The human brain has undergone substantial change since humans diverged from chimpanzees and the other great apes1,2. However, the genetic and developmental programs that underlie this divergence are not fully understood. Here we have analysed stem cell-derived cerebral organoids using single-cell transcriptomics and accessible chromatin profiling to investigate gene-regulatory changes that are specific to humans. We first analysed cell composition and reconstructed differentiation trajectories over the entire course of human cerebral organoid development from pluripotency, through neuroectoderm and neuroepithelial stages, followed by divergence into neuronal fates within the dorsal and ventral forebrain, midbrain and hindbrain regions. Brai...
During mammalian development, differences in chromatin state coincide with cellular differentiation ...
During mammalian development, chromatin state differences coincide with cellular differentiation and...
We performed RNA sequencing on 40,000 cells to create a high-resolution single-cell gene expression ...
The human brain has undergone substantial change since humans diverged from chimpanzees and the othe...
The evolutionary lineage of humans is marked by a rapid expansion in brain size. Efforts to study hu...
During the last years, important progress has been made in modeling early brain development using 3-...
Identification of gene expression traits unique to the human brain sheds light on the molecular mech...
To better understand the molecular and cellular differences in brain organization between human and ...
The human cortex is comprised of diverse cell types that emerge from an initially uniform neuroepith...
Human neocortex expansion likely contributed to the remarkable cognitive abilities of humans. This e...
Cerebral organoids-3D cultures of human cerebral tissue derived from pluripotent stem cells-have eme...
The transcriptional underpinnings of brain development remain poorly understood, particularly in hum...
The brain is one of the most complex organs, responsible for the advanced intellectual and cognitive...
Self-organizing cerebral organoids grown from pluripotent stem cells combined with single-cell genom...
The transcriptional underpinnings of brain development remain poorly understood, particularly in hum...
During mammalian development, differences in chromatin state coincide with cellular differentiation ...
During mammalian development, chromatin state differences coincide with cellular differentiation and...
We performed RNA sequencing on 40,000 cells to create a high-resolution single-cell gene expression ...
The human brain has undergone substantial change since humans diverged from chimpanzees and the othe...
The evolutionary lineage of humans is marked by a rapid expansion in brain size. Efforts to study hu...
During the last years, important progress has been made in modeling early brain development using 3-...
Identification of gene expression traits unique to the human brain sheds light on the molecular mech...
To better understand the molecular and cellular differences in brain organization between human and ...
The human cortex is comprised of diverse cell types that emerge from an initially uniform neuroepith...
Human neocortex expansion likely contributed to the remarkable cognitive abilities of humans. This e...
Cerebral organoids-3D cultures of human cerebral tissue derived from pluripotent stem cells-have eme...
The transcriptional underpinnings of brain development remain poorly understood, particularly in hum...
The brain is one of the most complex organs, responsible for the advanced intellectual and cognitive...
Self-organizing cerebral organoids grown from pluripotent stem cells combined with single-cell genom...
The transcriptional underpinnings of brain development remain poorly understood, particularly in hum...
During mammalian development, differences in chromatin state coincide with cellular differentiation ...
During mammalian development, chromatin state differences coincide with cellular differentiation and...
We performed RNA sequencing on 40,000 cells to create a high-resolution single-cell gene expression ...