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DeepST: identifying spatial domains in spatial transcriptomics by deep learning

delete2022-10-17
delete74
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OA
AI
C
Chang Xu
靳喜云 cover
靳喜云 (Xiyun Jin)
S
Songren Wei
王平平 cover
王平平 (Pingping Wang)
M
Meng Luo
许召春 cover
许召春 (Zhaochun Xu)
W
Wenyi Yang
Y
Yideng Cai
L
Lixing Xiao
X
Xiaoyu Lin
H
Hongxin Liu
芮晨 (Rui Chen)
F
Fenglan Pang
R
Rui Cheng
X
Xi Su
胡颖 (Ying Hu)
G
Guohua Wang
蒋庆华 cover
蒋庆华 (Qinghua Jiang) *
DOI:10.1093/nar/gkac901delete
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Abstract

Abstract

En 中文
Recent advances in spatial transcriptomics (ST) have brought unprecedented opportunities to understand tissue organization and function in spatial context. However, it is still challenging to precisely dissect spatial domains with similar gene expression and histology in situ. Here, we present DeepST, an accurate and universal deep learning framework to identify spatial domains, which performs better than the existing state-of-the-art methods on benchmarking datasets of the human dorsolateral prefrontal cortex. Further testing on a breast cancer ST dataset, we showed that DeepST can dissect spatial domains in cancer tissue at a finer scale. Moreover, DeepST can achieve not only effective batch integration of ST data generated from multiple batches or different technologies, but also expandable capabilities for processing other spatial omics data. Together, our results demonstrate that DeepST has the exceptional capacity for identifying spatial domains, making it a desirable tool to gain novel insights from ST studies.
Keywords:
ABC TRANSPORTERS
EXPRESSION
CELLS
PROGRESSION
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Journal

Nucleic Acids Research cover
Nucleic Acids Research
IF:
13.1
Papers:
3.6W
Citations:
29.0W

Organization

H
harbin institute of technology
Scholars:
8.0W
Papers: 6.6W
Citations: 66
H
Harbin Medical University
Scholars:
2.9W
Papers: 1.3W
Citations: 1.6W
S
southern medical university - china
Scholars:
4.6W
Papers: 2.5W
Citations: 50
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