Evidence map›Paper›PMID 42026465›Full record

ArticleMolecular medicine (Cambridge, Mass.)2026

Integrated in vitro and multi-cohort cross-omics analysis of HTLV-1-associated lung pathology reveals a RelA-dependent mechanism for monocyte recruitment and differentiation.

Clément J F Heymann, Mieke Gouwy, Robin Hermans, Jean-Claude Twizere, Tatiane Assone, Jorge Casseb, Isaac Racine, Isabelle Cleynen, Edward L Murphy, Roberta Bruhn and 3 more

Abstract read
In one paragraph

Article in Molecular medicine (Cambridge, Mass.), 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.

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0cells of the map it votes in
0citing papers in PubMed
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1 · What the graph read from it

What it found

Each row is one number read from the abstract, on the scale the paper reported it, with its interval. Left of the dashed line favours the treatment, right favours the comparator. Under each row is the sentence it came from. New to these charts? A ten-minute tutorial.

The abstract states no effect estimate the extractor could read, or names no intervention and outcome on the map, so this paper lights no cell and moves no belief. It is still indexed, cited and linked below.

2 · The registry

The trial behind it

Trials whose registry record cites this paper, or whose number appears in the abstract. A trial that started after this paper was published is citing it as background, not reporting it.

Neither the registry nor the abstract names a trial number. If this is a trial report, that itself is worth knowing.

3 · Its place in the literature

Who cites it

0 citing papers in PubMed.

No citing paper in PubMed yet.

4 · The record

Corrections and comments

PubMed lists nothing against this paper. Absence here is not a guarantee, only a check that was made.

5 · Who and what money

Authors and funding

13 authors.

Clément J F HeymannLaboratory of Molecular, Structural and Translational Virology, Department of Microbiology, Immunology and Transplantation, Rega Institute for Medical Research, KU Leuven, Leuven, Belgium. clement.heymann@kuleuven.be.
Mieke GouwyLaboratory of Molecular Immunology, Department of Microbiology, Immunology and Transplantation, Rega Institute for Medical Research, KU Leuven, Leuven, Belgium.
Robin HermansLaboratory of Molecular, Structural and Translational Virology, Department of Microbiology, Immunology and Transplantation, Rega Institute for Medical Research, KU Leuven, Leuven, Belgium.
Jean-Claude TwizereLaboratory of Viral Interactomes Networks, Unit of Molecular and Computational Biology, Interdisciplinary Cluster for Applied Genoproteomics (GIGA Institute), University of Liège, Liège, Belgium.
Tatiane AssoneLaboratory of Immunohematology and Forensic Hematology-LIM40, Department of Forensic Medicine, Medical Ethics, Social Medicine and Work, University of São Paulo Medical School, São Paulo, Brazil.
Jorge CassebLaboratory of Immunohematology and Forensic Hematology-LIM40, Department of Forensic Medicine, Medical Ethics, Social Medicine and Work, University of São Paulo Medical School, São Paulo, Brazil.
Isaac RacineLaboratory for Complex Genetics, Department of Human Genetics, KU Leuven, Leuven, Belgium.
Isabelle CleynenLaboratory for Complex Genetics, Department of Human Genetics, KU Leuven, Leuven, Belgium.
Edward L MurphyUniversity of California San Francisco and Vitalant Research Institute, San Francisco, USA.
Roberta BruhnVitalant Research Institute, San Francisco and Yale University, New Haven, USA.
Dominique ScholsLaboratory of Molecular, Structural and Translational Virology, Department of Microbiology, Immunology and Transplantation, Rega Institute for Medical Research, KU Leuven, Leuven, Belgium.
Evelien VanderlindenLaboratory of Molecular, Structural and Translational Virology, Department of Microbiology, Immunology and Transplantation, Rega Institute for Medical Research, KU Leuven, Leuven, Belgium. evelien.vanderlinden@kuleuven.be.
Johan Van WeyenberghLaboratory of Clinical and Epidemiological Virology, Department of Microbiology, Immunology and Transplantation, Rega Institute for Medical Research, KU Leuven, Leuven, Belgium. johan.vanweyenbergh@kuleuven.be.

Funding

Fonds Wetenschappelijk Onderzoek G0A0621NNIH HHS R01-HL-62235
6 · The paper itself

Abstract

backgroundHuman T-lymphotropic virus type 1 (HTLV-1) infects up to ten million people worldwide and is associated with inflammatory diseases, including HTLV-1-associated myelopathy/tropical spastic paraparesis (HAM/TSP). Individuals with HAM/TSP are prone to pulmonary complications such as bronchiectasis, characterized by sustained mononuclear cell infiltration and elevated inflammatory mediators in bronchoalveolar lavage fluid. However, the epithelial mechanisms linking HTLV-1 exposure to lung inflammation remain poorly defined.

methodsTo study epithelial signaling in response to HTLV-1 exposure, human alveolar epithelial A549 cells were co-cultured with HTLV-1-infected (MT-2 or MT-4 cells) T cells/supernatants or uninfected (Jurkat) T cells. Transcriptomic changes were assessed by RNA sequencing and pathway enrichment analyses, with key mediators validated by RT-qPCR. NF-κB dependency was evaluated using CRISPR/Cas9-mediated knockout of NF-κB RelA/p65. Functional consequences of epithelial activation were assessed using monocyte chemotaxis and differentiation assays in THP-1 cells and primary human monocytes. In vivo relevance was examined through integrative cross-omics analyses combining our own and publicly available bulk and single-cell transcriptomics, epigenomics, viral interactomics, and multi-ancestry genome-wide association studies (GWAS).

resultsHTLV-1 exposure induced a robust epithelial antiviral and inflammatory transcriptional program in A549 cells, predominantly regulated by NF-κB signaling. Among the most strongly upregulated genes in A549 MT-2 co-cultures were the monocyte chemoattractant MCP-1/CCL2 and the macrophage differentiation factor CSF1, as confirmed by RT-qPCR. CRISPR/Cas9-mediated knockout of NF-κB RelA/p65 demonstrated that CSF-1 induction is mechanistically dependent on NF-κB activation. Supernatants from HTLV-1-exposed epithelial cells promoted monocyte chemotaxis and macrophage differentiation in THP-1 cells and primary human monocytes. Transcriptomic data of people living with HTLV-1, HAM/TSP patients and idiopathic pulmonary fibrosis patients confirm in vivo expression of the in vitro gene signature, whereas single cell RNA-seq identified a unique myeloid subset in human lung, characterized by co-expression of CCL2/ISG15/CXCL10. Finally, GWAS analyses revealed ancestry-specific associations (CCL2 for European and CSF1 for African ancestry).

conclusionsWe report an in vitro co-culture model that recapitulates HTLV-1-triggered lung inflammation through RelA/NF-kB-dependent release of pro-inflammatory cytokines and chemokines resulting in monocyte chemotaxis, activation and differentiation. This epithelial-myeloid inflammatory axis provides a relevant in vitro model that recapitulates in vivo HTLV-1-associated lung pathology.

Indexed as

HTLV-I InfectionsHuman T-lymphotropic virus 1LungMonocytesTranscription Factor RelACell DifferentiationGene Expression ProfilingHumansMultiomicsSignal TransductionTranscriptomeRELA protein, humanTranscription Factor RelABronchiectasisGWASHTLV-1InflammationInteractomeLungMonocytesTranscriptomics

Identifiers

PMID42026465
PMCPMC13237950

What Socratic holds

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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 Socratic graph.