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Epitranscriptomic control of host epithelial responses to candidiasis via N6-Methyladenosine (m 6 A) methylation
Abstract:
Fungal infections represent a major global threat, yet to date there are no vaccines to any pathogenic fungi. The commensal pathobiont Candida albicans was designated a WHO priority pathogen due to its capacity to cause severe morbidity and mortality. In immunocompromised individuals, C. albicans can also cause severe oropharyngeal and mucocutaneous candidiasis. In oropharyngeal candidiasis (OPC), oral epithelial cells (OECs) are the first point of interaction with fungus. Upon encounter with C. albicans , OECs upregulate a large array of anti-fungal defense genes. There are extensive studies characterizing transcriptional mechanisms that lead to expression of cytokines, chemokines, antimicrobial peptides, etc. within OECs. Inflammatory transcripts are subject to extensive regulation at the mRNA level, yet surprisingly little is known about mechanisms that control C. albicans -induced genes posttranscriptionally. Recently, the importance of mRNA modifications (the "epitranscriptome") in immunity has become appreciated, but almost nothing is known about this in the setting of fungal infection. Here, we demonstrate a role for N6-methyladenosine (m 6 A) RNA modification in oral epithelial defense responses to C. albicans . Blockade of core m 6 A machinery including methylases ('writers') and m 6 A binding proteins ('readers') results in reprogramming of essential C. albicans host defense transcripts. In particular, the YTHDF family of m 6 A readers represses a subset of OEC immune genes but upregulates others. Pharmacological inhibition of METTL3, a core m 6 A writer, murine OPC leads to increased cytokine gene expression, resulting in reduced fungal burden and alleviating disease. These studies provide insights into mechanisms through which m 6 A modifications contribute to host epithelial responses to C. albicans , establishing a role for the m 6 A pathway as a bidirectional modulator of immunity to mucosal candidiasis.
Insights
N6-methyladenosine (m⁶A) RNA modification regulates oral epithelial cell defenses against Candida albicans. Inhibiting m⁶A machinery, like METTL3, boosts immune gene expression, reducing fungal infection and disease severity.
Area of Science:
- Immunology
- Molecular Biology
- Microbiology
Background:
- Fungal infections, particularly by *Candida albicans*, pose a significant global health threat, with no existing vaccines.
- Oropharyngeal candidiasis (OPC) involves interactions between oral epithelial cells (OECs) and *C. albicans*, triggering OEC defense gene expression.
- Post-transcriptional regulation of OEC anti-fungal responses remains poorly understood, especially concerning mRNA modifications.
Purpose of the Study:
- To investigate the role of N6-methyladenosine (m⁶A) RNA modification in host epithelial defense against *Candida albicans*.
- To elucidate how m⁶A machinery components (writers and readers) influence the expression of immune genes in OECs during fungal infection.
- To evaluate the therapeutic potential of targeting m⁶A pathways in managing OPC.
Main Methods:
- Studied the impact of blocking m⁶A 'writers' (e.g., METTL3) and 'readers' (e.g., YTHDF proteins) on OEC gene expression in response to *C. albicans*.
- Utilized pharmacological inhibition of METTL3 in a murine model of OPC.
- Assessed changes in fungal burden, cytokine gene expression, and disease severity.
Main Results:
- Disruption of m⁶A machinery reprogrammed essential host defense transcripts in OECs.
- YTHDF m⁶A readers were found to both repress and upregulate distinct subsets of OEC immune genes.
- Pharmacological inhibition of METTL3 in mice led to enhanced cytokine expression, reduced fungal load, and alleviated OPC symptoms.
Conclusions:
- m⁶A RNA modification plays a critical role in modulating epithelial cell immunity against *Candida albicans*.
- The m⁶A pathway acts as a bidirectional regulator of host defense during mucosal candidiasis.
- Targeting m⁶A pathways presents a potential therapeutic strategy for fungal infections like OPC.
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