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An artificial intelligence-powered learning health system to improve sepsis detection and quality of care: a before-and-after study
npj Digital Medicine, Published online: 20 January 2026; doi:10.1038/s41746-025-02180-2
An artificial intelligence-powered learning health system to improve sepsis detection and quality of care: a before-and-after studyLLM-driven collaborative framework for knowledge-enhanced cancer pain assessment and management
npj Digital Medicine, Published online: 19 January 2026; doi:10.1038/s41746-026-02362-6
LLM-driven collaborative framework for knowledge-enhanced cancer pain assessment and managementJapanese AI Agent System on Human Papillomavirus Vaccination: System Design
AnyECG: Evolved ECG Foundation Model for Holistic Health Profiling
Wearable device derived electrocardiographic age and its association with atrial fibrillation
npj Digital Medicine, Published online: 17 January 2026; doi:10.1038/s41746-026-02344-8
Wearable device derived electrocardiographic age and its association with atrial fibrillationGlucagon-like peptide-1 medicines and cancer
Nature Cancer, Published online: 16 January 2026; doi:10.1038/s43018-025-01110-1
Yabut and Drucker discuss clinical and preclinical evidence about the potential roles of GLP-1 medicines on cancer incidence, development and therapy and speculate about their mechanism on cancer cells and the tumor microenvironment.Contaminating plasmid sequences and disrupted vector genomes in the liver following adeno-associated virus gene therapy
Nature Medicine, Published online: 16 January 2026; doi:10.1038/s41591-025-04073-z
Analyses of liver biopsies from a child with spinal muscular atrophy treated with adeno-associated virus gene therapy who developed hepatitis reveal contaminating manufacturing plasmids and disrupted vector genomes, possibly resulting from recombination events.Circulating metabolites, genetics and lifestyle factors in relation to future risk of type 2 diabetes
Nat Med. 2026 Jan 14. doi: 10.1038/s41591-025-04105-8. Online ahead of print.
ABSTRACT
The human metabolome reflects complex metabolic states affected by genetic and environmental factors. However, metabolites associated with type 2 diabetes (T2D) risk and their determinants remain insufficiently characterized. Here we integrated blood metabolomic, genomic and lifestyle data from up to 23,634 initially T2D-free participants from ten cohorts. Of 469 metabolites examined, 235 were associated with incident T2D during up to 26 years of follow-up, including 67 associations not previously reported across bile acid, lipid, carnitine, urea cycle and arginine/proline, glycine and histidine pathways. Further genetic analyses linked these metabolites to signaling pathways and clinical traits central to T2D pathophysiology, including insulin resistance, glucose/insulin response, ectopic fat deposition, energy/lipid regulation and liver function. Lifestyle factors-particularly physical activity, obesity and diet-explained greater variations in T2D-associated versus non-associated metabolites, with specific metabolites revealed as potential mediators. Finally, a 44-metabolite signature improved T2D risk prediction beyond conventional factors. These findings provide a foundation for understanding T2D mechanisms and may inform precision prevention targeting specific metabolic pathways.
PMID:41535386 | DOI:10.1038/s41591-025-04105-8
A nowhere-to-hide mechanism ensures complete piRNA-directed DNA methylation
Nature, Published online: 14 January 2026; doi:10.1038/s41586-025-09940-w
In mice, a SPOCD1–TPR-dependent ‘nowhere-to-hide’ mechanism is required for complete non-stochastic piRNA-directed LINE1 DNA methylation by preventing transposons from escaping surveillance within heterochromatin.Enhancing telesurgical safety with predictive digital twin synchronization: a framework for latency compensation in robotic surgery
npj Digital Medicine, Published online: 13 January 2026; doi:10.1038/s41746-025-02283-w
Enhancing telesurgical safety with predictive digital twin synchronization: a framework for latency compensation in robotic surgery