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d'Abramo, C.

Publications and source records attributed to d'Abramo, C..

2 recordsLinked to original sources

AAV-mediated peripheral single chain variable fragments administration to reduce cerebral tau in adult P301S transgenic mice: mono- vs combination therapy

Tau is a primary target for immunotherapy in Alzheimers disease. Recent studies have shown the potential of anti-tau fragment antibodies in lowering pathological tau levels in vitro and in vivo. Here, we compared the effects of single-chain variable fragments (scFv) derived from the well-characterized monoclonal antibodies PHF1 and MC1. We used adeno-associated virus 1 (AAV1) to deliver scFvs to skeletal muscle cells in eight-week-old P301S tau transgenic mice. We evaluated motor and behavioral functions at 16 and 23 weeks of age and measured misfolded, soluble, oligomeric and insoluble brain tau species. Monotherapy with scFv-MC1 improved motor and behavioral functions more effectively than scFv-PHF1 or combination therapy. Brain glucose metabolism also benefited from scFv-MC1 treatment. Surprisingly, combining scFvs targeting early (MC1) and late (PHF1) tau modifications did not produce additive or synergistic effects. These results confirm that intramuscular AAV1-mediated scFv-MC1 gene therapy holds promise as a potential treatment for Alzheimers disease. Our findings also suggest that combining scFvs targeting different tau epitopes may not necessarily enhance efficacy if administered together in a prevention paradigm. Further research is needed to explore whether other antibodies combinations and/or administration schedules could improve the efficacy of scFv-MC1 alone. Graphical abstract/eTOC synopsisKatel and colleagues show that peripheral vectorized scFvMC1 (in monotherapy) reduces pathological tau species in tau transgenic mice more efficiently than in combination with scFv-PHF1. The authors observed improved motor and behavioral functions together with increased brain glucose metabolism in scFv-MC1-treated mice. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=136 SRC="FIGDIR/small/638144v1_ufig1.gif" ALT="Figure 1"> View larger version (35K): org.highwire.dtl.DTLVardef@7edcccorg.highwire.dtl.DTLVardef@d1fc50org.highwire.dtl.DTLVardef@bf6f8org.highwire.dtl.DTLVardef@1832331_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗

Oxidative stress-induced MMP- and γ-secretase-dependent VE-cadherin processing is modulated by the proteasome and BMP9/10

Classical cadherins, including vascular endothelial (VE)-cadherin, are targeted by matrix metalloproteinases (MMPs) and {gamma}-secretase during adherens junction (AJ) disassembly, a mechanism that might have relevance for endothelial cell (EC) integrity and vascular homeostasis. Here, we show that oxidative stress triggered by H2O2 exposure induced efficient VE-cadherin proteolysis by MMPs and {gamma}-secretase in human umbilical endothelial cells (HUVECs). The cytoplasmic domain of VE-cadherin produced by {gamma}-secretase, VE-Cad/CTF2 - a fragment that has eluded identification so far - could readily be detected after H2O2 treatment. VE-Cad/CTF2, released into the cytosol, was tightly regulated by proteasomal degradation and was sequentially produced from an ADAM10/17-generated C-terminal fragment, VE-Cad/CTF1. Interestingly, BMP9 and BMP10, two circulating ligands critically involved in vascular maintenance, significantly reduced VE-Cad/CTF2 levels during H2O2 challenge, as well as mitigated H2O2-mediated actin cytoskeleton disassembly during VE-cadherin processing. Notably, BMP9/10 pretreatments efficiently reduced apoptosis induced by H2O2, favoring endothelial cell recovery. Thus, oxidative stress is a trigger of MMP- and {gamma}-secretase-mediated endoproteolysis of VE-cadherin and AJ disassembly from the cytoskeleton in ECs, a mechanism that is negatively controlled by the EC quiescence factors, BMP9 and BMP10.

cell biology↗