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From Parallel Programming to Bidirectional Crosstalk: The Brain-Kidney Axis in Cardiovascular-Kidney-Metabolic
Chien-Ning Hsu1,2,3, You-Lin Tain4,5,6
1Department of Pharmacy, Kaohsiung Municipal Ta-Tung Hospital, Kaohsiung 801, Taiwan.
Abstract:
Cardiovascular-kidney-metabolic (CKM) syndrome is a systemic, interdependent disorder arising from the convergence of metabolic dysfunction, chronic kidney disease, and cardiovascular pathology. Anchored in the Developmental Origins of Health and Disease (DOHaD) framework, this review advances a "parallel hit" model, primarily based on evidence from experimental animal studies, particularly rodent models, posited that early-life environmental insults concurrently program structural and functional vulnerabilities in both renal and central nervous system hubs. These early perturbations prime susceptibility long before clinical manifestations emerge. CKM progression is conceptualized as a two-stage trajectory, with an initial phase of parallel programming affecting kidney and brain development, followed by a transition to maladaptive bidirectional crosstalk. In the later phase, heightened efferent sympathetic outflow and aberrant afferent renal signaling-potentiated by uremic toxin accumulation, neuroinflammation, and blood-brain barrier disruption-drive a self-perpetuating cycle that accelerates cardiorenal and metabolic injury. Key integrative mechanisms, including oxidative stress, chronic low-grade inflammation, mitochondrial dysfunction, and gut microbiota dysbiosis, serve as convergent pathways linking early-life exposures to adult CKM phenotypes. These pathways not only sustain disease progression but also represent actionable therapeutic targets. Importantly, this framework underscores the translational potential of early-life "reprogramming" strategies. Interventions such as precision nutrition, antioxidant supplementation, microbiota-directed therapies (including prebiotics, probiotics, and postbiotics), and mechanism-based pharmacotherapies may mitigate or reverse maladaptive programming. However, much of the current mechanistic evidence remains preclinical, and further human studies are needed to validate these pathways and therapeutic approaches. Collectively, this dual-hub paradigm reframes CKM syndrome as a life-course continuum rather than a late-stage comorbidity cluster, emphasizing the necessity of early, mechanism-driven interventions to stabilize the brain-kidney axis and improve long-term cardiovascular-kidney-metabolic outcomes.
Insights
Cardiovascular-kidney-metabolic (CKM) syndrome arises from early-life insults that program kidney and brain vulnerabilities. Interventions targeting these early programming events may prevent CKM progression.
Area of Science:
- Integrative physiology and developmental origins of health and disease (DOHaD).
Background:
- Cardiovascular-kidney-metabolic (CKM) syndrome involves interconnected cardiovascular, kidney, and metabolic pathologies.
- The Developmental Origins of Health and Disease (DOHaD) framework suggests early-life insults impact adult health.
- Existing models do not fully explain the complex interplay in CKM syndrome.
Purpose of the Study:
- To propose a "parallel hit" model for CKM syndrome based on the DOHaD framework.
- To elucidate the life-course trajectory and key mechanisms driving CKM syndrome.
- To identify potential early-life intervention strategies.
Main Methods:
- Review of experimental animal studies, particularly rodent models.
- Conceptualization of CKM progression as a two-stage trajectory: parallel programming and maladaptive crosstalk.
- Identification of integrative mechanisms including oxidative stress, inflammation, mitochondrial dysfunction, and gut microbiota dysbiosis.
Main Results:
- Early-life environmental insults concurrently program renal and central nervous system vulnerabilities.
- CKM progression involves parallel development programming followed by bidirectional brain-kidney crosstalk.
- Heightened sympathetic outflow and aberrant renal signaling, driven by uremic toxins and neuroinflammation, accelerate cardiorenal and metabolic injury.
- Oxidative stress, inflammation, mitochondrial dysfunction, and gut dysbiosis are key convergent pathways.
Conclusions:
- CKM syndrome is a life-course continuum, not merely a late-stage comorbidity cluster.
- Early-life "reprogramming" strategies, including precision nutrition and microbiota-directed therapies, show translational potential.
- Further human studies are needed to validate preclinical findings and therapeutic approaches.
- Stabilizing the brain-kidney axis through early interventions is crucial for long-term outcomes.
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