Biohacking the human gut microbiome for precision health and therapeutic innovation
Биохакинг микробиома кишечника человека для прецизионного здравоохранения и терапевтических инноваций
2026-03-24
SCID: 54.1/2ntt6q2u
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gut microbiomemicrobial therapeuticsmicrobiome-gut-brain axisprecision healthsynthetic biology
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Abstract (AI)
Biohacking, the self-directed application of biotechnology, digital tools, and lifestyle interventions, has rapidly converged with gut microbiome science to create adaptive, individualized, and minimally invasive precision-health paradigms. This narrative review integrates current evidence on diet-based modulation, microbial therapeutics (probiotics, prebiotics, postbiotics, and fecal microbiota transplantation), and synthetic-biology approaches (engineered strains and phage or synthetic consortia) within a multi-omics and continuous-phenotyping framework. Mechanistically, short-chain fatty acids (SCFAs), bile-acid derivatives, and tryptophan catabolites operate as endocrine-like mediators linking gut microbial ecology with host immunity, metabolism, and neuroendocrine signaling. Pathways mediated by microbial metabolites underpin translational applications that span metabolic optimization, through improved insulin sensitivity, reduced adiposity, and attenuation of inflammation, and neurocognitive enhancement via the microbiome-gut-brain axis. Evidence from oncology further indicates that microbial metabolites and engineered taxa remodel stromal and immune niches, shaping therapeutic response and disease progression. Concurrently, emerging digital infrastructures, wearables, biosensors, metabolic avatars, and AI-driven "health twins," enable real-time, closed-loop modulation of host-microbe dynamics. Persistent challenges include methodological heterogeneity, safety concerns regarding live biotherapeutics and unsupervised fecal microbiota transplantation (FMT), fragmented regulation, and vulnerabilities in cyberbiosecurity and data equity. We propose a translational roadmap emphasizing standardized metadata (STORMS), validated reference frameworks, longitudinal multi-omics for causal inference, strain-level safety genomics, and governance integrating ethical and cybersecurity oversight. Under these conditions, microbiome-focused biohacking may evolve from anecdotal experimentation into a more reproducible and scientifically grounded component of preventive and personalized medicine. This manuscript is presented as a narrative and conceptual review, integrating validated microbiome research with emerging biohacking frameworks while explicitly distinguishing evidence-based findings from exploratory or speculative concepts.
Key Findings
1
A translational roadmap prioritizes standardized metadata, validated reference frameworks, longitudinal multi-omics, strain-level safety genomics, and integrated ethical and cybersecurity governance.
2
Biohacking is converging with gut microbiome science to enable individualized, adaptive, and minimally invasive precision-health interventions.
3
Dietary modulation, probiotics, prebiotics, postbiotics, fecal microbiota transplantation, and engineered microbial systems form the principal therapeutic strategies reviewed.
4
Microbial metabolites including short-chain fatty acids, bile-acid derivatives, and tryptophan catabolites connect gut ecology with host immunity, metabolism, and neuroendocrine signaling.
5
Microbiome interventions may improve insulin sensitivity, reduce adiposity and inflammation, enhance neurocognitive function, and influence oncology treatment responses through immune and stromal remodeling.
6
Translation is limited by methodological heterogeneity, live-biotherapeutic and unsupervised FMT safety risks, fragmented regulation, cyberbiosecurity vulnerabilities, and data inequity.
7
Wearables, biosensors, multi-omics, metabolic avatars, and AI-driven health twins could support real-time closed-loop regulation of host–microbe dynamics.
Research Object
The human gut microbiome and its host–microbe system
Research Subject
Biohacking-based modulation of gut microbial ecology and host–microbe signaling for precision-health and therapeutic outcomes
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2026-03-24
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