The Gut–Vagina Axis
Abstract
1. Introduction
2. Definition and Significance
3. The Vaginal Microbiome
4. The Gut Microbiome
4.1. The Gut Microbiome
4.2. The Estrobolome
5. Defining the Gut–Vagina Axis: Key Principles and Evidence
5.1. Microbial Migration
5.2. Regulation of Hormone Levels: The Estrobolome
5.3. Exchange of Metabolites
5.4. Modulation of the Immune Response: The Gut–Vagina Immune Axis
5.5. A Continuous Bidirectional Communication and Interdependent Homeostasis
6. Imbalance of the Gut–Vagina Axis
7. Modulation of the Gut–Vagina Axis
7.1. Prebiotics, Probiotics, and Postbiotics
7.2. Diet
8. Discussion
8.1. Evidence for a Gut–Vagina Axis
8.2. Key Gaps and Research Priorities
9. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| AhR | aryl hydrocarbon receptor |
| AMPs | antimicrobial peptides |
| AV | aerobic vaginitis |
| BSH | bile salt hydrolase |
| BV | bacterial vaginosis |
| CSTs | community state types |
| FXR | farnesoid X receptor |
| GALT | gut-associated lymphoid tissue |
| GLP-1 | Glucagon-like peptide-1 |
| GPCRs | G-protein coupled receptors |
| GUS | β-glucuronidase |
| HDACs | histone deacetylases |
| IBS | irritable bowel syndrome |
| Ig | immunoglobulin |
| MAMPs | microbe-associated molecular patterns |
| NGS | next-generation sequencing |
| PCOS | polycystic ovary syndrome |
| SCFAs | short-chain fatty acids |
| STIs | sexually transmitted infections |
| SULTs | sulfotransferases |
| TGR5 | Takeda G protein-coupled receptor 5 |
| UGT | UDP-glucuronosyltransferase |
| UTIs | urinary tract infections |
| VVC | vulvovaginal candidiasis |
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| Axis Component | Main Mechanism | Best Supporting Evidence to Emphasize | Directionality | Evidence Strength | Clinical Relevance | Main Limitation/Reviewer-Sensitive Point |
|---|---|---|---|---|---|---|
| Microbial migration | Rectal/perineal seeding of vaginal niche; transient deposition may become stable colonization when the vaginal ecosystem is permissive. | Paired rectal-vaginal studies, qPCR/culture overlap, longitudinal multi-site studies, and strain-level analyses showing shared or near-identical taxa across body sites. | Mostly gut/rectum -> vagina. Reverse vagina -> gut remains plausible but much less substantiated. | Moderate for gut -> vagina; low for reverse direction. | AV, BV-associated taxa, recurrent VVC, recurrent UTI/urogenital infections, mixed vaginitis. | Species overlap can reflect shared exposure, sexual transfer, contamination, or local expansion of resident low-abundance taxa; strain-resolved longitudinal data are still limited. |
| Estrobolome/hormone regulation | Gut microbial beta-glucuronidase and sulfatase deconjugate estrogen metabolites, enabling enterohepatic recirculation and modulation of systemic estrogen availability. | Mechanistic enzymology, fecal enzyme/metagenomic studies, human associations between fecal microbiome and estrogen metabolites, and data linking estrogen to glycogen, Lactobacillus dominance, and lactate production. | Gut -> systemic estrogen -> vaginal niche; host hormone state also feeds back on gut microbiome composition. | Moderate. | Menstrual-cycle shifts, menopause, pregnancy/postpartum transitions, Lactobacillus resilience, pH stability, hormone-related gynecologic phenotypes. | Human causality is incomplete; many studies infer function from taxa rather than measuring enzyme activity and steroid profiles directly. |
| Metabolite exchange | Gut-derived SCFAs, bile acid derivatives, tryptophan metabolites/indoles, and MAMPs enter circulation and alter epithelial barrier function, immune tone, and niche permissiveness. | Strong general gut–systemic evidence; selected reproductive-tract data for SCFAs and AhR/indole pathways; local vaginal SCFA accumulation associated with dysbiosis and inflammation. | Mostly gut -> systemic host signaling -> vagina. Local vaginal metabolite production is important but not necessarily gut-derived. | Low-moderate. | Barrier integrity, inflammation, Candida defense, dysbiosis permissiveness, mucosal resilience. | Direct proof that gut-derived metabolites reach and reshape the human vaginal niche at clinically relevant levels is still limited. |
