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Updated: Jul 8, 2026

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Expanding the Comprehension of the Tumor Microenvironment using Mass Spectrometry Imaging of Formalin-Fixed and Paraffin-Embedded Tissue Samples
Published on: June 29, 2022
Statescope: an integrative deconvolution framework for discovering cell states in tumors
Jurriaan Janssen1, Mischa F B Steketee1, Aryamaan Bose1
1Amsterdam UMC, Vrije Universiteit Amsterdam, Department of Pathology, Cancer Center Amsterdam, Amsterdam, The Netherlands.
Nature Communications
|July 6, 2026
Summary
Statescope, a new Bayesian framework, improves cell state deconvolution from bulk tumor RNA sequencing data by accounting for tumor cell heterogeneity. It accurately identifies cell states and predicts immunotherapy survival benefits.
Area of Science:
- Computational biology
- Cancer genomics
- Immunogenomics
Background:
- Accurate deconvolution of cell states from bulk tumor RNA sequencing (RNA-seq) is challenging due to malignant cell heterogeneity in cancer.
- Existing methods struggle to precisely identify distinct cell populations and their states within complex tumor microenvironments.
Purpose of the Study:
- To introduce Statescope, a novel Bayesian framework designed to enhance the accuracy of cell state deconvolution from bulk tumor RNA-seq data.
- To overcome limitations posed by malignant cell heterogeneity and inter-sample variation in cancer deconvolution.
Main Methods:
- Developed Statescope, a Bayesian framework integrating DNA-derived malignant cell purity.
- Incorporated explicit modeling of inter-sample variation to improve cell state identification.
- Benchmarked Statescope against existing deconvolution methods using comprehensive datasets.
Main Results:
- Statescope demonstrated superior performance in both cell fraction and state estimation compared to current methods.
- The framework successfully identified cell states not present in single-cell references, including novel neutrophil states in lung cancer.
- Statescope identified a combinatorial signature of effector CD8+ T cells and conventional dendritic cells predicting immunotherapy survival in clinical trials.
Conclusions:
- Statescope offers a robust solution for accurate cell state deconvolution from bulk RNA-seq, addressing critical challenges in cancer research.
- The framework advances deconvolution beyond mere estimation, transforming it into a powerful discovery platform for biological and clinical insights.
- Statescope enables deeper understanding of tumor microenvironments and immune responses, leveraging widely available multi-omics data.

