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Canepa, E.

Publications and source records attributed to Canepa, E..

3 recordsLinked to original sources

HOMOCYSTEINE POTENTIATES AMYLOID β-INDUCED CEREBRAL ENDOTHELIAL CELL APOPTOSIS, BLOOD BRAIN BARRIER DYSFUNCTION AND ANGIOGENIC IMPAIRMENT

Cerebrovascular dysfunction has been implicated as a major contributor to Alzheimers Disease (AD) pathology, with cerebral endothelial cell (cEC) stress promoting ischemia, cerebral-blood flow impairments and blood-brain barrier (BBB) permeability. Recent evidence suggests that cardiovascular (CV)/cerebrovascular risk factors, including hyperhomocysteinemia (Hhcy), exacerbate AD pathology and risk. Yet, the underlying molecular mechanisms for this interaction remain unclear. Our lab has demonstrated that amyloid beta 40 (A{beta}40) species, and particularly A{beta}40-E22Q (vasculotropic Dutch mutant), promote death receptor 4 and 5 (DR4/DR5)-mediated apoptosis in human cECs, barrier permeability and angiogenic impairment. Previous studies show that Hhcy also induces EC dysfunction, but it remains unknown whether A{beta} and homocysteine function through common molecular mechanisms. We tested the hypotheses that Hhcy exacerbates A{beta}-induced cEC DR4/5-mediated apoptosis, barrier dysfunction, and angiogenesis defects. This study was the first to demonstrate that Hhcy specifically potentiates A{beta}40-E22Q-mediated activation of the DR4/5-mediated extrinsic apoptotic pathway in cECs, including DR4/5 expression, caspase 8/9/3 activation, cytochrome-c release and DNA fragmentation. Additionally, we revealed that Hhcy intensifies the deregulation of the same cEC junction proteins mediated by A{beta}, precipitating BBB permeability. Furthermore, Hhcy and A{beta}40-E22Q, impairing VEGF-A/VEGFR2 signaling and VEGFR2 endosomal trafficking, additively decrease cEC angiogenic capabilities. Overall, these results show that the presence of the CV risk factor Hhcy exacerbates A{beta}-induced cEC apoptosis, barrier dysfunction, and angiogenic impairment. This study reveals specific mechanisms through which amyloidosis and Hhcy jointly operate to produce brain EC dysfunction and death, highlighting new potential molecular targets against vascular pathology in comorbid AD/CAA and Hhcy conditions.

neuroscience↗

Cholesterol-containing liposomes decorated with Au nanoparticles as minimal tunable fusion machinery

Membrane fusion is essential for the basal functionality of eukaryotic cells. In physiological conditions, fusion events are regulated by a wide range of specialized proteins, as well as by a finely tuned local lipid composition and ionic environment. SNARE proteins, for example, provide the mechanical energy necessary to achieve vesicle fusion in neuromediator release, and their action is assisted by other soluble proteins, membrane cholesterol, and calcium ions. Similar cooperative effects must be explored when considering synthetic approaches to achieve controlled and selective membrane fusion. Here we show that liposomes decorated with amphiphilic Au nanoparticles (AuLips) can act as minimal tunable fusion machinery. AuLips fusion is triggered by divalent ions, while the number of fusion events dramatically depends on, and can be finely tuned by, the liposome cholesterol content. Our results, obtained via a combination of experimental (Quartz-Crystal-Microbalance with Dissipation monitoring, Fluorescence assays, Small-Angle X-ray Scattering) and computational techniques (Molecular Dynamics with coarse-grained resolution), reveal new mechanistic details on the fusogenic activity of amphiphilic Au nanoparticles in synergy with membrane cholesterol, and demonstrate the ability of these synthetic nanomaterials to induce fusion regardless of the divalent ion used (Ca2+ or Mg2+). This evidence provides a novel contribution to the development of new artificial fusogenic agents for next-generation biomedical applications that require tight control of the rate of fusion events (e.g., targeted drug delivery).

biophysics↗

FDA-approved carbonic anhydrase inhibitors reduce Amyloid beta pathology and improve cognition, by ameliorating cerebrovascular health and glial fitness

Alzheimers disease (AD) is a devastating neurodegenerative disorder with no effective cure. Cerebrovascular and neurovascular pathology are early and causal hallmarks of AD, where cerebral amyloid angiopathy (CAA), the deposition of amyloid {beta} (A{beta}) at the cerebral vasculature, is present in about 90% of cases. Our previous work has uncovered the protective effect of carbonic anhydrase (CA) inhibition against A{beta}-mediated mitochondrial dysfunction, production of reactive oxygen species (ROS) and apoptosis in vascular, glial and neuronal cells in culture. Here, we tested for the first time in a transgenic model of AD and cerebrovascular amyloidosis, the TgSwDI mice, a therapeutic regimen employing the FDA-approved CA inhibitors (CAIs), methazolamide (MTZ) and acetazolamide (ATZ). These drugs are used in humans for glaucoma, high altitude sickness, and other disorders, and can cross the blood-brain barrier. We found that both CAIs were non- toxic, significantly reduced cerebral amyloidosis, vascular, microglial and astrocytic A{beta} accumulation, and ameliorated cognition. MTZ and ATZ treatment prevented caspase-3 activation in endothelial cells, microglia and astrocytes, reverted capillary constriction and microhemorrhages, reduced gliosis, and induced glial pro-clearance pathways, which are likely responsible for the reduction of A{beta} deposition. Notably, we unveiled a critical new druggable target, revealing that the mitochondrial isozyme CA-VB is specifically upregulated in TgSwDI mouse brains, as well as in human brains of CAA and AD (with CAA) patients. Importantly, A{beta} challenge induced CA-VB overexpression in human cerebral endothelial cells, and CA-VB silencing, mimicking CAIs effects, reduced A{beta}-mediated endothelial apoptosis. This work paves the way for the application of CAIs in clinical trials for AD and CAA and uncovers CA-VB as a mediator of cerebral amyloid toxicity.

neuroscience↗