The long subclinical phase of Mycobacterium avium ssp. paratuberculosis infections explained without adaptive

Don Klinkenberg1,2, Ad Koets3,4

  • 1Department of Farm Animal Health, Faculty of Veterinary Medicine, Utrecht University, Yalelaan 7, 3584 CL, Utrecht, The Netherlands. don.klinkenberg@rivm.nl.

Veterinary Research
|June 21, 2015
PubMed

Insights

Mathematical models suggest innate immunity, not adaptive immunity, drives the long subclinical phase of Mycobacterium avium ssp. paratuberculosis (MAP) infection in cows, focusing on macrophage organization in granulomas.

Area of Science:

  • Veterinary Immunology
  • Infectious Diseases
  • Mathematical Biology

Background:

  • Mycobacterium avium ssp. paratuberculosis (MAP) causes ruminant intestinal infections with long subclinical phases.
  • Current understanding emphasizes adaptive cell-mediated immunity controlling early infection, followed by antibody responses.

Purpose of the Study:

  • To challenge the role of adaptive immunity in MAP infection control.
  • To propose and investigate the significance of macrophage structural organization within granulomas using mathematical modeling.

Main Methods:

  • Developed two mathematical models: one for villus infection with constant lesion volume, and another for granuloma infection with growing lesion volume.
  • Analyzed threshold parameters (MAP reproduction ratio R MAP, macrophage replacement ratio R MF) influencing lesion development and bacterial shedding.

Main Results:

  • Model 1 identified R MAP and R MF as critical for lesion development and unlimited growth.
  • Demonstrated that changes in R MF (innate immune response) can explain intermittent shedding during the subclinical phase.
  • Model 2 confirmed villus model findings and explained slow early granuloma growth due to bacterial egress via surface area.

Conclusions:

  • The long subclinical period in MAP infection is likely due to the structural organization of infection within granulomatous lesions.
  • Innate immunity, particularly macrophage recruitment and organization, plays a more significant role than adaptive immunity in controlling early MAP infection.
  • Mathematical modeling provides a novel hypothesis for MAP pathogenesis, emphasizing innate immune mechanisms and lesion structure.

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