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Perspectives on the Nutritional Paradox in Uremia: A “Sensitize-Then-Feed” Framework for Protein-Energy Wasting

AI Summary
  • PEW in advanced CKD reflects systemic anabolic resistance, making conventional protein and caloric supplementation frequently ineffective.
  • Uremic toxins and cytokines breach the blood-brain barrier, causing hypothalamic neuroinflammation and melanocortin mediated metabolic set point resetting.
  • Peripheral desensitisation of ghrelin-GOAT and insulin/IGF-1 signalling impairs mTORC1, driving proteostasis loss and mitochondrial failure; propose sensitise-then-feed with targeted agents.
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Adv Nutr. 2026 Sep 9:100728. doi: 10.1016/j.advnut.2026.100728. Online ahead of print.

ABSTRACT

Protein-energy wasting (PEW) drives significant morbidity and mortality in advanced chronic kidney disease (CKD). Despite the implementation of comprehensive clinical guidelines and medical nutrition therapy (MNT), a subset of uremic patients may exhibit a defining “nutritional paradox.” Unlike simple starvation, which responds to caloric and protein supplementation, CKD-associated cachexia is characterized by a potential systemic anabolic resistance. This renders standard nutritional interventions-including oral supplements and intradialytic parenteral nutrition (IDPN)-often insufficient. To elucidate the molecular hierarchy driving this barrier to nutritional therapy, we propose a model where during central dysregulation, gut-microbiome-derived uremic toxins, notably tryptophan metabolites like indoxyl sulfate, have been shown in experimental models to impair the blood-brain barrier integrity. This breach triggers significant hypothalamic neuroinflammation. Concurrently, pro-inflammatory cytokines (e.g., IL-1β, TNF-α) and stress-responsive circulating factors like growth differentiation factor 15 (GDF15) aberrantly reset the central metabolic set-point via the melanocortin system, potentially contributing to anorexia and altered energy expenditure. Peripherally, the failure of critical nutrient-sensing axes-specifically the ghrelin-GOAT and insulin/IGF-1 signaling pathways-may impair the anabolic PI3K/Akt/mTORC1 cascade. This peripheral desensitization not only blunts the synthetic response to dietary amino acids but also precipitates a disruption of muscle proteostasis through ubiquitin-proteasome system (UPS) hyperactivation and FOXO-mediated transcription. Concurrently, skeletal muscle undergoes significant mitochondrial bioenergetic dysfunction, further impairing nutrient utilization. By reframing PEW not simply as a state of nutrient deficiency, but as a broader dysregulation of hormonal signaling, we advocate a translational “sensitize-then-feed” therapeutic paradigm. We critically evaluate emerging targeted agents-including GDF15 antagonists, myostatin inhibitors, and ghrelin agonists. We propose that these agents could be investigated as metabolic modulators to potentially enhance the efficacy of tailored nutritional support in the uremic microenvironment.

PMID:42716437 | DOI:10.1016/j.advnut.2026.100728

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