Here we report the generation of a multimodal cell census and atlas of the mammalian primary motor cortex as the initial product of the BRAIN Initiative Cell Census Network (BICCN). This was achieved by coordinated large-scale analyses of single-cell transcriptomes, chromatin accessibility, DNA methylomes, spatially resolved single-cell transcriptomes, morphological and electrophysiological properties and cellular resolution input–output mapping, integrated through cross-modal computational analysis. Our results advance the collective knowledge and understanding of brain cell-type organization1–5. First, our study reveals a unified molecular genetic landscape of cortical cell types that integrates their transcriptome, open chromatin and DNA...
The primary motor cortex (M1) is essential for voluntary fine-motor control and is functionally cons...
Single cell transcriptomics has transformed the characterization of brain cell identity by providing...
The primary motor cortex (M1) is essential for voluntary fine-motor control and is functionally cons...
AbstractHere we report the generation of a multimodal cell census and atlas of the mammalian primary...
Here we report the generation of a multimodal cell census and atlas of the mammalian primary motor c...
Here we report the generation of a multimodal cell census and atlas of the mammalian primary motor c...
ABSTRACT We report the generation of a multimodal cell census and atlas of the mammalian primary mot...
Here we report the generation of a multimodal cell census and atlas of the mammalian primary motor c...
We report the generation of a multimodal cell census and atlas of the mammalian primary motor cortex...
We report the generation of a multimodal cell census and atlas of the mammalian primary motor cortex...
Single-cell transcriptomics can provide quantitative molecular signatures for large, unbiased sample...
Single-cell transcriptomics can provide quantitative molecular signatures for large, unbiased sample...
Single-cell transcriptomics can provide quantitative molecular signatures for large, unbiased sample...
AbstractSingle-cell transcriptomics can provide quantitative molecular signatures for large, unbiase...
Single-cell transcriptomics can provide quantitative molecular signatures for large, unbiased sample...
The primary motor cortex (M1) is essential for voluntary fine-motor control and is functionally cons...
Single cell transcriptomics has transformed the characterization of brain cell identity by providing...
The primary motor cortex (M1) is essential for voluntary fine-motor control and is functionally cons...
AbstractHere we report the generation of a multimodal cell census and atlas of the mammalian primary...
Here we report the generation of a multimodal cell census and atlas of the mammalian primary motor c...
Here we report the generation of a multimodal cell census and atlas of the mammalian primary motor c...
ABSTRACT We report the generation of a multimodal cell census and atlas of the mammalian primary mot...
Here we report the generation of a multimodal cell census and atlas of the mammalian primary motor c...
We report the generation of a multimodal cell census and atlas of the mammalian primary motor cortex...
We report the generation of a multimodal cell census and atlas of the mammalian primary motor cortex...
Single-cell transcriptomics can provide quantitative molecular signatures for large, unbiased sample...
Single-cell transcriptomics can provide quantitative molecular signatures for large, unbiased sample...
Single-cell transcriptomics can provide quantitative molecular signatures for large, unbiased sample...
AbstractSingle-cell transcriptomics can provide quantitative molecular signatures for large, unbiase...
Single-cell transcriptomics can provide quantitative molecular signatures for large, unbiased sample...
The primary motor cortex (M1) is essential for voluntary fine-motor control and is functionally cons...
Single cell transcriptomics has transformed the characterization of brain cell identity by providing...
The primary motor cortex (M1) is essential for voluntary fine-motor control and is functionally cons...