Virobiome-mediated regulation of microbiota–gut–brain axis signaling and neuroimmune homeostasis

The human gut-brain axis (GBA) is increasingly recognized as a complex bidirectional communication system integrating microbial, neural, endocrine, and immune networks that shape neurological health. While bacterial contributions to this dialogue have been extensively characterized, the viral component of the gut ecosystem, the virome, has emerged as an important component associated with host physiological regulation. This review synthesizes evidence suggesting that bacteriophages and eukaryotic viruses may contribute to microbial and immune homeostasis and may influence signaling along the microbiota–gut–brain axis. In experimental studies, Bacteriophages have been shown to influence microbial community structure through lytic and lysogenic cycles, horizontal gene transfer, and metabolic modulation, indirectly regulating production of neuroactive metabolites such as short-chain fatty acids and tryptophan derivatives which in turn have been linked to blood brain barrier integrity and modulate microglial activation. In observational human studies and experimental models, eukaryotic viruses including Epstein Barr virus and cytomegalovirus have been associated with systemic inflammation, molecular mimicry, and cytokine dysregulation, amplifying neuroimmune cascades implicated in Alzheimer’s disease (AD), multiple sclerosis (MS), autism spectrum disorder (ASD), and major depressive disorder (MDD). The convergence of viral-bacterial interactions highlights a transkingdom signaling network shaping neuroinflammatory tone and influencing disease susceptibility. Emerging experimental strategies, including precision phage therapy, engineered probiotics incorporating CRISPR-based antiviral systems, and fecal virome transplantation (FVT), are being explored as potential approaches to modulate virome–microbiome interactions. Integration of multiomics platforms with artificial intelligence–driven modeling will be critical for clarifying the temporal and mechanistic relationships between virome dynamics and neurological function. Collectively, these insights highlight the gut virobiome as a potentially important contributor to neuroimmune equilibrium and illuminate avenues for microbiome-informed diagnostics and interventions in neurodegenerative and neuropsychiatric disorders. This review therefore highlights the often underappreciated role of the gut virobiome and proposes an integrative conceptual model linking virome dynamics with microbiota–gut–brain axis signaling.

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Journal
Cell Communication and Signaling
Published
2026-09-10
DOI
https://doi.org/10.1186/s12964-026-03067-9
Primary Topic
Bacteriophages and microbial interactions
Type
article
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article

Virobiome-mediated regulation of microbiota–gut–brain axis signaling and neuroimmune homeostasis

Aysa Hasanzade Bashkandi, Hamed Haddad Kashani, Sara Aghaei, R. J. Reiter et al.
Cell Communication and Signaling
Bacteriophages and microbial interactions
article

Virobiome-mediated regulation of microbiota–gut–brain axis signaling and neuroimmune homeostasis

Aysa Hasanzade Bashkandi, Hamed Haddad Kashani, Sara Aghaei, R. J. Reiter, Abolfazl Saffari Natanzi, Sajjad Shahraki, Mohammadreza Shafiei, Ali Haghjou, Yanchao Yang, Mahin Jafaridarabjerdi, Alireza Afkhamian
article en

Abstract

The human gut-brain axis (GBA) is increasingly recognized as a complex bidirectional communication system integrating microbial, neural, endocrine, and immune networks that shape neurological health. While bacterial contributions to this dialogue have been extensively characterized, the viral component of the gut ecosystem, the virome, has emerged as an important component associated with host physiological regulation. This review synthesizes evidence suggesting that bacteriophages and eukaryotic viruses may contribute to microbial and immune homeostasis and may influence signaling along the microbiota–gut–brain axis. In experimental studies, Bacteriophages have been shown to influence microbial community structure through lytic and lysogenic cycles, horizontal gene transfer, and metabolic modulation, indirectly regulating production of neuroactive metabolites such as short-chain fatty acids and tryptophan derivatives which in turn have been linked to blood brain barrier integrity and modulate microglial activation. In observational human studies and experimental models, eukaryotic viruses including Epstein Barr virus and cytomegalovirus have been associated with systemic inflammation, molecular mimicry, and cytokine dysregulation, amplifying neuroimmune cascades implicated in Alzheimer’s disease (AD), multiple sclerosis (MS), autism spectrum disorder (ASD), and major depressive disorder (MDD). The convergence of viral-bacterial interactions highlights a transkingdom signaling network shaping neuroinflammatory tone and influencing disease susceptibility. Emerging experimental strategies, including precision phage therapy, engineered probiotics incorporating CRISPR-based antiviral systems, and fecal virome transplantation (FVT), are being explored as potential approaches to modulate virome–microbiome interactions. Integration of multiomics platforms with artificial intelligence–driven modeling will be critical for clarifying the temporal and mechanistic relationships between virome dynamics and neurological function. Collectively, these insights highlight the gut virobiome as a potentially important contributor to neuroimmune equilibrium and illuminate avenues for microbiome-informed diagnostics and interventions in neurodegenerative and neuropsychiatric disorders. This review therefore highlights the often underappreciated role of the gut virobiome and proposes an integrative conceptual model linking virome dynamics with microbiota–gut–brain axis signaling.

Cell Communication and SignalingVol. 24(1)
The University of Texas at San Antonio Health Science Center (US), Kashan University of Medical Sciences (IR), Jahrom University (IR), Urmia University (IR), Jahrom University of Medical Sciences (IR), Alborz University of Medical Sciences, Urmia University of Medical Sciences (IR), Tehran University of Medical Sciences (IR), China Medical University (CN)
Openalex Percentile: Top 11%
Bacteriophages and microbial interactions
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