Search bioRxiv⌕ Search

Biology subjects

Shen, Y.-R.

Publications and source records attributed to Shen, Y.-R..

2 recordsLinked to original sources

Cortex Folding by Combined Progenitor Expansion and Adhesion-Controlled Neuronal Migration

Folding of the mammalian cerebral cortex into sulcal fissures and gyral peaks is the result of complex processes that are incompletely understood. Previously we showed that genetic deletion of Flrt1/3 adhesion molecules causes folding of the smooth mouse cortex into sulci resulting from increased lateral dispersion and faster neuron migration, without progenitor expansion. Here, we find that combining the Flrt1/3 double knockout with an additional genetic deletion that causes progenitor expansion, greatly enhances cortex folding. Expansion of intermediate progenitors by deletion of Cep83 results in enhanced formation of sulci. Expansion of apical progenitors by deletion of Fgf10 results in enhanced formation of gyri. Single cell transcriptomics and simulations suggest that changes in adhesive properties of cortical neurons, their proportions and densities in the cortical plate, combined with lateral dispersion during their radial migration are important folding parameters. These results identify key developmental mechanisms that cooperate to promote cortical gyrification. HIGHLIGHTSO_LICortex folding is enhanced by combining progenitor expansion and divergent migration. C_LIO_LIConcomitant expansion of intermediate progenitors results in the formation of sulci C_LIO_LIConcomitant expansion of apical progenitors results in the formation of gyri C_LIO_LIProgenitors differentially affect cortical neurons with distinct adhesive properties C_LI

neuroscience↗

Expansion of the neocortex and protection from neurodegeneration by in vivo transient reprogramming

Yamanaka factors (YFs) can reverse some aging features in mammalian tissues, but their effects on the brain remain largely unexplored. Here, we induced YFs in the mouse brain in a controlled spatio-temporal manner in two different scenarios: brain development, and adult stages in the context of neurodegeneration. Embryonic induction of YFs perturbed cell identity of both progenitors and neurons, but transient and low-level expression is tolerated by these cells during development. Under these conditions, YFs induction led to expanded neurogenesis, increased number of upper cortical neurons, and enhanced motor and social behavior of adult mice. Additionally, controlled YF induction is tolerated by principal neurons in the adult dorsal hippocampus and prevented the development of several hallmarks of Alzheimers disease, including cognitive decline and altered molecular signatures, in the 5xFAD mouse model. Overall, these results highlight the powerful impact of YFs on neurogenesis and their potential use in brain disorders. HighlightsO_LITransient Yamanaka factor (YF) expression during development expands neocortex C_LIO_LIYF-treated mice show enhanced cognitive skills C_LIO_LIIntermitent YF expression is tolerated by adult principal hippocampal neurons C_LIO_LILong-term intermitent YF reprogramming is protective in an AD mouse model C_LI

neuroscience↗