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Carpentier, G.

Publications and source records attributed to Carpentier, G..

3 recordsLinked to original sources

PS FAD mutants and γ-secretase inhibition accumulate VEGFR2-derived peptide VCTF1 suppressing brain VEGFR2 dimerization, angiogenesis and neuroprotection.

Efficient cerebrovasculature is vital to neuronal health and cognition and evidence shows that most dementia patients have cerebrovascular abnormalities. Brain vasculature is regulated by Vascular Endothelial Growth Factors (VEGFs) binding VEGF receptor2 (VEGFR2) and stimulating angiogenesis and neuroprotection. Here we show that an ADAM17 cleavage of extracellular VEGFR2 produces the membrane-bound {gamma}-secretase substrate VEGFR2/CTF1 (called VCTF1), comprising the transmembrane and intracellular domains of VEGFR2. VCTF1 binds full-length VEGFR2 monomers suppressing its dimerization a function that is required for VEGFR2 activation and downstream angiogenesis and neuroprotection. Presenilin1 (PS1) Familial Alzheimers disease (FAD) mutants exert dominant negative effects on the {gamma}-secretase processing of VCTF1 increasing its concentration and abolishing VEGF-A-induced VEGFR2 dimerization/activation and downstream VEGFR2 signaling, endothelial cell functions and angiogenesis. {gamma}-Secretase inhibitors or PS1 reduction have similar effects on VCTF1 accumulation and VEGFR2 dimerization/activation and downstream signaling and functions as PS1 FAD mutants. Moreover, PS1 FAD mutants increase vulnerability of brain neurons to ischemic stress and abolish VEGF-A-induced neuroprotection and cognition. Together, these data show that VCTF1 suppresses VEGFR2 dimerization and downstream signaling and functions of the brains VEGF-A-/VEGFR2 angiogenic and neuroprotection systems. Importantly, we detected molecular markers of decreased VEGFR2 dimerization and angiogenic dysfunction in human brain tissue from PS1 FAD mutant genotypes. Our data reveal a pathway through which FAD mutants may promote dementia by increasing accumulation of VCTF1 and decreasing angiogenesis, neuroprotection, and cognition, suggesting that PS1 FAD patients may benefit from therapeutic methods that decrease brain VCTF1.

neuroscience↗

Endothelial NMDA receptor involvement in retinal neurovascular damage following prenatal alcohol exposure in mouse model

Prenatal alcohol exposure (PAE) induces neurodevelopmental damage leading to fetal alcohol spectrum disorders (FASD) by altering both brain and ocular development. Recent data showed that PAE impairs brain cortical and retinal vasculature leading to defective positioning of interneurons. In the retina, PAE disturbs vascular development and the association of calretinin neurons with vessels. The NMDA receptor (NMDAR) is a major target of alcohol in the brain, and both ligand binding to NMDARs and the expression of NMDAR subunits are altered in FASD. Given that NMDAR is also expressed in endothelial cells and that glutamate stimulation of endothelial NMDAR (eNMDAR) regulates cortical interneuron positioning along blood vessels, we hypothesize that eNMDAR is critical for retinal vascular development and mediates PAE-induced defects. Using an in vivo model of FASD and transgenic mice lacking, specifically in endothelial cells, the GluN1 subunit of the NMDAR, this study aimed to characterize the neurovascular phenotype of the developing retina. The results show that eNMDAR knockout delays the formation of the superficial vascular plexus and prevents the alterations in vascular organization and neuronal density induced by PAE, particularly cells positioned closer to the retinal vasculature, namely ganglion, amacrine, and horizontal cells. Moreover, eNMDAR deletion led to an increased number of calretinin-positive interneurons in contact with perforating vessels and prevents the decrease induced by PAE. Together, these findings demonstrate that eNMDARs are essential for normal retinal neurovascular development and mediate, at least in part, the detrimental effects of ethanol exposure in FASD. Significance statementUsing a murine model of Fetal Alcohol Spectrum Disorder (FASD) and transgenic mice lacking the GluN1 subunit of the NMDA receptor specifically in endothelial cells (eNMDAR), this study demonstrates that eNMDAR plays a critical role in mediating prenatal alcohol exposure (PAE)-induced neurovascular abnormalities in the retina. Loss of eNMDAR alters the progression of the superficial vascular plexus and prevents the vascular impairments typically observed following PAE. In addition, eNMDAR deletion protects against PAE-induced neuronal damage, particularly affecting retinal ganglion cells, calbindin-positive, and calretinin-positive interneurons. Notably, this study identifies, for the first time, a role for endothelial NMDAR in regulating neurovascular interactions between retinal vessels and calretinin-positive neurons, highlighting this receptor as a key molecular mediator of ethanol-induced retinal damage.

neuroscience↗

Dual-topology of collagen XV and tenascin C acts in concert to guide and shape developing motor axons

During development, motor axons are guided towards their muscle target by various extrinsic cues including extracellular matrix (ECM) proteins those identities remain poorly documented. Using single-cell RNA-sequencing of differentiating slow muscle progenitors (SMP) in zebrafish, we charaterized the SMP as a major source of ECM proteins that were computationally predicted to form a basement membrane-like structure tailored for motor axon guidance. Multiple in vivo and in vitro approaches further revealed that motor axon shape and growth relies on the timely expression of the attractive cue Collagen XV-B (ColXV-B) that locally provides motor axons with a permissive soft microenvironment and separately organizes the repulsive cue Tenascin C into a unique functional dual topology. Bioprinted micropatterns mimicking their unique topology provide compelling evidence that it represents a sufficient condition to elicit directional motor axon growth. Our study provides the first evidence that ECM topology and stiffness critically influence motor axon navigation in vertebrates with potential applications in regenerative medicine for peripheral nerve injury.

developmental biology↗