNA-seq data to study lncRNA in macrophages from 33 JD(+) and 33 JD(-) dairy cows. We performed RNA-seq analysis using the "new Tuxedo" suite. We characterized lncRNA using logistic regression and multilayered neural networks and used DESeq2 for differential expression analysis and Panther and Reactome classification systems for gene ontology (GO) analysis. The study identified 13,301 lncRNA, 605 of which were novel lncRNA. We found seven genes close to differentially expressed lncRNA, including CCDC174, ERI1, FZD1, TWSG1, ZBTB38, ZNF814, and ZSCAN4. None of the genes associated with susceptibility to JD have been cited in the literature. LncRNA target genes were significantly enriched for biological process GO terms involved in immunity and nucleic acid regulation. These include the MyD88 pathway (TLR5), GO:0043312 (neutrophil degranulation), GO:0002446 (neutrophil-mediated immunity), and GO:0042119 (neutrophil activation). These results identified lncRNA with potential roles in host immunity and potential candidate genes and pathways through which lncRNA might function in response to MAP infection.
Insights
This study identified novel long non-coding RNAs (lncRNAs) in dairy cows with Johne's disease (JD), caused by Mycobacterium avium ssp. paratuberculosis (MAP). These lncRNAs are linked to immune responses and may offer new insights into JD pathogenesis.
Area of Science:
- Veterinary Immunology
- Molecular Biology
- Ruminant Health
Background:
- Mycobacterium avium ssp. paratuberculosis (MAP) causes Johne's disease (JD), a chronic, incurable enteritis in ruminants.
- Long non-coding RNAs (lncRNAs) play roles in cellular processes, but their function in MAP-infected macrophages is not fully understood.
- Previous research characterized lncRNAs in bovine tissues and MAP-infected macrophages in vitro.
Purpose of the Study:
- To characterize lncRNAs in macrophages from dairy cows naturally infected with MAP.
- To identify novel lncRNAs and differentially expressed genes associated with JD.
- To explore the biological functions and pathways regulated by lncRNAs in response to MAP infection.
Main Methods:
- RNA sequencing (RNA-seq) was performed on macrophages from 33 JD-positive and 33 JD-negative dairy cows.
- lncRNA identification and characterization were conducted using the 'new Tuxedo' suite.
- Differential expression analysis (DESeq2) and gene ontology (GO) analysis (Panther, Reactome) were employed.
Main Results:
- 13,301 lncRNAs were identified, including 605 novel ones.
- Seven candidate genes (CCDC174, ERI1, FZD1, TWSG1, ZBTB38, ZNF814, ZSCAN4) were found near differentially expressed lncRNAs.
- lncRNA target genes were significantly enriched in immune-related GO terms, including the MyD88 pathway and neutrophil activation.
Conclusions:
- This study identified novel lncRNAs with potential roles in host immunity against MAP infection.
- Candidate genes and pathways regulated by lncRNAs were highlighted for further investigation.
- These findings contribute to understanding the molecular mechanisms of JD pathogenesis and host response.
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