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Pensalfini, A.

Publications and source records attributed to Pensalfini, A..

2 recordsLinked to original sources

Increased neuronal expression of the early endosomal adaptor APPL1 leads to endosomal and synaptic dysfunction with cholinergic neurodegeneration

Endosomal system dysfunction within neurons is a prominent early feature of Alzheimers disease (AD) pathology. Multiple AD risk factors are regulators of endocytosis and are known to cause hyper-activity of the early-endosome small GTPase rab5, resulting in neuronal endosomal pathway disruption and cholinergic neurodegeneration. Adaptor protein containing Pleckstrin homology domain, Phosphotyrosine binding domain, Leucine zipper motif (APPL1), an important rab5 effector protein and signaling molecule, has been shown in vitro to interface between endosomal and neuronal dysfunction through a rab5-activating interaction with the BACE1-generated C-terminal fragment of amyloid precursor protein (APP-{beta}CTF), a pathogenic APP fragment generated within endosomal compartments. To understand the contribution of APPL1 to AD-related endosomal dysfunction in vivo, we generated a transgenic mouse model over-expressing human APPL1 within neurons (Thy1-APPL1 mice). Strongly supporting the important endosomal regulatory roles of APPL1 and their relevance to AD etiology, Thy1-APPL1 mice develop enlarged neuronal early endosomes and increased synaptic endocytosis due to increased rab5 activation. We demonstrated pathophysiological consequences of APPL1 overexpression, including functional changes in hippocampal long-term potentiation (LTP) and long-term depression (LTD), degeneration of large projection cholinergic neurons of the basal forebrain, and impaired hippocampal-dependent memory. Our evidence shows that neuronal APPL1 elevation modeling its functional increase in the AD brain induces a cascade of AD-related pathological effects within neurons, including early endosome anomalies, synaptic dysfunction, and selective neurodegeneration. Our in vivo model highlights the contributions of APPL1 to the pathobiology and neuronal consequences of early endosomal pathway disruption and its potential value as a therapeutic target. Significance StatementNeuronal endosome dysfunction appears early in Alzheimers disease (AD) and is linked to memory loss. Genes and risk factors associated with AD often increase rab5 activity, a protein that disrupts endosomal signalling when hyperactivated. APPL1, a key rab5 partner, worsens this dysfunction via its interaction with APP-{beta}CTF, a protein fragment associated with AD. To explore APPL1s role, we created a genetically modified mouse that overexpresses APPL1 in neurons. This model provides the first in vivo evidence that APPL1 overexpression triggers key AD-like effects: rab5 hyperactivation, enlarged early endosomes, loss of cholinergic neurons, reduced synaptic plasticity in memory-related brain regions, and memory deficits. These findings highlight APPL1s role in AD pathogenesis and its potential as a therapeutic target.

neuroscience↗

Intracellular injection of brain extracts from Alzheimer's disease patients trigger unregulated Ca2+ release from intracellular stores that hinders cellular bioenergetics

Strong evidence indicates that amyloid beta (A{beta}) inflicts its toxicity in Alzheimers disease (AD) by promoting uncontrolled elevation of cytosolic Ca2+ in neurons. We have previously shown that synthetic A{beta}42 oligomers stimulate abnormal intracellular Ca2+ release from the endoplasmic reticulum stores, suggesting that a similar mechanism of Ca2+ toxicity may be common to the endogenous A{beta}s oligomers. To investigate this possibility, we use human postmortem brain extracts from control and AD-affected patients and test their ability to trigger Ca2+ fluxes when injected intracellularly into Xenopus oocytes. Immunological characterization of samples from AD patients revealed elevated content of soluble A{beta} oligomers, detected by the conformation-dependent OC-antibody, whereas no immunoreactivity was detected in the normal samples. Intracellular injection of brain extracts from control patients failed to trigger detectable changes in intracellular Ca2+. Conversely, brain extracts from AD patients triggered Ca2+ events consisting of local and global Ca2+ fluorescent transients rising within few seconds after injection and persisting for several seconds. Pre-incubation of brain extracts with the conformation specific OC antibody completely suppressed brain extract ability to trigger cytosolic Ca2+ events. Comparison of the elementary events triggered by brain extracts and synthetic A{beta}42 oligomer showed comparable temporal evolution and amplitudes to events triggered by direct injection of IP3. Moreover, bath application of caffeine reversibly inhibited local and global Ca2+ signals in all the samples confirming the involvement of Ca2+ release from the ER. Analysis of the recorded Ca2+ fluorescence signals by computational modeling allowed quantification of the IP3 and Ca2+ generated by each sample. The model further shows that the abnormal increase of Ca2+ and IP3 may affect mitochondrial bioenergetics. These results, supports the hypothesis that endogenous amyloid oligomer contained in neurons of AD-affected brains may represent the toxic agents responsible for neurons malfunctioning and death, associated with the disruption of neuronal Ca2+ homeostasis.

cell biology↗