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Microbiome-derived metabolites shape CD4+ T cell differentiation and immune aging in HIV-1 infection
Amanda Cabral Da Silva, Luke Flantzer, Jaclyn Weinberg, Shuya Kyu, Lisa P. Daley-Bauer, Anyce Godoy, Ana Carolina Santana, Aarthi Talla, Amber Lynn Rittgers, Sarah Welbourn, David Ezra Gordon, Jeffery Alan Tomalka, Vincent C. Marconi, Dean P. Jones, Souheil-Antoine Younes
Amanda Cabral Da Silva, Luke Flantzer, Jaclyn Weinberg, Shuya Kyu, Lisa P. Daley-Bauer, Anyce Godoy, Ana Carolina Santana, Aarthi Talla, Amber Lynn Rittgers, Sarah Welbourn, David Ezra Gordon, Jeffery Alan Tomalka, Vincent C. Marconi, Dean P. Jones, Souheil-Antoine Younes
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Research Article AIDS/HIV Aging Immunology

Microbiome-derived metabolites shape CD4+ T cell differentiation and immune aging in HIV-1 infection

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Abstract

The role of aromatic gut-derived bacterial metabolites (GDBMs) in shaping immune cell metabolism and function remains poorly explored. Using ex vivo metabolomic profiling of paired plasma and CD4+ T cells from people living with HIV-1 (PLWH), we identified a network of aromatic GDBMs whose cell-associated abundance, rather than systemic levels, was linked to broad alterations in CD4+ T cell metabolic and functional states. Among these, p-cresol sulfate (PCS) emerged as a mechanistic prototype. Ex vivo flow cytometry and scRNA-seq of CD4+ T cells stratified by cell-associated PCS levels revealed dose-dependent enrichment of transcriptional programs associated with impaired differentiation, regulatory-like identity, and cellular senescence. In vitro transcriptomic and proteomic analyses of PCS-exposed CD4+ T cells demonstrated induction of cell-cycle arrest, mitochondrial dysfunction, and senescence-associated programs, including upregulation of p16 and p21. Integration of these immunometabolic findings with HIV-1 reservoir measurements revealed that CD4+ T cell states defined by cell-associated GDBMs track with intact proviral DNA levels in vivo. These findings define a microbiome-derived axis that reshapes CD4+ T cell metabolism and fate, promotes immune aging in PLWH, and may foster immunometabolic states linked to long-term HIV-1 reservoir persistence.

Authors

Amanda Cabral Da Silva, Luke Flantzer, Jaclyn Weinberg, Shuya Kyu, Lisa P. Daley-Bauer, Anyce Godoy, Ana Carolina Santana, Aarthi Talla, Amber Lynn Rittgers, Sarah Welbourn, David Ezra Gordon, Jeffery Alan Tomalka, Vincent C. Marconi, Dean P. Jones, Souheil-Antoine Younes

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Figure 1

Metabolite Profiling and PCS Quantification in CD4+ T cells from PLWH.

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Metabolite Profiling and PCS Quantification in CD4+ T cells from PLWH.
C...
CD4+ T cells were sorted from PBMCs of 26 immune responders PLWH. Cell-associated and plasma concentrations PCS were quantified by targeted mass spectrometry. Untargeted metabolomics analysis was performed on sorted CD4+ T cells using high-resolution LC-MS. (A and B) Normalized intensities of tricarboxylic acid (TCA) cycle metabolites stratified by cell-associated PCS (A) or plasma PCS (B) concentrations. (C) Spearman correlation coefficients were calculated between cell-associated PCS levels and individual TCA metabolites. (D) Spearman correlation heatmap showing associations between the concentrations of PCS, PAG, PCG, and IAA measured in CD4+ T cells or plasma, and the enrichment of metabolic pathways identified by untargeted metabolomics. Rows represent metabolic pathways, and columns represent cell–associated or plasma metabolite levels. Circle size and color reflect the magnitude and direction of the correlation (red, positive; blue, negative). Metabolite comparisons were analyzed using FDR correction for multiple testing, with FDR-adjusted P < 0.05 considered statistically significant.

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