Coevolution of TH1, TH2, and TH17 responses during repeated pulmonary exposure to Aspergillus fumigatus conidia

Benjamin J Murdock1, Andrew B Shreiner, Roderick A McDonald

  • 1Division of Pulmonary and Critical Care Medicine, Department of Internal Medicine, University of Michigan, Ann Arbor, MI 48109-5642, USA.

Infection and Immunity
|November 3, 2010
PubMed

Insights

Repeated exposure to Aspergillus fumigatus conidia in mice led to immune cell changes and T cell responses without increasing fungal load. A non-T cell pathway may regulate inflammation during chronic exposure.

Area of Science:

  • Immunology
  • Microbiology
  • Pulmonary Medicine

Background:

  • Aspergillus fumigatus causes invasive infections and allergic bronchopulmonary aspergillosis.
  • Understanding immunoregulation during repeated fungal exposure is crucial.

Purpose of the Study:

  • To investigate the immune response to repeated Aspergillus fumigatus conidia challenges.
  • To identify changes in leukocyte composition, activation, and cytokine production.

Main Methods:

  • C57BL/6 mice were intranasally challenged weekly with A. fumigatus conidia.
  • Leukocyte analysis, cytokine profiling, and histological examination were performed after 2, 4, and 8 challenges.

Main Results:

  • A. fumigatus conidia were rapidly cleared, with no hyphal growth or accumulation.
  • Repeated exposure led to neutrophil and regulatory T cell influx, followed by eosinophil and myeloid cell peak and decline.
  • T cell activation and development of T(H)1, T(H)2, and T(H)17 responses were observed.
  • Goblet cell metaplasia and low-level fibrosis occurred.

Conclusions:

  • Repeated A. fumigatus exposure induces complex immune responses in the lungs.
  • A non-T cell regulatory pathway likely dampens inflammation during chronic exposure.

Related Concept Videos

Asthma-II: Pathophysiology and Classification01:26

Asthma-II: Pathophysiology and Classification

Asthma is a prevalent chronic respiratory condition marked by inflammation and hyperresponsiveness of the airways. Its pathophysiology involves complex interactions among inflammatory pathways, immune responses, and neural mechanisms.
Additionally, environmental and genetic factors play crucial roles in determining an individual's susceptibility to asthma and the severity of their condition.
Critical processes in asthma pathophysiology include:
Asthma I: Introduction01:28

Asthma I: Introduction

Asthma is a chronic inflammatory disorder of the airways characterized by variable airflow obstruction and heightened bronchial responsiveness to a wide range of triggers. The underlying inflammation leads to airway swelling, mucus hypersecretion, and smooth muscle constriction, all of which narrow the airway lumen and impede airflow. Clinically, asthma presents with recurrent episodes of wheezing, shortness of breath, chest tightness, and coughing, symptoms that typically vary in intensity and...
Asthma III: Clinical Manifestations01:13

Asthma III: Clinical Manifestations

Asthma presents with a characteristic pattern of episodic respiratory symptoms that reflect underlying airway inflammation, bronchoconstriction, and mucus hypersecretion. Although severity varies among individuals, certain clinical manifestations are considered hallmarks of the disorder and often guide diagnosis and assessment.Respiratory SymptomsA persistent cough is one of the most common early features of asthma. It is frequently dry and tends to worsen at night or in the early morning,...
Asthma: Pathogenesis and Management01:20

Asthma: Pathogenesis and Management

Asthma is a chronic pulmonary condition involving inflammation of the airways, hyper-reactivity, and reversible obstruction of the airways. This condition can significantly impact a person's quality of life, making breathing difficult and leading to distressing symptoms.
Asthma is classified as allergic and non-allergic. Allergens such as dust mites, pollen, and pet dander trigger allergic asthma, while factors like cold air, intense emotions, or exercise can induce non-allergic asthma.
Cells of the Adaptive Immune Response01:23

Cells of the Adaptive Immune Response

The T and B lymphocytes of the adaptive immune system develop from common lymphoid progenitor cells in the bone marrow. These progenitors give rise to precursors that eventually develop into both T and B lymphocytes. As these precursors mature, they gain the ability to detect and respond to foreign antigens in the body, a process known as immunocompetence. Additionally, these precursors acquire self-tolerance, a process that ensures they do not react to self-antigens. This intricate system...
Allergic Reactions02:06

Allergic Reactions

Overview