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Exploring MicroRNA-Mediated Immune Responses to Soil-Transmitted Helminth and Herpes Simplex Virus Type 2 Co-Infections

Overview
Journal Diseases
Date 2025 Jan 24
PMID 39851470
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Abstract

Over the last two decades, the field of microRNA (miRNA) research has grown significantly. MiRNAs are a class of short, single-stranded, non-coding RNAs that regulate gene expression post-transcriptionally. Thereby, miRNAs regulate various essential biological processes including immunity. Dysregulated miRNAs are associated with various infectious and non-infectious diseases. Recently co-infection with soil-transmitted helminths (STHs) and herpes simplex virus type 2 (HSV-2) has become a focus of study. Both pathogens can profoundly influence host immunity, particularly in under-resourced and co-endemic regions. It is well known that STHs induce immunomodulatory responses that have bystander effects on unrelated conditions. Typically, STHs induce T-helper 2 (Th2) and immunomodulatory responses, which may dampen the proinflammatory T-helper 1 (Th1) immune responses triggered by HSV-2. However, the extent to which STH co-infection influences the host immune response to HSV-2 is not well understood. Moreover, little is known about how miRNAs shape the immune response to STH/HSV-2 co-infection. In this article, we explore the potential influence that STH co-infection may have on host immunity to HSV-2. Because STH and HSV-2 infections are widespread and disproportionately affect vulnerable and impoverished countries, it is important to consider how STHs may impact HSV-2 immunity. Specifically, we explore how miRNAs contribute to both helminth and HSV-2 infections and discuss how miRNAs may mediate STH/HSV-2 co-infections. Insight into miRNA-mediated immune responses may further improve our understanding of the potential impact of STH/HSV-2 co-infections.

References
1.
Coakley G, McCaskill J, Borger J, Simbari F, Robertson E, Millar M . Extracellular Vesicles from a Helminth Parasite Suppress Macrophage Activation and Constitute an Effective Vaccine for Protective Immunity. Cell Rep. 2017; 19(8):1545-1557. PMC: 5457486. DOI: 10.1016/j.celrep.2017.05.001. View

2.
Kasal D, Warner L, Bryant A, Tait Wojno E, von Moltke J . Systemic Immune Modulation by Gastrointestinal Nematodes. Annu Rev Immunol. 2024; 42(1):259-288. DOI: 10.1146/annurev-immunol-090222-101331. View

3.
Jiang Y, Feng H, Lin Y, Guo X . New strategies against drug resistance to herpes simplex virus. Int J Oral Sci. 2016; 8(1):1-6. PMC: 4822185. DOI: 10.1038/ijos.2016.3. View

4.
Schulte L, Westermann A, Vogel J . Differential activation and functional specialization of miR-146 and miR-155 in innate immune sensing. Nucleic Acids Res. 2012; 41(1):542-53. PMC: 3592429. DOI: 10.1093/nar/gks1030. View

5.
Cucher M, Ancarola M, Kamenetzky L . The challenging world of extracellular RNAs of helminth parasites. Mol Immunol. 2021; 134:150-160. DOI: 10.1016/j.molimm.2021.03.011. View