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Debacq, C.

Publications and source records attributed to Debacq, C..

2 recordsLinked to original sources

Neocortical astrocyte diversity stems from distinct developmental origins

Key regulators of neural network activity in multiple advanced cognitive processes and essential components of the blood-brain barrier, astrocytes constitute a highly heterogeneous population at the morphological, molecular, and functional levels. However, how this diversity arises during mammalian brain development remains poorly investigated. Here, using a combination of multicolour genetic fate mapping, single-cell transcriptomic analyses, multichannel large-volume imaging and detailed 3D cell morphology reconstructions, we uncover a discrete subpopulation of neocortical astrocytes generated from an early restricted embryonic domain located outside of the dorsal pallium. Besides their separate lineage from pyramidal neurons, these astrocytes exhibit a developmental trajectory that differs from astrocytes produced by dorsal cortical progenitors, including different migratory pathways, spatial distributions and morphology. Overall, our results reveal the diversity of embryonic sources responsible for neocortical astrocyte genesis and provide key insights into the unsuspected complex developmental processes that underlie cortical astrocyte heterogeneity.

neuroscience↗

Acute dietary methionine restriction highlights sensitivity of neocortex development to metabolic variations

Methionine -an essential amino acid that has to be provided by nutrition- and its metabolite S-Adenosyl methionine (SAM) are indispensable for cell proliferation, stem cell maintenance and epigenetic regulation 1-5, three processes that are central to embryonic development 6. Previous studies using chronic dietary restriction of methyl donors prior to and during gestation indicated that methionine restriction (MR) is detrimental to the development or growth of the neocortex 7,8, however, the consequences of acute MR have not been extensively studied. Here, we designed a dietary MR regime coinciding with the neurogenic phases of neocortex development in the mouse. Our results indicate that dietary MR for 5 days leads to a severe reduction in neocortex growth and neuronal production. In comparison, growth of the liver and heart was unaffected, highlighting an organ-specific response to MR which was also observed at the cellular and molecular levels. Progenitor cohort labeling revealed a time-dependent sensitivity to MR and cell cycle analyses indicated that after 5 days of MR, progenitors are stalled in the S/G2 phases. Unexpectedly, neocortex growth reduction induced after 5 days of MR is completely rescued at birth when switching the dam back to control diet for the remaining of gestation, uncovering a mechanism of catch-up growth. Using multiplexed imaging we probed metabolic and epigenetic markers following MR and during catch-up growth and show that pyruvate metabolism is rewired in progenitors. Altogether, our data uncover a transient state of quiescence in G2/S which is metabolically distinct from G0 quiescence and associated with efficient catch-up growth. More globally, our study highlights both the extreme sensitivity of the developing neocortex to acute dietary changes and its remarkable plasticity.

developmental biology↗