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The puzzle of immune phenotypes of childhood asthma
Katja Landgraf-Rauf1,2, Bettina Anselm1, Bianca Schaub3,4
1Department of Pulmonary and Allergy, Dr. von Hauner Children's Hospital, LMU, Lindwurmstraße 4, 80337, Munich, Germany.
Insights
Understanding childhood asthma requires exploring complex immunological mechanisms. New research defines asthma endotypes based on genetics, immune cells like T helper and innate lymphoid cells, epigenetics, and metabolomics for better treatment.
Area of Science:
- Pediatric Immunology
- Allergy and Immunology
- Genetics and Genomics
Background:
- Childhood asthma is a prevalent global disease with diverse triggers and classifications, including allergic and non-allergic asthma.
- Current treatments are often generalized, lacking precision due to incomplete understanding of underlying immunological mechanisms in children.
- Existing classifications based on clinical symptoms like wheezing and atopy do not fully capture the complexity of asthma development.
Purpose of the Study:
- To review recent advancements in understanding the complex mechanisms behind childhood asthma development and manifestation.
- To highlight novel approaches in classifying asthma phenotypes and endotypes.
- To discuss the challenges and future directions in childhood asthma research.
Main Methods:
- Review of recent epidemiological studies, focusing on disease history and environmental influences.
- Analysis of molecular and cellular mechanisms, including genetic variations (SNPs), immune cell functions (T cells, ILCs), and epigenetic modifications.
- Exploration of post-transcriptional regulation (miRNAs) and metabolomics for endotyping.
Main Results:
- Novel asthma endotypes are being defined using genetic, immune, epigenetic, and metabolic biomarkers.
- Specific immune cells, including regulatory T cells, Th9, Th17 cells, and innate lymphoid cells (ILCs), play critical roles.
- Epigenetic patterns (acetylation, methylation) and microRNAs (miRNAs) show differences between asthma phenotypes.
Conclusions:
- Despite progress, a comprehensive understanding of childhood asthma's complex mechanisms remains incomplete.
- Future research requires large, interdisciplinary cohorts to unravel the interplay of immune mechanisms for distinct phenotypes and endotypes.
- Developing precise treatments necessitates addressing the stability of phenotypes and transitions into adulthood.
Abstract:
Asthma represents the most common chronic childhood disease worldwide. Whereas preschool children present with wheezing triggered by different factors (multitrigger and viral wheeze), clinical asthma manifestation in school children has previously been classified as allergic and non-allergic asthma. For both, the underlying immunological mechanisms are not yet understood in depth in children. Treatment is still prescribed regardless of underlying mechanisms, and children are not always treated successfully. This review summarizes recent key findings on the complex mechanisms of the development and manifestation of childhood asthma. Whereas traditional classification of childhood asthma is primarily based on clinical symptoms like wheezing and atopy, novel approaches to specify asthma phenotypes are under way and face challenges such as including the stability of phenotypes over time and transition into adulthood. Epidemiological studies enclose more information on the patient's disease history and environmental influences. Latest studies define endotypes based on molecular and cellular mechanisms, for example defining risk and protective single nucleotide polymorphisms (SNPs) and new immune phenotypes, showing promising results. Also, regulatory T cells and recently discovered T helper cell subtypes such as Th9 and Th17 cells were shown to be important for the development of asthma. Innate lymphoid cells (ILC) could play a critical role in asthma patients as they produce different cytokines associated with asthma. Epigenetic findings showed different acetylation and methylation patterns for children with allergic and non-allergic asthma. On a posttranscriptional level, miRNAs are regulating factors identified to differ between asthma patients and healthy controls and also indicate differences within asthma phenotypes. Metabolomics is another exciting chapter important for endotyping asthmatic children. Despite the development of new biomarkers and the discovery of new immunological molecules, the complex puzzle of childhood asthma is still far from being completed. Addressing the current challenges of distinct clinical asthma and wheeze phenotypes, including their stability and underlying endotypes, involves addressing the interplay of innate and adaptive immune regulatory mechanisms in large, interdisciplinary cohorts.
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