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Unkel, M.

Publications and source records attributed to Unkel, M..

2 recordsLinked to original sources

A minimum threshold for myelination of pyramidal cells in human and mouse neocortex

Neocortical pyramidal neurons are frequently myelinated. Diversity in the topography of axonal myelination in the cerebral cortex has been attributed to a combination of electrophysiological activity, axonal morphology, and neuronal-glial interactions. Previously, we showed that axonal segment length and calibre are critical determinants of fast-spiking interneuron myelination (Stedehouder, J. et al (2019). However, the factors that determine the myelination of individual axonal segments along neocortical pyramidal neurons remain largely unexplored. Here, we used structured illumination microscopy and cell type-specific manipulations to examine the extent to which axonal morphology determines the topography of axonal myelination in mouse neocortical pyramidal neurons. We found that, unlike what was determined for fast-spiking interneurons, the joint combination of axonal calibre and interbranch distance does not predict axonal myelination in pyramidal neurons, rather it provides a minimum threshold for myelination; pyramidal neurons with an axon calibre and interbranch distance lower than 0.24 {micro}m and 19 {micro}m, respectively, are almost never myelinated. Moreover, we further confirmed that these findings in mice also extend to human neocortical pyramidal cell myelination, suggesting that this mechanism is evolutionarily conserved. Taken together, our findings suggest that axonal morphology is highly deterministic of the topography and cell-type specificity of neocortical myelination.

neuroscience↗

Rapid specification of human pluripotent stem cells to functional astrocytes

Astrocytes are essential for the formation and maintenance of neural networks through metabolic support, facilitation of synaptic function, and optimization of electrophysiological activity. However, a major technical challenge for investigating astrocyte function and disease-related pathophysiology has been the limited ability to obtain functional human astrocytes. Here we present a novel method to efficiently differentiate human pluripotent stem cell (hPSC)-derived neural progenitors to functional astrocytes in 28 days using a culture medium containing leukemia inhibitory factor (LIF) and bone morphogenetic protein 4 (BMP4). This approach yields highly pure populations of astrocytes expressing canonical astrocyte markers, which we confirmed by immunofluorescence, flow cytometry and RNA sequencing. Human PSC-derived astrocytes efficiently buffer glutamate and robustly support neural network activity. Co-cultures of hPSC-derived astrocytes and neurons on multi-electrode arrays generated robust network activity within 2 days and synchronous network bursts after 6 days. Whole cell patch-clamp recordings revealed an increased frequency of postsynaptic currents in human hPSC-derived neurons co-cultured with hPSC-derived versus primary rodent astrocytes, consistent with a corresponding increase in synapse density. Furthermore, hPSC-derived astrocytes retained their hominid morphology when transplanted into a mouse brain. In conclusion, we present a novel protocol to obtain functional astrocytes from human pluripotent stem cells, providing a platform for investigating human astrocyte function and neuronal-glial interactions.

neuroscience↗