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Full text 2026

GALA: a unified landmark-free framework for coarse-to-fine spatial alignment across resolutions and modalities in spatial transcriptomics

Ding T, Zeng P.

Spatial transcriptomics alignment is challenged by technical variations, including geometric distortions from tissue preparation and platform-driven differences in resolution and modality. These issues create diverse alignment scenarios, from matched and mismatched resolutions to cross-modality integration, …

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Bioinformatics Transcriptomics
Full text 2026

Decoding wound healing: cellular insights and technological advances

Berthiaume Fox KA, Galvin ER, Kness-Knezinskis E, et al.

Wound healing is a complex process involving spatiotemporal patterning of cellular activity across four overlapping phases: hemostasis, inflammation, proliferation, and remodeling, which restore anatomic and functional tissue integrity. Recent advances in cell-based technologies have increased …

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Bioinformatics
Full text 2026

Empowering multifaceted analysis of spatial transcriptomics data with RGAST

Gong Y, Yuan X, Yu Z.

Spatial transcriptomics (ST) enables mapping gene expression in native tissue context to resolve architecture and cellular interactions, but current analytical workflows rely on separate algorithms for distinct tasks. We present RGAST (Relational Graph Attention network …

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Bioinformatics Transcriptomics
Full text 2026

A comprehensive survey of computer vision methods for spatial transcriptomics

Zhu J, Deng R, Guo J, et al.

Spatial transcriptomics (ST) enables the simultaneous measurement of gene expression and spatial localization within tissue sections, providing unprecedented opportunities to dissect tissue architecture and functional organization. As a relatively new omics technology, bioinformatics has driven …

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Bioinformatics Transcriptomics
Full text 2026

Advances in deciphering intratumoral versus peritumoral heterogeneity of infiltrating lymphocytes in pancreatic cancer: a spatial perspective

Zhao K, Yang Q, Yan Y, et al.

Pancreatic ductal adenocarcinoma (PDAC) remains one of the most lethal malignancies, characterized by a profoundly immunosuppressive and spatially heterogeneous tumor microenvironment. Recent research has focused on the distinct topographic distribution of tumor-infiltrating lymphocytes (TILs) across …

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Bioinformatics
Full text 2026

DECODE: deep learning-based common deconvolution framework for various omics data

Zhao T, Liu R, Sun Y, et al.

Deconvolution algorithms estimate cell-type abundances from tissue-level data, enabling systematic cellular analysis of large cohorts. However, most deconvolution algorithms are specifically designed for single-omics data, thereby limiting their generalizability and scalability for various omics data …

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Bioinformatics Single-Cell Transcriptomics