Selenium Deficiency Aggravates Heat Stress Pneumonia in Chickens by Disrupting the M1/M2 Balance

Yilin Yin1, Jinming Guo1, Zhaoyi Liu1

  • 1College of Veterinary Medicine, Northeast Agricultural University, Harbin, 150030, People's Republic of China.

Insights

Selenium deficiency worsens heat stress-induced pneumonia by causing M1/M2 macrophage imbalance and activating the NF-κB pathway through oxidative stress. This research provides insights into inflammation pathogenesis and disease prevention strategies.

Area of Science:

  • Animal Science
  • Immunology
  • Nutritional Science

Background:

  • Selenium (Se) is vital for immune function; deficiency is linked to inflammation and M1/M2 macrophage imbalance.
  • Heat stress compromises immunity and exacerbates inflammation, potentially worsening conditions like pneumonia.
  • Understanding the interplay between Se status, heat stress, and immune response is crucial for poultry health.

Purpose of the Study:

  • To investigate if Se deficiency aggravates heat stress-induced pneumonia in broilers.
  • To elucidate the role of M1/M2 macrophage imbalance in the development of this condition.
  • To explore the underlying molecular mechanisms involving oxidative stress and the NF-κB pathway.

Main Methods:

  • Broilers were fed conventional or Se-deficient diets, followed by exposure to heat stress.
  • Lung tissues were analyzed using histopathology, immunofluorescence, qPCR, and Western blotting.
  • Oxidative stress markers, inflammatory cytokines, M1/M2 markers, heat shock proteins, and NF-κB pathway components were quantified.

Main Results:

  • Se deficiency exacerbated heat stress-induced lung inflammation, characterized by altered cytokine profiles (upregulated pro-inflammatory, downregulated anti-inflammatory).
  • A significant M1/M2 macrophage imbalance (increased CD16, decreased CD163) was observed in Se-deficient, heat-stressed broilers.
  • Heat stress and Se deficiency activated the NF-κB pathway via oxidative stress, indicated by increased heat shock proteins, MDA, NO, iNOS, NF-κB, and COX-2, and decreased antioxidant enzyme activity.

Conclusions:

  • Low Se induces M1/M2 imbalance, exacerbating heat stress-induced lung inflammation through oxidative stress and NF-κB pathway activation.
  • This study provides a theoretical basis for understanding Se deficiency-related inflammation from an M1/M2 perspective.
  • Findings offer a reference for preventing inflammation-related diseases in poultry linked to Se deficiency and heat stress.