Reconstructing the development of lineage relationships and cell fate mapping has been a fundamental problem in biology. Using advanced molecular biology and single-cell RNA sequencing, we have profiled transcriptomes at the single-cell level and mapped cell fates during development. Recently, CRISPR/Cas9 barcode editing for large-scale lineage tracing has been used to reconstruct the pseudotime trajectory of cells and improve lineage tracing accuracy. This review presents the progress of the latest CbLT (CRISPR-based Lineage Tracing) and discusses the current limitations and potential technical pitfalls in their application and other emerging concepts
Multicellular organisms are composed of heterogeneous groups of cells that, through specialized role...
A key goal of developmental biology is to understand how a single cell is transformed into a full-gr...
Retrospective lineage tracing has the potential to answer many outstanding questions in the fields o...
Tracking the progeny of single cells is necessary for building lineage trees that recapitulate proce...
Lineage tracing studies combining CRISPR-Cas9 editing and scRNA-seq face several challenges and cann...
Multicellular systems develop from single cells through distinct lineages. However, current lineage-...
Cellular lineages underlie several important biological phenomena, from embyrogenesis to tumor devel...
Reconstructing lineage relationships between cells within a tissue or organism is a long-standing ai...
Lineage tracing is the identification of all progeny of a single cell. Although its origins date bac...
A fundamental goal of developmental and stem cell biology is to map the developmental history (ontog...
Single-cell transcriptome sequencing and cell lineage tracing technologies have enabled high- resolu...
The pairing of CRISPR/Cas9-based gene editing with massively parallel single-cell readouts now enabl...
The pairing of CRISPR/Cas9-based gene editing with massively parallel single-cell readouts now enabl...
Mapping the paths that stem and progenitor cells take en route to differentiate and elucidating the ...
Lineage relationships among the large number of heterogeneous cell types generated during developmen...
Multicellular organisms are composed of heterogeneous groups of cells that, through specialized role...
A key goal of developmental biology is to understand how a single cell is transformed into a full-gr...
Retrospective lineage tracing has the potential to answer many outstanding questions in the fields o...
Tracking the progeny of single cells is necessary for building lineage trees that recapitulate proce...
Lineage tracing studies combining CRISPR-Cas9 editing and scRNA-seq face several challenges and cann...
Multicellular systems develop from single cells through distinct lineages. However, current lineage-...
Cellular lineages underlie several important biological phenomena, from embyrogenesis to tumor devel...
Reconstructing lineage relationships between cells within a tissue or organism is a long-standing ai...
Lineage tracing is the identification of all progeny of a single cell. Although its origins date bac...
A fundamental goal of developmental and stem cell biology is to map the developmental history (ontog...
Single-cell transcriptome sequencing and cell lineage tracing technologies have enabled high- resolu...
The pairing of CRISPR/Cas9-based gene editing with massively parallel single-cell readouts now enabl...
The pairing of CRISPR/Cas9-based gene editing with massively parallel single-cell readouts now enabl...
Mapping the paths that stem and progenitor cells take en route to differentiate and elucidating the ...
Lineage relationships among the large number of heterogeneous cell types generated during developmen...
Multicellular organisms are composed of heterogeneous groups of cells that, through specialized role...
A key goal of developmental biology is to understand how a single cell is transformed into a full-gr...
Retrospective lineage tracing has the potential to answer many outstanding questions in the fields o...