bioRxiv Science⌕ Search

Biology subjects

Cucun, G.

Publications and source records attributed to Cucun, G..

2 recordsLinked to original sources

Temporal single-cell transcriptomic analysis of the sox1a:eGFP transgenic line identified the lateral floor plate progenitor cells as the origin of intraspinal serotonergic neurons

The Sox family of transcription factors plays a crucial role in the development of the vertebrate nervous system. In the zebrafish embryo, sox1 genes are expressed in neural progenitor cells and neurons of the ventral spinal cord. We recently reported that the loss of function of sox1a and sox1b leads to a significant decline in a subtype of V2 neurons, called V2s, in zebrafish. Here, a single-cell RNA sequencing approach was used to analyse the transcriptome of sox1a lineage progenitors and neurons in the zebrafish spinal cord at four different time points during the first five days of embryonic development, using the Tg(sox1a:eGFP) line. In addition to the previously described sox1a-expressing neurons, we found that sox1a is also expressed in late-developing intraspinal serotonergic neurons (ISNs). Analysis of developmental trajectories from single-cell data and depletion of lateral floor plate (LFP) cells by nkx2.9 morpholino knockdown suggest that ISNs arise from LFP precursor cells. Pharmacological inhibition of the Notch signalling pathway indicates that this pathway is required for the negative regulation of the development of LFP progenitor cells into ISN populations. Our results show that the zebrafish LFP is a precursor domain that longitudinally gives rise to ISNs in addition to the previously described KA" and V3 interneurons.

developmental biology↗

High-fat diet feeding triggers a regenerative response in the adult zebrafish brain

Non-alcoholic fatty liver disease (NAFLD) includes a range of liver conditions ranging from excess fat accumulation to liver failure. NAFLD is strongly associated with high-fat diet (HFD) consumption that constitutes a metabolic risk factor. While HFD has been elucidated concerning its several systemic effects, there is little information about its influence on the brain at the molecular level. Here, by using a high-fat diet (HFD)-feeding of adult zebrafish, we first reveal that excess fat uptake results in weight gain and fatty liver. Prolonged exposure to HFD induces a significant increase in the expression of pro-inflammation, apoptosis, and proliferation markers in the liver and brain tissues. Immunofluorescence analyses of the brain tissues disclose stimulation of apoptosis and widespread activation of glial cell response. Moreover, glial activation is accompanied by an initial decrease in the number of neurons and their subsequent replacement in the olfactory bulb and the telencephalon. Long-term consumption of HFD causes activation of Wnt/{beta}-catenin signaling in the brain tissues. Finally, fish fed an HFD induces anxiety, and aggressiveness and increases locomotor activity. Thus, HFD feeding leads to a non-traumatic brain injury and stimulates a regenerative response. The activation mechanisms of a regeneration response in the brain can be exploited to fight obesity and recover from non-traumatic injuries.

neuroscience↗