# Unique Gut Microbiome in HIV Patients on Antiretroviral Therapy (ART) Suggests Association with Chronic Inflammation

**Authors:** Aya Ishizaka, Michiko Koga, Taketoshi Mizutani, Prince Kofi Parbie, Diki Prawisuda, Nozomi Yusa, Ayako Sedohara, Tadashi Kikuchi, Kazuhiko Ikeuchi, Eisuke Adachi, Tomohiko Koibuchi, Yoichi Furukawa, Arinobu Tojo, Seiya Imoto, Yutaka Suzuki, Takeya Tsutsumi, Hiroshi Kiyono, Tetsuro Matano, Hiroshi Yotsuyanagi

PMC · DOI: 10.1128/spectrum.00708-21 · 2021-08-11

## TL;DR

This study shows that HIV patients on ART have a unique gut microbiome linked to chronic inflammation, which may contribute to long-term health issues.

## Contribution

The study identifies specific gut microbiome changes in HIV patients associated with chronic inflammation despite effective antiretroviral therapy.

## Key findings

- HIV patients had reduced gut microbiome diversity and distinct bacterial composition compared to uninfected controls.
- Enrichment of facultative anaerobic bacteria and depletion of obligate anaerobic Clostridia correlated with inflammatory cytokines.
- Gut dysbiosis in HIV patients is linked to increased intestinal permeability and sustained bacterial translocation.

## Abstract

Chronic inflammation is a hallmark of human immunodeficiency virus (HIV) infection and a risk factor for the development and progression of age-related comorbidities. Although HIV-associated gut dysbiosis has been suggested to be involved in sustained chronic inflammation, there remains a limited understanding of the association between gut dysbiosis and chronic inflammation during HIV infection. Here, we investigated compositional changes in the gut microbiome and its role in chronic inflammation in patients infected with HIV. We observed that the gut microbiomes of patients with low CD4 counts had reduced alpha diversity compared to those in uninfected controls. Following CD4 recovery, alpha diversity was restored, but intergroup dissimilarity of bacterial composition remained unchanged between patients and uninfected controls. Patients with HIV had higher abundance of the classes Negativicutes, Bacilli, and Coriobacteriia, as well as depletion of the class Clostridia. These relative abundances positively correlated with inflammatory cytokines and negatively correlated with anti-inflammatory cytokines. We found that gut dysbiosis accompanying HIV infection was characterized by a depletion of obligate anaerobic Clostridia and enrichment of facultative anaerobic bacteria, reflecting increased intestinal oxygen levels and intestinal permeability. Furthermore, it is likely that HIV-associated dysbiosis shifts the immunological balance toward inflammatory Th1 responses and encourages proinflammatory cytokine production. Our results suggest that gut dysbiosis contributes to sustaining chronic inflammation in patients with HIV infection despite effective antiretroviral therapy and that correcting gut dysbiosis will be effective in improving long-term outcomes in patients.

IMPORTANCE Chronic inflammation is a hallmark of HIV infection and is associated with the development and progression of age-related comorbidities. Although the gastrointestinal tract is a major site of HIV replication and CD4+ T-cell depletion, the role of HIV-associated imbalance of gut microbiome in chronic inflammation is unclear. Here, we aimed to understand the causal relationship between abnormalities in the gut microbiome and chronic inflammation in patients with HIV. Our results suggest HIV-associated gut dysbiosis presents a more aerobic environment than that of healthy individuals, despite prolonged viral suppression. This dysbiosis likely results from a sustained increase in intestinal permeability, which supports sustained bacterial translocation in HIV patients, despite effective therapy. Additionally, we observed that several bacterial taxa enriched in HIV patients were associated with increased expression of inflammatory cytokines. Collectively, these results suggest that gut dysbiosis plays an important role in chronic inflammation in HIV patients.