| Immune modulation | Gut microbiome educates T and B cells in GALT/mesenteric lymph nodes; primed lymphocytes and immune mediators can influence cervicovaginal immunity. | Animal and translational work on GALT priming, lymphocyte homing, CCL28/CCR10 recruitment, IgA plasmablast trafficking, and hormonal regulation of genital tract immunity. | Mostly gut -> systemic/mucosal immune programming -> vagina; feedback via infection, inflammation, antibiotics, and hormones is plausible. | Low-moderate. | Mucosal defense, IgA/IgG balance, antimicrobial peptides, STI susceptibility, recurrence of infections. | Much of the mechanistic evidence is extrapolated from general mucosal immunology or animal models; paired human gut–vaginal immune datasets are needed. |
| Interdependent homeostasis | Gut and vaginal ecosystems may form a coupled system in which perturbation of one site alters the other through microbial, endocrine, metabolic, and immune routes. | Taxonomic overlap, temporal concordance, shared perturbation responses, probiotic proof-of-concept, and clinical recurrence patterns. | Conceptually bidirectional, but evidence is asymmetric: gut-to-vagina is stronger. | Low as a full causal model; useful as a working framework. | Integrated prevention/management of recurrent vaginal infections and broader reproductive-health research. | Should be framed as a working model, not as a fully proven causal axis. |
| Clinical Condition/Phenotype | Typical Vaginal Phenotype | Gut/Axis Connection | Mechanistic Interpretation | Therapeutic Implication | Evidence Caveat |
|---|---|---|---|---|---|
| IBS/gut dysbiosis | No single vaginal phenotype; may coexist with pelvic pain, urinary symptoms, dyspareunia, dysmenorrhea, and recurrent dysbiosis. | Gut dysbiosis may expand rectal reservoirs, alter barrier function, change systemic mediators, and interact with reproductive hormone fluctuations. | Gut disorder can influence pelvic organs through microbial reservoirs, systemic inflammation/metabolites, and pelvic organ cross-sensitization. | In recurrent vaginal dysbiosis, consider GI symptoms, antibiotic history, diet, bowel habits, and pelvic comorbidity as part of phenotyping. | Association and plausibility are stronger than direct proof; avoid presenting IBS as a proven cause of vaginal dysbiosis. |
| Aerobic vaginitis (AV) | Reduced lactobacilli, aerobic/facultative bacteria, inflammation, epithelial disruption, neutrophils, yellowish or foul discharge. | Often involves gut-derived or rectal-reservoir taxa such as Escherichia coli, Klebsiella, Proteus, Enterococcus, Streptococcus, and Staphylococcus. | Perineal seeding plus permissive vaginal ecology after low estrogen, antibiotics, menopause, postpartum change, or epithelial injury. | Differentiate AV from BV; consider targeted antimicrobials plus restoration of lactobacilli and mucosal integrity; address recurrence reservoirs. | Gut origin is plausible and often likely, but stable colonization versus repeated transient seeding may be hard to distinguish. |
| Bacterial vaginosis (BV) | Lactobacillus depletion, polymicrobial anaerobic overgrowth, Gardnerella-associated biofilm, elevated pH, fishy odor/discharge. | Rectal carriage and rectal-vaginal overlap of BV-associated taxa are reported; gut may act as a reservoir under permissive conditions. | BV often reflects local ecological disturbance and biofilm persistence, with possible contribution from gut/rectal seeding. | Biofilm-aware management; after standard therapy, consider Lactobacillus restoration or strain-specific probiotic strategies to reduce recurrence. | Directionality is uncertain; BV taxa may bloom locally from low abundance without recent gut migration. |
| Vulvovaginal candidiasis (VVC) | Candida colonization/infection with inflammation, pruritus, discharge; symptoms often driven by host inflammatory response. | Gut can be a Candida reservoir; shared intestinal and vaginal strains have been reported in recurrent/complicated cases. | Intestinal carriage may support repeated perineal transfer, while vaginal immune and epithelial conditions determine symptoms. | For recurrent VVC, consider intestinal reservoir, prior antibiotics, mixed infection, and ecological restoration alongside antifungal therapy. | Controlled trials of integrated gut-and-vaginal strategies are sparse. |
| Mixed vaginitis/co-infections | Concurrent BV, VVC, AV, or other infections; often more severe symptoms and higher treatment failure. | Gut may sustain repeated introduction of bacterial and fungal agents; BV biofilm can facilitate Candida persistence. | Polymicrobial biofilms, antibiotic-driven Lactobacillus depletion, local metabolite shifts, and fungal-bacterial interactions reinforce recurrence. | Treat the identified components rather than assuming a single etiology; avoid broad regimens that worsen dysbiosis when possible. | Clinical heterogeneity is high; definitions and diagnostic criteria vary. |
