| Literature DB >> 26689543 |
Cathryn R Cadwell1, Athanasia Palasantza2,3, Xiaolong Jiang1, Philipp Berens1,4,5,6, Qiaolin Deng2,3, Marlene Yilmaz2,3, Jacob Reimer1, Shan Shen1, Matthias Bethge4,6,7, Kimberley F Tolias1,8, Rickard Sandberg2,3, Andreas S Tolias1,4.
Abstract
Despite the importance of the mammalian neocortex for complex cognitive processes, we still lack a comprehensive description of its cellular components. To improve the classification of neuronal cell types and the functional characterization of single neurons, we present Patch-seq, a method that combines whole-cell electrophysiological patch-clamp recordings, single-cell RNA-sequencing and morphological characterization. Following electrophysiological characterization, cell contents are aspirated through the patch-clamp pipette and prepared for RNA-sequencing. Using this approach, we generate electrophysiological and molecular profiles of 58 neocortical cells and show that gene expression patterns can be used to infer the morphological and physiological properties such as axonal arborization and action potential amplitude of individual neurons. Our results shed light on the molecular underpinnings of neuronal diversity and suggest that Patch-seq can facilitate the classification of cell types in the nervous system.Entities:
Mesh:
Year: 2015 PMID: 26689543 PMCID: PMC4840019 DOI: 10.1038/nbt.3445
Source DB: PubMed Journal: Nat Biotechnol ISSN: 1087-0156 Impact factor: 54.908