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Deconvolution and inference of spatial communication through optimization algorithm for spatial transcriptomics

delete2025-02-14
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Z
Zedong Wang
Y
Yi Liu
常
常晓 (Xiao Chang) *
刘小平 封面图
刘小平 (Xiaoping Liu) *
DOI:10.1038/s42003-025-07625-8delete
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摘要

摘要

En 中文
Spatial transcriptomics technologies can capture gene expression at spatial loci. However, at certain resolutions, the obtained gene expression reflects the sum of either a heterogeneous or homogeneous set of cells, rather than individual cell. This limitation gives rise to the deconvolution algorithm to make cell-type inferences at each location. Yet, the vast majority of deconvolution methods that have been developed ignore the spatial information of the tissue and the communications between the cells or spots. To overcome these afflictions, we proposed a deconvolution method, non-negative least squares-based and optimization search-based deconvolution (NODE), that combines cell-type-specific information from single-cell RNA sequencing (scRNA-seq) and intercellular communications in tissue. NODE deconvolution algorithm, incorporating the spatial information of the tissue, allows us to quantify intercellular communications at the same instant. NODE can not only utilize optimization method to infer the deconvolution results of spatial transcriptomics data and reduce the probability of overfitting situations, but also make reasonable inferences for spatial communications. Subsequently, we applied NODE to four datasets to validate the correctness of the NODE deconvolution results and compare them with existing deconvolution algorithms. NODE also inferred spatial communications and validated them in tissue development of human heart.
Keyword:
GENE-EXPRESSION
ARCHITECTURE
TM4SF1
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期刊

Communications Biology 封面图
Communications Biology
IF:
5.1
论文数:
1.0W
被引数:
3.2W

机构

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university of chinese academy of sciences, cas
学者数:
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论文数: 3.8W
被引数: 75
S
shandong university
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9.5W
论文数: 6.4W
被引数: 94
C
chinese academy of sciences
学者数:
56.7W
论文数: 45.0W
被引数: 704
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