| Recurrent urogenital infections/UTI-adjacent phenotype | Vaginal dysbiosis may coexist with recurrent UTIs or uropathogen carriage. | Rectal and vaginal reservoirs of uropathogens can seed the urinary tract; vaginal Lactobacillus depletion may increase susceptibility. | Gut-rectal-vaginal-urinary reservoir dynamics can maintain recurrence in susceptible women. | Integrated phenotyping of gut, rectal, vaginal, and urinary reservoirs may improve prevention strategies. | This extends beyond the vagina alone; keep the framing as gut–urogenital when urinary outcomes are central. |
| Intervention Layer | Examples/Targets | Axis Target | Potential Use in the Manuscript | Evidence Strength | Key Caveats |
|---|---|---|---|---|---|
| Oral probiotics | Lactobacillus rhamnosus GR-1 + Lactobacillus reuteri RC-14; other oral Lactobacillus combinations. | Gut reservoir, perineal transfer route, systemic immune/metabolic signaling, and possible vaginal colonization. | Discuss as proof-of-concept that oral modulation can influence urogenital outcomes, especially BV adjunct therapy, VVC, UTIs, and recurrence prevention. | Moderate for specific strains/products; not generalizable to all probiotics. | Effects are strain-, dose-, formulation-, timing-, route-, and host-dependent; avoid generic claims such as “probiotics work”. |
| Intravaginal live biotherapeutics | Lactobacillus crispatus CTV-05/Lactin-V after standard BV therapy. Lactobacillus plantarum P17630 after standard systemic therapy for vaginal recurrent infections. | Direct restoration of vaginal Lactobacillus dominance and ecological resilience. | Use as the clearest example of targeted vaginal microbiome restoration and recurrence reduction. | Moderate for BV recurrence (L. crispatus) and VVC or vaginal infections (L. plantarum) in studied settings. | Colonization success varies; product availability, baseline microbiota, menses, sex, and recent antibiotics matter. |
| Other Lactobacillus candidates | L. crispatus, L. gasseri, L. jensenii, L. plantarum, L. acidophilus, L. delbrueckii and others. | Vaginal eubiosis, lactate production, pathogen exclusion, epithelial adherence. | Mention as candidates, but emphasize that species identity is less important than strain-level function. | Low-moderate depending on strain and indication. | Do not extrapolate from one Lactobacillus strain to another; L. iners should be discussed carefully because it may be less protective. |
| Prebiotics | Lactulose, lactitol, raffinose, oligofructose, inulin, pectin and related substrates. | Selective support of beneficial lactobacilli and possibly gut SCFA-producing taxa. | Position as promising but less clinically proven axis modulation. | Low-moderate; often in vitro or early clinical evidence. | May affect gut and vagina differently; excessive sugar/high glycemic patterns should not be conflated with targeted prebiotics. |
| Postbiotics | Non-viable microbial products, exopolysaccharides, extracellular vesicles, cell-wall components. | Epithelial adherence, anti-adhesion effects against pathogens, barrier support without live-organism risks. | Useful as future direction for patients where live bacteria are undesirable. | Low/early. | Definitions and products are heterogeneous; clinical vaginal data remain limited. |
| Synbiotics | Combined probiotic + prebiotic formulations. | Improved survival, engraftment, and functional activity of beneficial strains. | Describe as rational but still product-specific strategy. | Low-moderate. | Synergy must be demonstrated; do not assume every combination is beneficial. |
| Dietary modulation | Fiber, fruits/vegetables, vitamins A/C/E/D, micronutrients, lower high-glycemic dietary load, moderation of alcohol/animal-protein excess. | Gut microbiome composition, SCFA production, systemic inflammation, estrogen metabolism, vaginal ecological resilience. | Place in a pragmatic prevention section rather than as direct treatment of acute infection. | Low-moderate, mostly observational for vaginal outcomes. | Dietary data are confounded by lifestyle, socioeconomic factors, BMI, medication, and sexual/reproductive variables. |
