Myeloid Bmal1 deletion suppresses the house dust mite-induced chronic lung allergy

J Leukoc Biol. 2024 Jan 5;115(1):164-176. doi: 10.1093/jleuko/qiad047.

Abstract

Asthma is the chronic pulmonary inflammatory response that could lead to respiratory failure when allergic reactions exacerbate. It is featured by type 2 immunity with eosinophilic inflammation, mucus, and IgE production, and Th2 cytokine secretion upon repeated challenge of allergens. The symptom severity of asthma displays an apparent circadian rhythm with aggravated airway resistance in the early morning in patients. Bmal1 is the core regulator of the circadian clock, while the regulatory role of Bmal1 in asthma remains unclear. Here, we investigate whether the myeloid Bmal1 is involved in the pathogenesis of house dust mite (HDM)-induced lung allergy. We found that knockdown of Bmal1 in macrophages suppressed the time-of-day variance of the eosinophil infiltration in the alveolar spaces in chronic asthmatic mice. This was accompanied by decreased bronchial mucus production, collagen deposition, and HDM-specific IgE production. However, the suppression effects of myeloid Bmal1 deletion did not alter the allergic responses in short-term exposure to HDM. The transcriptome profile of alveolar macrophages (AMs) showed that Bmal1-deficient AMs have enhanced phagocytosis and reduced production of allergy-mediating prostanoids thromboxane A2 and prostaglandin F2α synthesis. The attenuated thromboxane A2 and prostaglandin F2α may lead to less induction of the eosinophil chemokine Ccl11 expression in bronchial epithelial cells. In summary, our study demonstrates that Bmal1 ablation in macrophages attenuates eosinophilic inflammation in HDM-induced chronic lung allergy, which involves enhanced phagocytosis and reduced prostanoid secretion.

Keywords: alveolar macrophages; circadian clock; lipid mediators; phagocytosis.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Allergens
  • Animals
  • Asthma*
  • Dinoprost / metabolism
  • Disease Models, Animal
  • Eosinophilia* / metabolism
  • Eosinophilia* / pathology
  • Humans
  • Hypersensitivity*
  • Immunoglobulin E / metabolism
  • Inflammation / pathology
  • Lung
  • Mice
  • Pyroglyphidae
  • Thromboxane A2 / metabolism

Substances

  • Dinoprost
  • Thromboxane A2
  • Allergens
  • Immunoglobulin E