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van Waardenberg, A. J.

Publications and source records attributed to van Waardenberg, A. J..

2 recordsLinked to original sources

Targeting intracellular tau with a gene-encoded single-chain antibody promotes neuronal homeostasis and ameliorates tau pathology

The intraneuronal aggregation of tau is a key driver of pathogenesis in Alzheimer's disease and other tauopathies. The positively charged proline-rich region and microtubule-binding domain of tau are important for tubulin binding which enables axonal transport in physiological conditions. In disease, however, the positively charged repeat domains of such regions become exposed, facilitating tau-tau aggregation and other pathogenic tau-protein interactions which leads to neuronal dysfunction. Here, we generated a polyanionic peptide to electrostatically interact with tau and fused it to an inert single-chain variable fragment (scFv) antibody for improved peptide half-life and downstream intraneuronal expression. The resultant polyanionic peptibody, ACR12, was investigated in vitro and in tau transgenic mice for ability to prevent tau aggregation and associated disease phenotypes. In human neuroblastoma cells, ACR12 was stably expressed within the cytoplasm where it successfully engaged intracellular tau. DNA encoding ACR12 was then packaged into a brain-penetrant Adeno-associated virus, AAV-PHP.eB, for intravenous delivery into K3 tau transgenic mice. Such treatment facilitated long-term intraneuronal expression of ACR12 and reduced total and phosphorylated tau in the brain. ACR12 treatment in female K3 mice also restored deregulated neuronal proteins to wild-type levels. This study highlights the role of positively charged domains in tau pathogenesis and demonstrates the therapeutic utility of electrostatic tau interactors.

neuroscience↗

Saturated fatty acid-Coenzyme A supplementation restores neuronal energy levels and protein homeostasis in hereditary spastic paraplegia

Mitochondrial ATP production is fuelled by a fatty acid flux generated by phospholipase and triglyceride lipases in metabolically demanding tissues such as heart and liver, while the brain has long been believed to use almost solely glucose for energy. Phospholipase A1 enzyme DDHD2 is a major triglyceride lipase in the brain, and the loss of DDHD2 function results in a saturated free fatty acid (sFFA) imbalance and lipid droplet (LD) accumulation in the brain. The LD accumulation in neurons has been enigmatic as LDs are mainly considered to serve as a fuel storage. Here, we demonstrate that the loss of DDHD2 results in a mitochondrial respiratory dysfunction that leads to a significant decrease in ATP production and acetyl coenzyme A levels in neurons, even when the glycolytic breakdown of glycose occurs normally. Loss of DDHD2 also leads to a presynaptic defect as well as an imbalance in the global protein homeostasis in the neurons. These defects were rescued by external supplementation of the sFFA myristic acid coupled with its cofactor coenzyme A (Myr-CoA), indicating sFFA fuelling for neuronal {beta}-oxidation. We have thus discovered that the sFFAs released by the activity of DDHD2 play a central role in providing energy to fuel synaptic function. One Sentence SummaryFree fatty acids released by DDHD2 activity play a central role in maintaining neuronal energy levels and synaptic function.

neuroscience↗