Submitted:
19 November 2025
Posted:
25 November 2025
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Abstract
The transition from energy sufficiency to deficiency triggers complex metabolic and immune adaptations that have traditionally been viewed through a pathological perspective. This review introduces the Keto-Inflammatory Network (KIN), a novel framework positioning ketosis as an evolutionarily conserved adaptive response rather than metabolic dysfunction. The KIN integrates β-hydroxybutyrate (BHB) signaling with immune modulation, epigenetic regulation, circadian rhythms, and microbiota interactions. Through mechanisms including NLRP3 inflammasome inhibition, HDAC-mediated epigenetic modifications, and HCAR2 receptor activation, ketone bodies orchestrate anti-inflammatory responses while maintaining metabolic flexibility. The framework encompasses calcium-ketone integration through the Calci-Keto-Inflammatory Code (CKOC), temporal regulation via the Ketoinflammatory Clock, and trans-kingdom signaling through microbiota interactions. In dairy cattle, this perspective reframes periparturient ketosis as potentially adaptive, supporting lactogenesis and immune tolerance during reproductive transition. The CKOC paradigm suggests therapeutic applications leveraging ketone signaling for inflammatory diseases, autoimmune conditions, and metabolic disorders while challenging traditional ketosis management strategies. This systems-level understanding opens new avenues for precision interventions that work with, rather than against, ancient adaptive mechanisms refined through evolution.

Keywords:
1. Introduction
2. The Reductionist Paradigm - Ketosis as Pathology
3. The Keto-Inflammatory Network – A Systems Level Framework
3.1. Network Architecture: Molecular Integration and Distributed Processing
3.2. Predictive Metabolomics: Evidence for Coordinated Programming
3.3. Evolutionary Conservation: Fundamental Biological Importance
3.4. Implications of the Network Framework
4. Triggers of the Keto-Inflammatory Network
5. Receptors and Molecular Mediators of the Keto-Inflammatory Network
5.1. G-Protein Coupled Receptor Signaling
5.2. Epigenetic Regulation Through Histone Deacetylase Inhibition
5.3. NAD+-Dependent Sirtuin Activation
5.4. Inflammasome Modulation and Innate Immune Signaling
6. Central Control Nodes: Hypothalamic Integration and Circadian Coordination
6.1. Hypothalamic Ketone Sensing and Neuroendocrine Integration
6.2. Circadian Clock Integration and Temporal Coordination
7. Cellular Effectors of the Keto-Inflammatory Network
7.1. Myeloid Cell Populations and Innate Immunity
7.1. Lymphocyte Populations and Adaptive Immunity
8. Evolutionary Origins and Conservation of the Keto-Inflammatory Network
8.1. Comparative Physiology Across Taxa
8.2. Domestication and Artificial Selection Pressures
9. The Calcio-Keto-Inflammatory Network: Integrating Calcium and Ketone Signaling
9.1. Advanced Molecular Mechanisms and Clinical Integration
9.2. Clinical Applications and Therapeutic Implications
9.3. Clinical Applications and Therapeutic Implications
9.4. The "Pedal and Brake" System
9.5. Cellular Calcium Dynamics and Ketone Interactions
10. The Ketoinflammatory Clock: Circadian Synchronization of Immunometabolic Rhythms
10.1. Molecular Circadian Control of Ketogenesis
10.2. Circadian Regulation of Immune Function
11. The Ketosis-Microbiota-Immune Triad: Trans-Kingdom Signaling
11.1. Evolutionary Origins of Host-Microbe Metabolic Integration
11.2. Bidirectional Metabolic Communication
12. Ketosis and Immuno-Epigenetic Memory
12.1. Molecular Mechanisms of Ketone-Induced Epigenetic Memory
12.2. Trained Immunity and Metabolic Reprogramming
13. The Ketosis-Liver-Immune Triad: Hepatic Surveillance and Metabolic Integration
13.1. Hepatic Architecture and Metabolic-Immune Integration
13.2. Pathological Disruption and Therapeutic Restoration
14. The Mitochondrial Interface of Metabolic-Immune Integration
14.1. Mitochondrial Ketone Metabolism and Bioenergetics
14.2. Immune Cell Metabolic Reprogramming
15. The Ketosis-Placenta-Offspring Triad: Developmental Programming and Transgenerational Effects
15.1. Placental Ketone Transport and Metabolism
15.2. Fetal Ketone Utilization and Neurodevelopment
15.3. Epigenetic Programming and Immune Development
16. Reframing Ketosis: From Pathology to Adaptive Programming
16.1. Historical Context and Conceptual Evolution
16.2. Physiological vs. Pathological Ketosis: Critical Distinctions
16.3. Therapeutic Implications of the Adaptive Paradigm
17. The Calci-Keto-Inflammatory Code: A Systems Integration Framework
17.1. Calcium as a Master Regulatory Node
17.2. Clinical and Research Implications
17.3. Broader Implications and Future Directions
17.4. Clinical Translation: From Code Comprehension to Therapeutic Application
17.5. Evolutionary Perspective: The Code as Ancient Adaptive Language
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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