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March 30, 2026The Crop Journal2 citationsOpen Access

PhytoCell: An ensemble learning framework for identifying cell states in plant scRNA-seq data

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HWHao WangSYShen YanXMXiaoding Ma

Key Points

  • The aim is to develop a framework to accurately classify cell subpopulations and identify their marker genes using transcriptome data.
  • Developed PhytoCell framework integrating feature selection and machine learning.
  • Evaluated on 120,000 cells from Nicotiana attenuata and Oryza sativa.
  • Implemented a web interface for user access and predictions.
  • PhytoCell successfully eliminates redundancy in data and identifies key cell markers.
  • Improved clustering performance compared to existing methods.
  • Accurately classifies cell subpopulations without needing prior biological knowledge.

Abstract

Single-cell transcriptome sequencing (scRNA-seq) can reveal the roles of diverse cells in an organism, but accurately classifying cell subpopulations and their marker genes remains a challenge. Here, we present PhytoCell, an ensemble learning framework that combines feature selection engineering with machine learning to uncover cell markers and annotate cell subpopulations. We evaluated our approach on 120,000 cells from corollas of the dicotyledonous plant species coyote tobacco ( Nicotiana attenuata ) and eight tissues from the monocotyledonous plant species rice ( Oryza sativa ). Comprehensive evaluation across species and tissues demonstrated that PhytoCell effectively eliminates redundant information, identifies key cell markers, improves clustering performance, and accurately classifies cell subpopulations. Importantly, PhytoCell did not rely on prior biological knowledge for selecting cell markers, preserving the biological landscape of the original data. For broader accessibility, we developed a user-friendly web interface that provides convenient tools for users to access cell marker resources and perform predictions for cell type. PhytoCell is freely accessible at https://cgris.net/phyto . PhytoCell is scalable to different sizes of single-cell datasets, representing a valuable resource for precise identification in cell research.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69ca134b883daed6ee09538bhttps://doi.org/10.1016/j.cj.2026.02.021
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