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Mandell, J. W.

Publications and source records attributed to Mandell, J. W..

3 recordsLinked to original sources

Structural and functional damage to neuronal nuclei caused by extracellular tau oligomers

INTRODUCTIONNeuronal nuclei are normally smoothly surfaced. In Alzheimers disease (AD) and other tauopathies, though, they often develop invaginations. We investigated mechanisms and functional consequences of neuronal nuclear invagination in tauopathies. METHODSNuclear invagination was assayed by immunofluorescence in brain, and in cultured neurons before and after extracellular tau oligomers (xcTauO) exposure. Nucleocytoplasmic transport was assayed in cultured neurons. Gene expression was investigated using nanoString nCounter technology and qRT-PCR. RESULTSInvaginated nuclei were twice as abundant in human AD as in cognitively normal adults, and were increased in mouse neurodegeneration models. In cultured neurons, nuclear invagination was induced by xcTauOs by an intracellular tau-dependent mechanism. xcTauOs impaired nucleocytoplasmic transport, increased histone H3 trimethylation at lysine 9 and altered gene expression, especially by increasing tau mRNA. DISCUSSIONxcTauOs may be a primary cause of nuclear invagination in vivo, and by extension, impair nucleocytoplasmic transport and induce pathogenic gene expression changes.

neuroscience↗

Localization, induction, and cellular effects of tau-phospho-threonine 217

IntroductionTau phosphorylation at T217 is a promising AD biomarker, but its functional consequences were unknown. MethodsHuman brain and cultured mouse neurons were analyzed by immunoblotting and immunofluorescence for total tau, taupT217, taupT181, taupT231 and taupS396/pS404. dSTORM super resolution microscopy was used to localize taupT217 in cultured neurons. EGFP-tau was expressed in fibroblasts as wild type and T217E pseudo-phosphorylated tau, and fluorescence recovery after photobleaching (FRAP) reported tau turnover rates on microtubules. ResultsIn brain, taupT217 appears in neurons at Braak stages I-II, becomes more prevalent later and co-localizes partially with other phospho-tau epitopes. In cultured neurons taupT217, is increased by extracellular tau oligomers (xcTauOs), and is associated with developing post-synaptic sites. FRAP recovery was fastest for EGFP-tauT217E. ConclusionTaupT217 increases in brain as AD progresses and is induced by xcTauOs. Post-synaptic taupT217 suggests a role for T217 phosphorylation in synapse impairment. T217 phosphorylation reduces taus affinity for microtubules.

neuroscience↗

A patient-designed tissue-engineered model of the infiltrative glioblastoma microenvironment

Glioblastoma is an aggressive brain cancer characterized by diffuse infiltration. Infiltrated glioma cells persist in the brain post-resection where they interact with glial cells and experience interstitial fluid flow. We recreate this infiltrative microenvironment in vitro based on resected patient tumors and examine malignancy metrics (invasion, proliferation, and stemness) in the context of cellular and biophysical factors and therapies. Our 3D tissue-engineered model comprises patient-derived glioma stem cells, human astrocytes and microglia, and interstitial fluid flow. We found flow contributes to all outcomes across seven patient-derived lines, and glial effects are driven by CCL2 and differential glial activation. We conducted a six-drug screen using four outcomes and find expression of putative stemness marker CD71, opposed to viability IC50, significantly predicts murine xenograft survival. Our results dispute the paradigm of viability as predictive of drug efficacy. We posit this patient-centric, infiltrative tumor model is a novel advance towards translational personalized medicine.

bioengineering↗