The gut-liver-kidney-brain axis in Wilson disease: copper speciation-flux and barrier-mediated organ crosstalk.
N, Q., S, Z., Y, S., Y, Y., H, W., H, H., G, X., W, H., H, J., & Y, Y. (2026). The gut-liver-kidney-brain axis in Wilson disease: copper speciation-flux and barrier-mediated organ crosstalk.. Frontiers in immunology. https://doi.org/10.3389/fimmu.2026.1840716
N Q, S Z, Y S, Y Y, H W, H H, et al. The gut-liver-kidney-brain axis in Wilson disease: copper speciation-flux and barrier-mediated organ crosstalk.. Frontiers in immunology. 2026; doi: 10.3389/fimmu.2026.1840716
N Q, S Z, Y S, et al. The gut-liver-kidney-brain axis in Wilson disease: copper speciation-flux and barrier-mediated organ crosstalk.[J]. Frontiers in immunology. 2026. DOI: 10.3389/fimmu.2026.1840716.
@article{n2026,
author = {Qian N and Zhu S and Song Y and Yang Y and Wang H and Han H and Xu G and Hao W and Jiang H and Yang Y},
title = {The gut-liver-kidney-brain axis in Wilson disease: copper speciation-flux and barrier-mediated organ crosstalk.},
journal = {Frontiers in immunology},
year = {2026},
doi = {10.3389/fimmu.2026.1840716},
note = {PMID: 42389522},
}
TY - JOUR AU - Qian N AU - Zhu S AU - Song Y AU - Yang Y AU - Wang H AU - Han H AU - Xu G AU - Hao W AU - Jiang H AU - Yang Y TI - The gut-liver-kidney-brain axis in Wilson disease: copper speciation-flux and barrier-mediated organ crosstalk. T2 - Frontiers in immunology PY - 2026 DO - 10.3389/fimmu.2026.1840716 AN - PMID:42389522 ER -
Wilson disease (WD) has long been framed as a hepatocentric disorder of copper accumulation. That view is now giving way to a broader model centered on the gut-liver-kidney-brain axis. In WD, copper is not simply stored in tissues as an inert burden. It circulates in dynamic, bioactive pools-particularly relative exchangeable copper (REC)-that disrupt barrier structures, including the intestinal epithelium and blood-brain barrier, and spread toxicity through measurable biochemical mediators. Major pathogenic processes include copper-induced suppression of autophagy, disruption of FXR-regulated bile acid signaling, and direct injury to the intestinal barrier. Gut dysbiosis, supported by fecal microbiota transplantation (FMT) studies in ATP7B-deficient mice, further amplifies hepatic inflammation and favors copper retention. Renal tubular dysfunction and neurotoxicity appear to reflect copper species-dependent passage across biological barriers together with secondary metabolic disturbances, including the recently described pathway of cuproptosis. In the clinic, this shift has been accompanied by greater use of copper-species biomarkers such as ceruloplasmin oxidase activity and REC, along with advanced imaging approaches such as 64Cu-PET/CT. Treatment is also moving beyond conventional chelation alone, with increasing attention to biliary copper excretion, epithelial barrier repair, and microbiome-directed interventions. Viewed in this way, the axis model helps explain the marked phenotypic heterogeneity of WD and offers a mechanistic basis for more precise interventions aimed at breaking pathogenic feedback loops across organs.