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Biology subjects

Calvert, M. E.

Publications and source records attributed to Calvert, M. E..

3 recordsLinked to original sources

Transferrin receptor-mediated transport at the blood-brain barrier is elevated in early development but maintained across adult aging

Transferrin receptor (TfR)-mediated transcytosis across the blood-brain barrier (BBB) is a promising strategy to improve delivery of biologics to the central nervous system (CNS). However, it remains unclear whether age and aging-related diseases impact TfR expression and/or BBB transport capacity. Here, we used the TfR-targeted antibody transport vehicle (ATVTfR) to enhance CNS delivery in healthy mice and in the 5xFAD mouse model of Alzheimers disease (AD). Healthy neonates exhibited the highest vascular TfR expression and ATVTfR brain exposure, whereas BBB transport capacity remained stable across adulthood. Additionally, neither TfR expression nor ATVTfR brain uptake changed significantly in 5xFAD mice. Further, vascular TfR expression in AD patient brains was similar to age-matched controls, suggesting that TfR transport may be conserved for AD in humans. The elevated TfR-mediated brain delivery observed in early mouse development suggests the potential of added efficacy in utilizing TfR platforms for the treatment of early childhood diseases. Preservation of ATVTfR transport in adult mice across healthy aging and in an AD model supports continued application of TfR platforms in age-related diseases.

neuroscience↗

Novel high-content and open-source image analysis tools for profiling mitochondrial morphology in neurological cell models

Mitochondria undergo dynamic morphological changes depending on cellular cues, stress, genetic factors, or disease. The structural complexity and disease-relevance of mitochondria have stimulated efforts to generate image analysis tools for describing mitochondrial morphology for therapeutic development. Using high-content analysis, we measured multiple morphological parameters and employed unbiased feature clustering to identify the most robust pair of texture metrics that described mitochondrial state. Here, we introduce a novel image analysis pipeline to enable rapid and accurate profiling of mitochondrial morphology in various cell types and pharmacological perturbations. We applied a high-content adapted implementation of our tool, MitoProfilerHC, to quantify mitochondrial morphology changes in i) a mammalian cell dose response study and ii) compartment-specific drug effects in primary neurons. Next, we expanded the usability of our pipeline by using napari, a Python-powered image analysis tool, to build an open-source version of MitoProfiler and validated its performance and applicability. In conclusion, we introduce MitoProfiler as both a high-content-based and an open-source method to accurately quantify mitochondrial morphology in cells, which we anticipate to greatly facilitate mechanistic discoveries in mitochondrial biology and disease.

cell biology↗

SARM1 activation and its downstream pathways are distinct in neuronal compartments

Sterile alpha and TIR motif containing 1 (SARM1) is a critical regulator of axon degeneration that acts through hydrolysis of NAD+ following injury. Recent work has defined the mechanisms underlying SARM1s catalytic activity and advanced our understanding of SARM1 function in axons, yet the role of SARM1 signaling in other compartments of neurons is still not well understood. Here we show in cultured hippocampal neurons that endogenous SARM1 is present in axons, dendrites and cell bodies and that direct activation of SARM1 by the neurotoxin Vacor causes not just axon degeneration, but degeneration of all neuronal compartments. In contrast to the axon degeneration pathway defined in dorsal root ganglia (DRGs), SARM1-dependent hippocampal axon degeneration in vitro is not sensitive to calpain inhibition whereas dendrite degeneration downstream of SARM1 is calpain-dependent in this cell type. This data indicates SARM1 plays a critical role in neurodegeneration outside of axons and elucidates divergent pathways leading to degeneration in hippocampal axons and dendrites.

neuroscience↗