bioRxiv Science⌕ Search

Biology subjects

Gonzalez-Diaz, A.

Publications and source records attributed to Gonzalez-Diaz, A..

3 recordsLinked to original sources

A human neuronal model of sporadic Alzheimer's disease induced by FBXO2 downregulation shows A β aggregation, tau hyperphosphorylation and functional network impairment

Sporadic Alzheimers disease (sAD) arises from a complex interplay between genetic and environmental factors that remains poorly understood, making it challenging to develop accurate cell models. To address this problem, by hypothesing that the early disease sAD states can be characterised by transcriptomic fingerprints, we assessed the effect on A{beta} aggregation in human neuroblastoma cells a set of genes obtained by analysing snRNA-seq data from post-mortem AD patients. We then validated the most effective genes in human iPSC-derived cortical neurons, and selected FBXO2, a gene encoding a subunit of the ubiquitin protein ligase complex SCF, for further analysis. We found that early downregulation of FBXO2 in human iPSC-derived cortical neurons resulted in A{beta} aggregation, tau hyperphosphorylation, and structural and functional neuronal network impairment. Based on these results, we report a neuronal sAD model (FBXO2 KD sAD) that recapitulates a set of molecular hallmarks of sAD. We suggest that this strategy can be expanded towards the generation of panels of preclinical stem cell-derived models that recapitulate the molecular complexity of the broad spectrum of AD patients.

neuroscience↗

In situ generation of Aβ42 oligomers via secondary nucleation triggers neurite degeneration and synaptic dysfunction in human iPSC-derived glutamatergic neurons

The aggregation of A{beta}42 into misfolded oligomers is a central event in the pathogenesis of Alzheimers disease. In this study, we aimed to develop a robust experimental system that recapitulates A{beta}42 oligomerization in living cells to gain insight into their neurotoxicity and to provide a platform to characterize the effects of inhibitors of this process. Our strategy is based on the in situ generation of A{beta}42 oligomers via secondary nucleation by repeatedly treating the cells with A{beta}42 monomers in the presence of pre-formed A{beta}42 fibrils. This approach enables an accurate control over the levels of on-pathway soluble A{beta}42 oligomers and cell-associated aggregates, as well as the study of their neurotoxic effects. By implementing this approach in human glutamatergic neurons derived from induced pluripotent stem cells (iPSCs), we were able to replicate key aspects of Alzheimers disease, including neurite degeneration and synaptic dysfunction. Using BRICHOS, a molecular chaperone that specifically inhibits secondary nucleation, we confirmed that aggregation in this system occurs through secondary nucleation, and that quantitative parameters for comparing potential A{beta}42 aggregation inhibitors can be obtained. Overall, our results demonstrate that by in situ generation of on-pathway A{beta}42 oligomers, one can obtain translational cellular models of AD to bridge the gap between basic research and clinical applications.

cell biology↗

TNFα-driven Aβ aggregation, synaptic dysfunction and hypermetabolism in human iPSC-derived cortical neurons

Alzheimers disease (AD) patients exhibit an increased load of A{beta} aggregates in the brain parenchyma. The neurotoxic nature of these aggregates has been underscored by recent advances in therapies aimed at reducing their load. To make further progress towards the development of increasingly effective treatments, there is a still largely unmet need for reliable cell models that comprehensively recapitulate aggregate-driven AD pathology. Here, we report a robust and scalable pipeline for generating human iPSC-derived cortical neurons that display A{beta} aggregates in their axonal projections. This phenotype is caused by a repeated dosage of tumour necrosis factor-alpha (TNF) to simulate the chronic inflammatory environment characteristic of AD and enhanced in neurons carrying the Swedish mutation. In association with the increased A{beta} deposits in the cell bodies, this cell model exhibits other key hallmarks of AD, including structural alterations of synapses, electrophysiological asynchronous hyperactivity, and hypermetabolism. Overall, these results illustrate how repeated TNF treatment models central aspects of AD pathology, and provides a platform that could be used for facilitating the translation of potential drugs to clinical applications.

cell biology↗