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◆ Acta Botanica Yunnanica2026-08-01· Computational biology

Advances in single-cell and spatial multi-omics for plant development and stress responses

Ping Xu, Baozheng Wang, Yanting Hu, La Qiong, Ticao Zhang

一句话结论 · In one sentence

Summarized advances in single-cell and spatial multi-omics technologies for plant development and stress responses, including scRNA-seq, snATAC-seq, ST, and SM. Discussed computational integration strategies and challenges related to reference quality, data sparsity, and batch effects in plant-specific constraints. Highlighted the need for improved reference resources, standardized analytical frameworks, and robust validation strategies for applying these technologies to non-model plants.

原始摘要(英文原文)· Original abstract
Recent advances in single-cell and spatial multi-omics have enabled high-resolution profiling of plant cellular heterogeneity and tissue organization. Single-cell RNA sequencing (scRNA-seq) captures transcriptional variation across cell types and states, while single-nucleus ATAC sequencing (snATAC-seq) provides information on chromatin accessibility and regulatory elements. Spatial transcriptomics (ST) and spatial metabolomics preserve spatial context, enabling in situ mapping of molecular and metabolic features in plant tissues. This review summarizes experimental and computational approaches for these technologies in plants, with emphasis on their applicability and limitations under plant-specific constraints such as cell wall structure, tissue complexity, and genome organization. We further discuss computational integration strategies, including deconvolution, spatial mapping, and cross-modal representation learning, highlighting dependence on reference quality and challenges related to data sparsity and batch effects. We also consider current limitations in applying foundation models to plant data due to limited plant-specific training resources and differences in regulatory architecture across species. Finally, we highlight challenges in extending these approaches to non-model plants and emphasize the need for improved reference resources, standardized analytical frameworks, and robust validation strategies.
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