Project description:We present a transcriptomic atlas of spinal V1 interneurons across postnatal development (P0, P14, P28, and P56) in the mouse using single-nucleus RNA sequencing (snRNA-seq). We also present transcriptomic data comparing V1 interneurons in En1 heterozygous and En1 KO mice at age P0 only.
Project description:Spinal inhibitory interneurons play crucial roles in shaping motor output, but the molecular heterogeneity contained within cardinal spinal interneuron populations is unclear. This experiment was designed to identify genes enriched in the Engrailed1 (En1) population of ventral V1 inhibitory interneurons relative to the Ptf1a population of dorsal dI4/dILA interneurons, with the goal of identifying genetic markers for discrete V1 subpopulations.
Project description:We collected whole genome testis expression data from hybrid zone mice. We integrated GWAS mapping of testis expression traits and low testis weight to gain insight into the genetic basis of hybrid male sterility.
Project description:In this report, we describe a successful protocol for isolating and expression-profiling live fluorescent- protein-labelled neurons from zebrafish embryos. As a proof-of-principle for this method, we FAC-sorted and RNA-profiled GFP-labelled spinal CiA interneurons and compared the expression profile of these cells to those of post-mitotic spinal neurons in general and to all trunk cells. We show that RNA of sufficient quality and quantity to uncover both expected and novel transcription profiles via Affymetrix microarray analysis can be extracted from 5,700 to 20,000 FAC-sorted cells. As part of this study, we also further confirm the genetic homology of mammalian and zebrafish V1 interneurons, by demonstrating that zebrafish V1 cells (CiAs) express genes that encode for the transcription factors Lhx1a and Lhx5. This protocol for dissociating, sorting and RNA-profiling neurons from organogenesis-stage zebrafish embryos should also be applicable to other developing organs and tissues and potentially other model organisms.