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Paeger, L.

Publications and source records attributed to Paeger, L..

3 recordsLinked to original sources

Axonal Branch Points of Parvalbumin Interneurons are Focal Sites of Tau-Induced Degeneration

Tau aggregation, a defining feature of tauopathies, commonly appears as neuropil threads within neurites including axons. However, the affected neuronal populations and the spatial organization of axonal vulnerability remain poorly defined. Here, following identification of Tau accumulation in parvalbumin (PV) interneuron axons in primary tauopathy patients, we generated a P301S Tau model targeted to PV interneurons to track the structural integrity of their neurites and somas. We observed neuronal loss alongside axonal dystrophy, with focal swellings forming preferentially at axonal bifurcations. This spatial enrichment exceeded chance levels, and local axonal geometry predicted swelling localization. Longitudinal in vivo imaging revealed that bifurcation-associated swellings progressed to axonal severing. Analogous bifurcation-associated dystrophies were present in PV axons in human primary tauopathy tissue. These findings indicate that axonal branch geometry shapes the spatial pattern of Tau-induced neurodegeneration and identify PV axonal branch points as sites of pathology in mouse and human tauopathy.

neuroscience↗

A reproducible human brain tissue model to study physiological and disease-associated microglia phenotypes

Stem-cell-based in vitro models offer promising potential to elucidate human brain cell functions and interactions under physiological and pathological conditions. However, harnessing this potential is impaired by low reproducibility, maturity, or cell-type diversity of existing models. Especially, prolonged incorporation of mature microglia and studies of neuroinflammation have proven challenging. Here, we developed a 3D cortical brain tissue model (3BTM) containing neurons, astrocytes, and microglia with high reproducibility, maturity, and viability. 3BTMs show morphological, functional, and proteomic maturation of all cell types, leading to high similarity to their in vivo counterparts. Incorporated microglia survive for over 6 months and display mature morphology, functions, and gene expression. Importantly, when engineered to model Alzheimers disease pathology, 3BTMs recapitulate key disease hallmarks including amyloid deposition, increased phospho-Tau levels, and neuroinflammation, with microglia shifting their transcriptional landscape to disease-relevant signatures. Together, our model offers unprecedented possibilities for studying physiological and pathological states of human brain tissue and translational applications.

neuroscience↗

Neuronal and oligodendroglial but not astroglial tau translates to in vivo tau-PET signals in primary tauopathies

Tau-PET receives growing interest as an imaging biomarker for the 4-repeat tauopathy progressive supranuclear palsy (PSP). However, the translation of in vitro 4R-tau binding to in vivo tau-PET signals is still unclear. Therefore, we conducted a longitudinal [18F]PI-2620 PET/MRI study in a 4-repeat-tau mouse model (PS19) and found elevated [18F]PI-2620 PET signal in the presence of high neuronal tau. Cell sorting after radiotracer injection in vivo revealed higher tracer uptake in single neurons compared to astrocytes of PS19 mice. Regional [18F]PI-2620 tau-PET signals during lifetime correlated with abundance of fibrillary tau in subsequent autopsy samples of PSP patients and disease controls. In autoradiography, tau-positive neurons and oligodendrocytes with high AT8 density but not tau-positive astrocytes were the driver of [18F]PI-2620 autoradiography signals in PSP. In summary, neuronal and oligodendroglial tau constitutes the dominant source of tau-PET radiotracer binding in 4-repeat-tauopathies, yielding the capacity to translate to an in vivo signal.

neuroscience↗