Evidence map›Paper›PMID 41941036›Full record

ArticleCell biology and toxicology2026

Multi-omics analysis and experimental validation reveal the IRF7-CXCL10 axis as a master regulator of microglial PCD in ischemic stroke.

Yongxing Lai, Peiqiang Lin, Kexin Zhang, Wenyao Hong, Mouwei Zheng, Lijuan Wu, Tin Chen, Fan Lin

Abstract read
In one paragraph

Article in Cell biology and toxicology, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 2 papers.

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2citing papers in PubMed
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1 · What the graph read from it

What it found

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2 · The registry

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3 · Its place in the literature

Who cites it

2 citing papers in PubMed.

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4 · The record

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5 · Who and what money

Authors and funding

8 authors.

Yongxing Lai *Department of Geriatric Medicine, Fuzhou University Affiliated Provincial Hospital, Fuzhou, 134 Dongjie Road, Fujian, 350001, China.
Peiqiang Lin *Department of Neurology, Fuzhou University Affiliated Provincial Hospital, Fuzhou, China.
Kexin Zhang *School of Chemical and Pharmaceutical Engineering, Hebei University of Science and Technology, Hebei, China.
Wenyao HongDepartment of Neurosurgery, Fuzhou University Affiliated Provincial Hospital, Fuzhou, China.
Mouwei ZhengDepartment of Geriatric Medicine, Fuzhou University Affiliated Provincial Hospital, Fuzhou, 134 Dongjie Road, Fujian, 350001, China.
Lijuan WuDepartment of Geriatric Medicine, Fuzhou University Affiliated Provincial Hospital, Fuzhou, 134 Dongjie Road, Fujian, 350001, China.
Tin ChenDepartment of Neurology, Fuzhou University Affiliated Provincial Hospital, Fuzhou, China. 626098887@qq.com.
Fan LinDepartment of Geriatric Medicine, Fuzhou University Affiliated Provincial Hospital, Fuzhou, 134 Dongjie Road, Fujian, 350001, China. linfan@fjmu.edu.cn.

Funding

Fujian Provincial Natural Science Foundation No. 2023J05227the Joint Funds for the innovation of science and Technology, Fujian province No.2023Y9277the Joint Funds for the innovation of science and Technology, Fujian province No.2024Y9602
6 · The paper itself

Abstract

backgroundMicroglia-driven neuroinflammation serves as a critical factor in secondary injury following ischemic stroke, yet the primary regulators governing detrimental microglial phenotypes remain unclear. As a key component of this process, the cell type-specific regulatory mechanisms of programmed cell death (PCD) are poorly understood.

methodsWe performed an integrative analysis of public single-cell and bulk transcriptomic datasets from a murine stroke model. A multi-layered computational pipeline, incorporating pseudotime trajectory, weighted co-expression network analysis (WGCNA), and gene regulatory network inference (SCENIC), was used to identify master regulators of PCD. Functional validation was conducted using in vitro oxygen-glucose deprivation/reoxygenation (OGD/R) on primary microglia-neuron co-cultures and in vivo via a transient middle cerebral artery occlusion (tMCAO) model, employing AAV-mediated microglia-specific gene silencing, comprehensive in vitro and in vivo rescue strategies, and detailed behavioral assessments.

resultsOur single-cell analysis identified microglia as the central hub of PCD activity post-stroke. An unbiased, multi-layered computational pipeline converged upon Interferon Regulatory Factor 7 (IRF7) as the master transcriptional regulator of this high-PCD, pathological microglial state. We confirmed IRF7 upregulation in microglia following ischemic injury and delineated a novel downstream pathway where IRF7 directly binds the CXCL10 promoter to drive its expression, promoting microglial dysfunction and neurotoxicity. In vitro, silencing IRF7 skewed microglia toward an anti-inflammatory phenotype and protected co-cultured neurons from apoptosis. Critically, microglia-specific IRF7 knockdown in vivo significantly reduced infarct volume, suppressed neuronal death, and led to significant improvements in long-term neurological and cognitive function after stroke. Crucially, both in vitro genetic overexpression of CXCL10 and in vivo administration of recombinant CXCL10 completely abolished the neuroprotective benefits of IRF7 inhibition, establishing a definitive functional causality for the IRF7-CXCL10 axis.

conclusionOur findings uncover the IRF7-CXCL10 axis as a pivotal driver of detrimental neuroinflammation in ischemic stroke and establish IRF7 as a potent therapeutic target for neuroprotection.

Indexed as

ApoptosisChemokine CXCL10Interferon Regulatory Factor-7Ischemic StrokeMicrogliaAnimalsCoculture TechniquesDisease Models, AnimalMaleMiceMice, Inbred C57BLNeuronsChemokine CXCL10Cxcl10 protein, mouseInterferon Regulatory Factor-7Irf7 protein, mouseIRF7Ischemic strokeMicrogliaNeuroinflammationProgrammed cell deathSingle-cell

Identifiers

PMID41941036
PMCPMC13186846

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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the OpenQuestion graph.