» Articles » PMID: 29950719

Induction of Innate Immune Memory Via MicroRNA Targeting of Chromatin Remodelling Factors

Overview
Journal Nature
Specialty Science
Date 2018 Jun 29
PMID 29950719
Citations 92
Authors
Affiliations
Soon will be listed here.
Abstract

Prolonged exposure to microbial products such as lipopolysaccharide can induce a form of innate immune memory that blunts subsequent responses to unrelated pathogens, known as lipopolysaccharide tolerance. Sepsis is a dysregulated systemic immune response to disseminated infection that has a high mortality rate. In some patients, sepsis results in a period of immunosuppression (known as 'immunoparalysis') characterized by reduced inflammatory cytokine output, increased secondary infection and an increased risk of organ failure and mortality. Lipopolysaccharide tolerance recapitulates several key features of sepsis-associated immunosuppression. Although various epigenetic changes have previously been observed in tolerized macrophages, the molecular basis of tolerance, immunoparalysis and other forms of innate immune memory has remained unclear. Here we perform a screen for tolerance-associated microRNAs and identify miR-221 and miR-222 as regulators of the functional reprogramming of macrophages during lipopolysaccharide tolerization. Prolonged stimulation with lipopolysaccharide in mice leads to increased expression of miR-221 and mir-222, both of which regulate brahma-related gene 1 (Brg1, also known as Smarca4). This increased expression causes the transcriptional silencing of a subset of inflammatory genes that depend on chromatin remodelling mediated by SWI/SNF (switch/sucrose non-fermentable) and STAT (signal transducer and activator of transcription), which in turn promotes tolerance. In patients with sepsis, increased expression of miR-221 and miR-222 correlates with immunoparalysis and increased organ damage. Our results show that specific microRNAs can regulate macrophage tolerization and may serve as biomarkers of immunoparalysis and poor prognosis in patients with sepsis.

Citing Articles

Circulating MicroRNAs in Patients with Vulvar Squamous Cell Carcinoma and Its Precursors.

Rymuza J, Dlugosz A, Zalewski K, Kowalik A, Bujko M, Kowalewska M Noncoding RNA. 2025; 11(1).

PMID: 39997613 PMC: 11858568. DOI: 10.3390/ncrna11010013.


The role of natural products targeting macrophage polarization in sepsis-induced lung injury.

Li Y, Ai S, Li Y, Ye W, Li R, Xu X Chin Med. 2025; 20(1):19.

PMID: 39910395 PMC: 11800549. DOI: 10.1186/s13020-025-01067-4.


Microbial surveillance versus cytokine responsiveness in native and non-native house sparrows.

McCain K, Mansilla G, Sheldon E, Zimmer C, Schrey A, Rowe M Biol Lett. 2025; 21(1):20240431.

PMID: 39878139 PMC: 11776021. DOI: 10.1098/rsbl.2024.0431.


Regulatory Roles of SWI/SNF Chromatin Remodeling Complexes in Immune Response and Inflammatory Diseases.

Sun S, Chen Y, Ouyang Y, Tang Z Clin Rev Allergy Immunol. 2025; 68(1):2.

PMID: 39751934 DOI: 10.1007/s12016-024-09011-4.


Sex differences in disease: sex chromosome and immunity.

Feng Z, Liao M, Zhang L J Transl Med. 2024; 22(1):1150.

PMID: 39731171 PMC: 11673612. DOI: 10.1186/s12967-024-05990-2.


References
1.
Kadoch C, Hargreaves D, Hodges C, Elias L, Ho L, Ranish J . Proteomic and bioinformatic analysis of mammalian SWI/SNF complexes identifies extensive roles in human malignancy. Nat Genet. 2013; 45(6):592-601. PMC: 3667980. DOI: 10.1038/ng.2628. View

2.
Ostuni R, Piccolo V, Barozzi I, Polletti S, Termanini A, Bonifacio S . Latent enhancers activated by stimulation in differentiated cells. Cell. 2013; 152(1-2):157-71. DOI: 10.1016/j.cell.2012.12.018. View

3.
Ni Z, Karaskov E, Yu T, Callaghan S, Der S, Park D . Apical role for BRG1 in cytokine-induced promoter assembly. Proc Natl Acad Sci U S A. 2005; 102(41):14611-6. PMC: 1253546. DOI: 10.1073/pnas.0503070102. View

4.
Mages J, Dietrich H, Lang R . A genome-wide analysis of LPS tolerance in macrophages. Immunobiology. 2007; 212(9-10):723-37. DOI: 10.1016/j.imbio.2007.09.015. View

5.
Ran F, Hsu P, Wright J, Agarwala V, Scott D, Zhang F . Genome engineering using the CRISPR-Cas9 system. Nat Protoc. 2013; 8(11):2281-2308. PMC: 3969860. DOI: 10.1038/nprot.2013.143. View