| Targeted antimicrobials plus restoration | Condition-specific antibiotics/antifungals followed by Lactobacillus restoration or recurrence-prevention strategy. | Acute pathogen control plus ecological recovery of the vaginal niche and possibly reservoir reduction. | Frame as an integrated strategy for AV, BV, VVC, and mixed infections. | Standard therapies are established; axis-specific integrated evidence is low-moderate. | Broad-spectrum therapy can worsen Lactobacillus depletion or promote Candida; diagnosis must guide treatment. |
| Research Priority | Why It Matters | Recommended Study Design | Minimum Measurements | Expected Manuscript Message |
|---|---|---|---|---|
| Quantify gut -> vagina migration | This is the strongest pillar but still needs frequency, timing, and clinical relevance. | Longitudinal paired rectal/vaginal sampling with strain-resolved metagenomics before, during, and after perturbations. | Species and strain tracking, culture validation, hygiene/sex/antibiotic metadata, pH, CST, symptoms. | Gut-to-vagina seeding is plausible and increasingly supported, but clinically meaningful colonization requires proof of persistence and phenotype change. |
| Test vagina -> gut directionality | The word “bidirectional” is reviewer-sensitive unless asymmetry is explicit. | Dense multi-site sampling with source-tracking and temporal modeling; include negative controls to reduce contamination concerns. | Vaginal/rectal/gut strains, sampling order, contamination controls, behavioral exposures. | Reverse transfer should be presented as plausible but less established. |
| Establish estrobolome causality | Hormone regulation is a central and clinically attractive mechanism. | Prospective cohorts or interventions combining fecal enzyme assays, metagenomics, and steroid metabolomics. | Fecal beta-GUS/sulfatase activity, urinary/serum estrogen metabolites, vaginal glycogen, Lactobacillus abundance, pH. | Gut microbial estrogen metabolism may indirectly regulate vaginal ecology, but effect size in humans must be quantified. |
| Resolve metabolite pathways | Metabolites are biologically plausible but direct vaginal-specific evidence is limited. | Paired fecal/serum/vaginal metabolomics with epithelial and immune readouts. | SCFAs, bile acids, indoles, MAMP markers, tight-junction markers, cytokines, CST, clinical phenotype. | Metabolite exchange should be framed as systemic host-mediated signaling, not bulk luminal transfer. |
| Map gut–vaginal immune trafficking | Immune homing is conceptually strong but undermeasured in human gut–vagina studies. | Translational studies integrating mucosal immunology, chemokines, antibodies, and microbiome profiles. | IgG/IgA, IgA coating, CCL28/CCR10, T/B cell phenotypes, antimicrobial peptides, cytokines. | Gut immune education may influence vaginal immunity; paired human data are needed. |
| Define intervention responders | Probiotic and microbiome interventions are heterogeneous and product-specific. | Stratified randomized trials by baseline CST, menopause/pregnancy status, infection type, and recurrence phenotype. | Strain colonization, recurrence rate, symptom resolution, safety, baseline microbiota, antimicrobial exposure. | The field should move from generic probiotics to strain-specific, phenotype-specific live biotherapeutic strategies. |
| Create an integrated clinical phenotype | Recurrent infections often involve gut, vaginal, urinary, hormonal, and behavioral factors. | Prospective clinical registry with microbiome, metabolome, immune, hormonal, and treatment-response data. | AV/BV/VVC/mixed diagnosis, CST, gut symptoms, urinary symptoms, hormones, diet, antibiotics, recurrence. | The axis is most useful clinically when it organizes recurrent and mixed disease rather than replacing standard diagnoses. |
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© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
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Agoni, L.; Roselletti, E.; Marasco, G.; Martinelli, C.; Pericolini, E.; De Seta, F. The Gut–Vagina Axis. Microorganisms 2026, 14, 1327. https://doi.org/10.3390/microorganisms14061327
Agoni L, Roselletti E, Marasco G, Martinelli C, Pericolini E, De Seta F. The Gut–Vagina Axis. Microorganisms. 2026; 14(6):1327. https://doi.org/10.3390/microorganisms14061327
Chicago/Turabian StyleAgoni, Lorenzo, Elena Roselletti, Giovanni Marasco, Canio Martinelli, Eva Pericolini, and Francesco De Seta. 2026. "The Gut–Vagina Axis" Microorganisms 14, no. 6: 1327. https://doi.org/10.3390/microorganisms14061327
APA StyleAgoni, L., Roselletti, E., Marasco, G., Martinelli, C., Pericolini, E., & De Seta, F. (2026). The Gut–Vagina Axis. Microorganisms, 14(6), 1327. https://doi.org/10.3390/microorganisms14061327

