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MuNet: A Mutualistic Network for Joint 3D Human Mesh Recovery and 3D Clothed Human Reconstruction from Single Images
A deep-learning framework reveals whole-body perturbations at cell level
Nature, Published online: 20 May 2026; doi:10.1038/s41586-026-10535-2
An analysis of diet-induced obesity using MouseMapper—a suite of foundation-model-based deep-learning algorithms—identifies structural alterations of the infraorbital branch of the trigeminal ganglia.EBV strain interacts with host HLA to drive nasopharyngeal carcinoma risk
Nature, Published online: 15 April 2026; doi:10.1038/s41586-026-10416-8
A genome-to-genome association study identifies host and viral risk factors that interact to drive nasopharyngeal carcinoma endemicity in southern China.Asymmetric selection of a rice immune module and rebuild of disease resistance
Nature, Published online: 08 April 2026; doi:10.1038/s41586-026-10361-6
Stacking XA48-mediated effector-triggered immunity with XA21-mediated pattern-triggered immunity in Oryza sativa japonica reconstitutes the broad-spectrum resistance from wild rice.SenseMath: Do LLMs Have Number Sense? Evaluating Shortcut Use, Judgment, and Generation
VOID: Video Object and Interaction Deletion
PromptForge-350k: A Large-Scale Dataset and Contrastive Framework for Prompt-Based AI Image Forgery Localization
Tumorigenesis and Tumor Microenvironment in Lung Cancer
Curr Issues Mol Biol. 2026 Feb 26;48(3):247. doi: 10.3390/cimb48030247.
ABSTRACT
Lung cancer remains a leading cause of cancer mortality worldwide and continues to impose substantial clinical and economic burdens. Beyond tumor-intrinsic oncogenic drivers, disease progression and therapy response are shaped by the tumor microenvironment (TME), including immune cells, cancer-associated fibroblasts (CAFs), endothelial cells, extracellular matrix, inflammatory mediators, etc. In lung cancer, chronic injury from tobacco smoke, airway disease, and treatment itself remodels local tissue programs that can either support antitumor immunity or promote immune exclusion, fibrosis, and metastatic seeding. Here, we analyze recent evidence linking lung tumorigenesis to TME ecology across histologies, with emphasis on CAF heterogeneity, spatial organization of immune niches, and the distinct microenvironments that govern organ-specific metastasis (including brain metastasis). We also evaluate emerging therapeutic strategies that aim to target or reprogram the TME, including perioperative immune checkpoint blockade, combined immunotherapy-radiotherapy approaches, and pathways such as IL-6 and TGF-β that coordinate immune suppression and stromal remodeling. Finally, we outline key gaps and potential future directions, such as longitudinal and spatial multi-omics, better biomarkers of stromal state, and trial designs that account for dynamic microenvironmental adaptation.
PMID:41899399 | PMC:PMC13025777 | DOI:10.3390/cimb48030247