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Museum of spatial transcriptomics
DOI:10.1038/s41592-022-01409-2.png)
摘要
En 中文
The function of many biological systems, such as embryos, liver lobules, intestinal villi, and tumors, depends on the spatial organization of their cells. In the past decade, high-throughput technologies have been developed to quantify gene expression in space, and computational methods have been developed that leverage spatial gene expression data to identify genes with spatial patterns and to delineate neighborhoods within tissues. To comprehensively document spatial gene expression technologies and data-analysis methods, we present a curated review of literature on spatial transcriptomics dating back to 1987, along with a thorough analysis of trends in the field, such as usage of experimental techniques, species, tissues studied, and computational approaches used. Our Review places current methods in a historical context, and we derive insights about the field that can guide current research strategies. A companion supplement offers a more detailed look at the technologies and methods analyzed: https://pachterlab.github.io/LP_2021/.
Keyword:
IN-SITU HYBRIDIZATION
GENE-EXPRESSION PROFILES
GENOME-WIDE EXPRESSION
INSITU HYBRIDIZATION
MESSENGER-RNA
SINGLE CELLS
MOUSE-BRAIN
ATLAS
TISSUE
LOCALIZATION
期刊
IF:
32.1
论文数:
7.2K
被引数:
12.7W
机构
引用论文
Characterizing spatial gene expression heterogeneity in spatially resolved single-cell transcriptomic data with nonuniform cellular densities在具有不均匀细胞密度的空间分辨的单细胞转录组数据中表征空间基因表达异质性
GENOME RESEARCH
IF5.5
Identification of spatial expression trends in single-cell gene expression data单细胞基因表达数据中空间表达趋势的识别
NATURE METHODS
IF32.1
Hybridization-based in situ sequencing (HybISS) for spatially resolved transcriptomics in human and mouse brain tissue基于杂交的原位测序 (HybISS) 用于人和小鼠脑组织中的空间分辨转录组学
NUCLEIC ACIDS RESEARCH
IF13.1
Localization of Tamm-Horsfall Glycoprotein in the Fetal and Neonatal Hamster Kidney as Demonstrated by Immunofluorescence and Immunoelectron Microscopical Techniques
Neonatology
IF0

