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Advances in spatial transcriptomics and related data analysis strategies
by
Zhang, Ming-Hui
, Yuan, Ye
, Du, Jun
, Fu, Xue-Hang
, Yang, Yu-Chen
, Hou, Jian
, Huang, Zou-Fang
, An, Zhi-Jie
in
Analysis
/ Bar codes
/ Biomedical and Life Sciences
/ Biomedical Research
/ Biomedicine
/ Cancer microenvironment
/ Cell cycle
/ Computational biology
/ Data Analysis
/ Efficiency
/ Embryos
/ Gene expression
/ Gene Expression Profiling
/ Histogenesis
/ Hybridization
/ Lasers
/ Medical research
/ Medicine/Public Health
/ Methodology
/ Methods
/ Microenvironments
/ Protocol
/ Review
/ RNA sequencing
/ Sequence Analysis, RNA
/ Single-Cell Analysis
/ Spatial analysis (Statistics)
/ Spatial discrimination
/ Spatial transcriptomics
/ Tissue heterogeneity
/ Transcriptome - genetics
/ Transcriptomics
/ Zebrafish
2023
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Advances in spatial transcriptomics and related data analysis strategies
by
Zhang, Ming-Hui
, Yuan, Ye
, Du, Jun
, Fu, Xue-Hang
, Yang, Yu-Chen
, Hou, Jian
, Huang, Zou-Fang
, An, Zhi-Jie
in
Analysis
/ Bar codes
/ Biomedical and Life Sciences
/ Biomedical Research
/ Biomedicine
/ Cancer microenvironment
/ Cell cycle
/ Computational biology
/ Data Analysis
/ Efficiency
/ Embryos
/ Gene expression
/ Gene Expression Profiling
/ Histogenesis
/ Hybridization
/ Lasers
/ Medical research
/ Medicine/Public Health
/ Methodology
/ Methods
/ Microenvironments
/ Protocol
/ Review
/ RNA sequencing
/ Sequence Analysis, RNA
/ Single-Cell Analysis
/ Spatial analysis (Statistics)
/ Spatial discrimination
/ Spatial transcriptomics
/ Tissue heterogeneity
/ Transcriptome - genetics
/ Transcriptomics
/ Zebrafish
2023
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Do you wish to request the book?
Advances in spatial transcriptomics and related data analysis strategies
by
Zhang, Ming-Hui
, Yuan, Ye
, Du, Jun
, Fu, Xue-Hang
, Yang, Yu-Chen
, Hou, Jian
, Huang, Zou-Fang
, An, Zhi-Jie
in
Analysis
/ Bar codes
/ Biomedical and Life Sciences
/ Biomedical Research
/ Biomedicine
/ Cancer microenvironment
/ Cell cycle
/ Computational biology
/ Data Analysis
/ Efficiency
/ Embryos
/ Gene expression
/ Gene Expression Profiling
/ Histogenesis
/ Hybridization
/ Lasers
/ Medical research
/ Medicine/Public Health
/ Methodology
/ Methods
/ Microenvironments
/ Protocol
/ Review
/ RNA sequencing
/ Sequence Analysis, RNA
/ Single-Cell Analysis
/ Spatial analysis (Statistics)
/ Spatial discrimination
/ Spatial transcriptomics
/ Tissue heterogeneity
/ Transcriptome - genetics
/ Transcriptomics
/ Zebrafish
2023
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Advances in spatial transcriptomics and related data analysis strategies
Journal Article
Advances in spatial transcriptomics and related data analysis strategies
2023
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Overview
Spatial transcriptomics technologies developed in recent years can provide various information including tissue heterogeneity, which is fundamental in biological and medical research, and have been making significant breakthroughs. Single-cell RNA sequencing (scRNA-seq) cannot provide spatial information, while spatial transcriptomics technologies allow gene expression information to be obtained from intact tissue sections in the original physiological context at a spatial resolution. Various biological insights can be generated into tissue architecture and further the elucidation of the interaction between cells and the microenvironment. Thus, we can gain a general understanding of histogenesis processes and disease pathogenesis, etc. Furthermore, in silico methods involving the widely distributed R and Python packages for data analysis play essential roles in deriving indispensable bioinformation and eliminating technological limitations. In this review, we summarize available technologies of spatial transcriptomics, probe into several applications, discuss the computational strategies and raise future perspectives, highlighting the developmental potential.
Publisher
BioMed Central,BioMed Central Ltd,Springer Nature B.V,BMC
Subject
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