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Advances in Understanding Human Genetic Variations That Influence Innate Immunity to Fungi
Richard M Merkhofer1, Bruce S Klein1,2,3,4
1School of Medicine and Public Health, University of Wisconsin-Madison, Madison, WI, United States.
Abstract:
Fungi are ubiquitous. Yet, despite our frequent exposure to commensal fungi of the normal mammalian microbiota and environmental fungi, serious, systemic fungal infections are rare in the general population. Few, if any, fungi are obligate pathogens that rely on infection of mammalian hosts to complete their lifecycle; however, many fungal species are able to cause disease under select conditions. The distinction between fungal saprophyte, commensal, and pathogen is artificial and heavily determined by the ability of an individual host's immune system to limit infection. Dramatic examples of commensal fungi acting as opportunistic pathogens are seen in hosts that are immune compromised due to congenital or acquired immune deficiency. Genetic variants that lead to immunological susceptibility to fungi have long been sought and recognized. Decreased myeloperoxidase activity in neutrophils was first reported as a mechanism for susceptibility to Candida infection in 1969. The ability to detect genetic variants and mutations that lead to rare or subtle susceptibilities has improved with techniques such as single nucleotide polymorphism (SNP) microarrays, whole exome sequencing (WES), and whole genome sequencing (WGS). Still, these approaches have been limited by logistical considerations and cost, and they have been applied primarily to Mendelian impairments in anti-fungal responses. For example, loss-of-function mutations in CARD9 were discovered by studying an extended family with a history of fungal infection. While discovery of such mutations furthers the understanding of human antifungal immunity, major Mendelian susceptibility loci are unlikely to explain genetic disparities in the rate or severity of fungal infection on the population level. Recent work using unbiased techniques has revealed, for example, polygenic mechanisms contributing to candidiasis. Understanding the genetic underpinnings of susceptibility to fungal infections will be a powerful tool in the age of personalized medicine. Future application of this knowledge may enable targeted health interventions for susceptible individuals, and guide clinical decision making based on a patient's individual susceptibility profile.
Insights
Genetic factors influence susceptibility to fungal infections. While rare mutations cause severe disease, polygenic factors likely explain population-level differences in fungal infection risk, paving the way for personalized medicine.
Area of Science:
- Immunology
- Genetics
- Mycology
Background:
- Fungi are common, but serious infections are rare in healthy individuals.
- Host immune status is critical in determining fungal pathogenicity.
- Genetic susceptibility to fungal infections has been recognized for decades.
Purpose of the Study:
- To review the genetic basis of susceptibility to fungal infections.
- To highlight the limitations of current genetic approaches.
- To discuss future directions in understanding fungal immunity.
Main Methods:
- Review of existing literature on genetic susceptibility to fungal infections.
- Discussion of techniques like SNP microarrays, whole exome sequencing (WES), and whole genome sequencing (WGS).
- Analysis of Mendelian and polygenic inheritance patterns.
Main Results:
- Rare genetic variants (e.g., in CARD9) can cause severe susceptibility.
- Major Mendelian loci do not fully explain population-level variations in fungal infection risk.
- Polygenic mechanisms contribute to conditions like candidiasis.
Conclusions:
- Understanding genetic susceptibility is key for personalized medicine in fungal infections.
- Future research should focus on polygenic factors for broader applicability.
- Knowledge of genetic profiles can guide targeted interventions and clinical decisions.
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