## Linked entities

- **Diseases:** HIV infection (MONDO:0005109)

## Full-text entities

- **Genes:** CCL3 (C-C motif chemokine ligand 3) [NCBI Gene 6348] {aka G0S19-1, LD78, LD78ALPHA, MIP-1-alpha, MIP1A, SCI}, IL1B (interleukin 1 beta) [NCBI Gene 3553] {aka IL-1, IL1-BETA, IL1F2, IL1beta}, IL19 (interleukin 19) [NCBI Gene 29949] {aka IL-10C, MDA1, NG.1, ZMDA1}, IL17A (interleukin 17A) [NCBI Gene 3605] {aka CTLA-8, CTLA8, IL-17, IL-17A, IL17, ILA17}, CCL13 (C-C motif chemokine ligand 13) [NCBI Gene 6357] {aka CKb10, MCP-4, NCC-1, NCC1, SCYA13, SCYL1}, CCR5 (C-C motif chemokine receptor 5) [NCBI Gene 1234] {aka CC-CKR-5, CCCKR5, CCR-5, CD195, CKR-5, CKR5}, CLDN1 (claudin 1) [NCBI Gene 9076] {aka CLD1, ILVASC, SEMP1}, IFNG (interferon gamma) [NCBI Gene 3458] {aka IFG, IFI, IMD69}, LYZ (lysozyme) [NCBI Gene 4069] {aka AMYLD5, LYZF1, LZM}, CLDN2 (claudin 2) [NCBI Gene 9075] {aka OAZON, claudin-2}, CCL2 (C-C motif chemokine ligand 2) [NCBI Gene 6347] {aka GDCF-2, HC11, HSMCR30, MCAF, MCP-1, MCP1}, CD4 (CD4 molecule) [NCBI Gene 920] {aka CD4mut, IMD79, Leu-3, OKT4D, T4}
- **Diseases:** bacterial (MESH:D001424), cancers (MESH:D009369), dysbiosis (MESH:D064806), gut damage (MESH:C536735), Chronic Inflammation (MESH:D007249), intestinal (MESH:D007410), type 2 diabetes (MESH:D003924), HIV (MESH:D015658), viremia (MESH:D014766), inflammatory cytokines (MESH:D000080424), cardiovascular disease (MESH:D002318), GALT dysfunction (MESH:D018442), AIDS (MESH:D000163), infected (MESH:D007239), IBD (MESH:D015212), obesity (MESH:D009765), chronic disease (MESH:D002908), chronic kidney disease (MESH:D051436)
- **Species:** Prevotella (genus) [taxon 838], Holdemanella (genus) [taxon 1573535], Shigella (genus) [taxon 620], Actinomycetota (actinobacteria, phylum) [taxon 201174], Human immunodeficiency virus 1 (no rank) [taxon 11676], Bifidobacterium (genus) [taxon 1678], Homo sapiens (human, species) [taxon 9606], Anaerostipes (genus) [taxon 207244], Macaca mulatta (rhesus macaque, species) [taxon 9544], Escherichia coli (E. coli, species) [taxon 562], Lactobacillus (genus) [taxon 1578], Clostridium (genus) [taxon 1485], Slackia (genus) [taxon 84108], Eggerthella (genus) [taxon 84111], Roseburia (genus) [taxon 841], Bifidobacteriales (order) [taxon 85004], Ruminococcus (genus) [taxon 1263], Catenibacterium (genus) [taxon 135858], Blautia (genus) [taxon 572511], Streptococcus (genus) [taxon 1301], Bacteria Latreille et al. 1825 (Bacteria stick insect, genus) [taxon 629395], Bacteroides (genus) [taxon 816], Collinsella (genus) [taxon 102106], Coriobacteriia (class) [taxon 84998], Lachnospira (genus) [taxon 28050], Parabacteroides (genus) [taxon 375288], Mus musculus (house mouse, species) [taxon 10090]
- **Cell lines:** S2 — Drosophila melanogaster (Fruit fly), Spontaneously immortalized cell line (CVCL_Z232)

## Figures

8 figures with captions in the complete paper: https://tomesphere.com/paper/PMC8552706/full.md

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Source: https://tomesphere.com/paper/PMC8552706