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Published on: September 27, 2018
Primary transcriptomes of Mycobacterium avium subsp. paratuberculosis reveal proprietary pathways in tissue and
Harish K Janagama1, Elise A Lamont, Sajan George
1Department of Veterinary Population Medicine, University of Minnesota, 1365 Gortner Avenue, Saint Paul, MN 55108, USA.
Background:
Mycobacterium avium subsp. paratuberculosis (MAP) persistently infects intestines and mesenteric lymph nodes leading to a prolonged subclinical disease. The MAP genome sequence was published in 2005, yet its transcriptional organization in natural infection is unknown. While prior research analyzed regulated gene sets utilizing defined, in vitro stress related or advanced surgical methods with various animal species, we investigated the intracellular lifestyle of MAP in the intestines and lymph nodes to understand the MAP pathways that function to govern this persistence.
Results:
Our transcriptional analysis shows that 21%, 8% and 3% of the entire MAP genome was represented either inside tissues, macrophages or both, respectively. Transcripts belonging to latency and cell envelope biogenesis were upregulated in the intestinal tissues whereas those belonging to intracellular trafficking and secretion were upregulated inside the macrophages. Transcriptomes of natural infection and in vitro macrophage infection shared genes involved in transcription and inorganic ion transport and metabolism. MAP specific genes within large sequence polymorphisms of ancestral M. avium complex were downregulated exclusively in natural infection.
Conclusions:
We have unveiled common and unique MAP pathways associated with persistence, cell wall biogenesis and virulence in naturally infected cow intestines, lymph nodes and in vitro infected macrophages. This dichotomy also suggests that in vitro macrophage models may be insufficient in providing accurate information on the events that transpire during natural infection. This is the first report to examine the primary transcriptome of MAP at the local infection site (i.e. intestinal tissue). Regulatory pathways that govern the lifecycle of MAP appear to be specified by tissue and cell type. While tissues show a "shut-down" of major MAP metabolic genes, infected macrophages upregulate several MAP specific genes along with a putative pathogenicity island responsible for iron acquisition. Many of these regulatory pathways rely on the advanced interplay of host and pathogen and in order to decipher their message, an interactome must be established using a systems biology approach. Identified MAP pathways place current research into direct alignment in meeting the future challenge of creating a MAP-host interactome.
Insights
Mycobacterium avium subsp. paratuberculosis (MAP) persistence pathways differ between host tissues and macrophages. In vitro models may not fully represent natural infection dynamics, highlighting the need for systems biology approaches.
Area of Science:
- Microbiology
- Genomics
- Host-Pathogen Interactions
Background:
- Mycobacterium avium subsp. paratuberculosis (MAP) causes persistent intestinal infections.
- The transcriptional organization of MAP during natural infection remains largely unknown.
- Previous studies used in vitro or artificial conditions, not reflecting natural infection.
Purpose of the Study:
- Investigate the intracellular lifestyle of MAP in host tissues and macrophages.
- Understand MAP pathways governing persistence during natural infection.
- Compare transcriptional profiles in natural infection versus in vitro models.
Main Methods:
- Transcriptional analysis of MAP within intestinal tissues and macrophages from naturally infected cows.
- Comparison of gene expression profiles between natural infection and in vitro macrophage infection.
- Analysis of MAP-specific genes and large sequence polymorphisms.
Main Results:
- 21% of the MAP genome was transcribed in tissues, 8% in macrophages, and 3% in both.
- Upregulated transcripts in tissues included latency and cell envelope biogenesis genes.
- Upregulated transcripts in macrophages included intracellular trafficking and secretion genes.
- Shared genes between natural and in vitro infection involved transcription and ion transport.
- MAP genes within specific polymorphisms were downregulated only in natural infection.
Conclusions:
- Identified common and unique MAP pathways for persistence, cell wall biogenesis, and virulence.
- In vitro macrophage models may be insufficient for studying natural MAP infection.
- This is the first study of MAP's primary transcriptome at the intestinal infection site.
- MAP regulatory pathways are tissue- and cell-type specific.
- Host-pathogen interactions and systems biology are crucial for understanding MAP persistence.
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