bioRxiv Science⌕ Search

Biology subjects

Depp, M.

Publications and source records attributed to Depp, M..

2 recordsLinked to original sources

CTNND2 moderates neuronal excitation and links human evolution to prolonged synaptic development in the neocortex

Human-specific genes are potential drivers of brain evolution. Among them, SRGAP2C has contributed to the emergence of features characterizing human cortical synapses, including their extended period of maturation. SRGAP2C inhibits its ancestral copy, the postsynaptic protein SRGAP2A; yet the synaptic molecular pathways differentially regulated in humans by SRGAP2 proteins remain largely unknown. Here, we identify CTNND2, a protein implicated in severe intellectual disability (ID) in the Cri-du-Chat syndrome, as an SRGAP2 effector. We demonstrate that CTNND2 slows down synaptic maturation and promotes neuronal homeostasis. During postnatal development, CTNND2 moderates neuronal excitation and excitability. In adults, it supports synapse maintenance. While CTNND2 deficiency is deleterious and results in the synaptic loss of SYNGAP1, another major ID-associated protein, the human-specific protein SRGAP2C enhances CTNND2 synaptic accumulation in human neurons. Our findings reveal that CTNND2 regulation by SRGAP2C contributes to synaptic neoteny in humans, and link human-specific and ID genes at the synapse.

neuroscience↗

Glucose oxidation and nutrients availability drive neural crest development

Bioenergetic metabolism is a key regulator of cellular function and signaling activity but the exact roles of nutrient utilization and energy production in embryonic development remain unknown. Here we investigated the metabolic pathways and deciphered the role of carbon metabolism required for the development of neural crest cells (NCC), a migratory stem cell population of the vertebrate embryo. We uncovered that glucose oxidation constitutes the prominent metabolic signature of trunk NCC and supports their delamination, migration, and proliferation. Additionally, we found that glycolysis, mitochondrial respiration and the pentose phosphate pathway are all mobilized downstream of glucose uptake. These metabolic pathways do not support specific cellular processes but cooperate and are integrated to accomplish epithelium-to-mesenchyme transition, adhesion, locomotion and proliferation. Moreover, using different nutrient supplies (glucose vs. pyruvate) we show that glucose is crucial to modulate NCC migration and adaptation to environmental stiffness, control NCC stemness and drive their fate decisions through regulation of specific gene expression. Our data establish that NCC development is instructed by metabolic cues that mobilize defined metabolic pathways cooperating together in response to nutrient availability. SUMMARY STATEMENTHere we show that neural crest cell migration and fate decisions rely primarily on glucose oxidation for energy production and mobilize multiple cooperating metabolic pathways for their biosynthetic needs and execution of gene programs.

developmental biology↗