AI Article Synopsis

  • Single-cell RNA sequencing (scRNA-seq) is a powerful technique that helps identify rare cells, discover new cellular subclusters, and study gene expression in individual cells, revealing shifts in cellular phenotypes and subtype heterogeneities.* -
  • Since its introduction in 2009, scRNA-seq has evolved with advancements like cell-specific barcodes and droplet-based systems, despite challenges such as cellular stress during sample preparation.* -
  • Recent innovations in spatial transcriptomics enhance understanding of cellular organization by preserving the spatial context of gene activity, leading to promising future research directions that combine this data with other omics for deeper insights.*

Article Abstract

Single-cell RNA sequencing (scRNA-seq) is a high-throughput transcriptomic approach with the power to identify rare cells, discover new cellular subclusters, and describe novel genes. scRNA-seq can simultaneously reveal dynamic shifts in cellular phenotypes and heterogeneities in cellular subtypes. Since the publication of the first protocol on scRNA-seq in 2009, this evolving technology has continued to improve, through the use of cell-specific barcodes, adoption of droplet-based systems, and development of advanced computational methods. Despite induction of the cellular stress response during the tissue dissociation process, scRNA-seq remains a popular technology, and commercially available scRNA-seq methods have been applied to the brain. Recent advances in spatial transcriptomics now allow the researcher to capture the positional context of transcriptional activity, strengthening our knowledge of cellular organization and cell-cell interactions in spatially intact tissues. A combination of spatial transcriptomic data with proteomic, metabolomic, or chromatin accessibility data is a promising direction for future research. Herein, we provide an overview of the workflow, data analyses methods, and pros and cons of scRNA-seq technology. We also summarize the latest achievements of scRNA-seq in stroke and acute traumatic brain injury, and describe future applications of scRNA-seq and spatial transcriptomics.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11626557PMC
http://dx.doi.org/10.1177/0271678X241305914DOI Listing

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