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Sensory neurons from dorsal root ganglia regulate endothelial cell function in extracellular matrix remodelling.
Language
EN
Article de revue
This item was published in
Cell Communication and Signaling. 2020-10-19, vol. 18, n° 1, p. 162
English Abstract
Recent physiological and experimental data highlight the role of the sensory nervous system in bone repair, but its precise role on angiogenesis in a bone regeneration context is still unknown. Our previous work demonstrated ...Read more >
Recent physiological and experimental data highlight the role of the sensory nervous system in bone repair, but its precise role on angiogenesis in a bone regeneration context is still unknown. Our previous work demonstrated that sensory neurons (SNs) induce the osteoblastic differentiation of mesenchymal stem cells, but the influence of SNs on endothelial cells (ECs) was not studied. Here, in order to study in vitro the interplay between SNs and ECs, we used microfluidic devices as an indirect co-culture model. Gene expression analysis of angiogenic markers, as well as measurements of metalloproteinases protein levels and enzymatic activity, were performed. We were able to demonstrate that two sensory neuropeptides, calcitonin gene-related peptide (CGRP) and substance P (SP), were involved in the transcriptional upregulation of angiogenic markers (vascular endothelial growth factor, angiopoietin 1, type 4 collagen, matrix metalloproteinase 2) in ECs. Co-cultures of ECs with SNs also increased the protein level and enzymatic activity of matrix metalloproteinases 2 and 9 (MMP2/MMP9) in ECs. Our results suggest a role of sensory neurons, and more specifically of CGRP and SP, in the remodelling of endothelial cells extracellular matrix, thus supporting and enhancing the angiogenesis process. Video abstract.Read less <
English Keywords
Animals
Calcitonin Gene-Related Peptide
Endothelial Cells
Extracellular Matrix
Female
Ganglia
Spinal
Gene Expression Regulation
Matrix Metalloproteinases
Microfluidics
Models
Biological
Neurites
Osteogenesis
Rats
Wistar
Sensory Receptor Cells
Substance P
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