bioRxiv · 10.64898/2026.03.10.710824
EnsAgent: a tool-ensemble multiple Agent system for robust annotation in spatial transcriptomics
Abstract
MotivationAutomated domain annotation in spatially resolved transcriptomics (SRT) remains challenging since it depends on gene expression, morphology, and clinical conventions, which vary across cohorts and platforms. While Large Language Model (LLM)-driven agents show promise, current approaches typically condition semantic reasoning on static, single-method partitions. This reliance makes annotation pipelines fragile to upstream partition errors and prone to hallucinations when molecular evidence is ambiguous. A robust framework integrating ensemble intelligence with iterative, evidence-based reasoning is required to ensure reproducibility and accuracy. ResultsWe introduce EnsAgent, a tool-ensemble multi-agent system designed for robust SRT annotation. Uniquely, EnsAgent decouples structural partitioning from semantic labeling via a Consultation-Review workflow. A Tool-Runner Agent orchestrates a diverse portfolio of clustering algorithms via the Model Context Protocol (MCP), generating a consensus partition optimized by a multimodal Scoring Agent. Subsequently, a Proposer-Critic feedback loop coordinates four specialized experts (Marker, Pathway, Spatiality, and Visual) to formulate annotations with explicit evidence trails and uncertainty estimates. Benchmarking on three SRT datasets demonstrates that EnsAgent effectively neutralizes batch effects and resolves subtle tumor microenvironment niches missed by single-paradigm baselines, delivering state-of-the-art accuracy and interpretability. Availability and ImplementationEnsAgent is available at github.com/keviccz/ensAgent. Contactdongqishi@sztu.edu.cn, kexiao@sztu.edu.cn Supplementary informationSupplementary data are available at Bioinformatics online.
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Zhang, D., Zhang, M., Li, N., Zheng, C., Liang, L., Ke, X., Dong, Q.. 2026-03-13. EnsAgent: a tool-ensemble multiple Agent system for robust annotation in spatial transcriptomics. https://doi.org/10.64898/2026.03.10.710824
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