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Mui, M.

Publications and source records attributed to Mui, M..

2 recordsLinked to original sources

Multiphasic myelination and dendritic growth modulate qMRI signals in human visual cortex.

How does myelin develop in human visual cortex? By combining immunohistochemistry with in vivo and postmortem magnetic resonance imaging of longitudinal relaxation rate (R1), which increases with myelin content, we find that myelin and R1 increase across development but follow distinct trajectories. Immunohistochemistry reveals two phases of myelination: an infant phase of limited oligodendrogenesis, with myelin restricted to deep cortical layers, followed by widespread myelination across all layers during childhood. Cortical R1 also increases across development and correlates with myelin by childhood. However, in infancy, R1 increases outpace myelin growth and instead tracks dendritic arborization, indicating that the microstructural drivers of R1 change across development. We hypothesize that deep layer myelination in infancy contributes to early visual function whereas later myelination of superficial layers enables prolonged cortical plasticity and learning of complex visual behaviors.

neuroscience↗

Connexin50 hemichannels are opened by CO2: implications for lens physiology

Connexin50 (Cx50) is expressed in lens fibre cells. As mutations of Cx50 cause cataracts its physiological role in the lens must be important. We have used recent cryoEM structures of Cx50 and the predictive power of Alphafold3 to identify the presence of a carbamylation motif, originally described in Cx26, that suggests that Cx50 might be CO2 sensitive. By expressing the naturally truncated version of Cx50 in HeLa cells and utilising coexpression of genetically encoded sensors iGluSnFr or eLACCO1.1, we have demonstrated the CO2-dependent opening of Cx50 hemichannels, and their permeability to lactate and glutamate. By mutating the two key residues of the carbamylation motif, K105 and K140, we have shown that the motif is required for CO2 sensitivity. Mutations of the residue V44 cause cataracts and these mutations abolish the CO2 sensitivity of Cx50. Using Fluo-4 Ca2+ imaging with lens slices we have demonstrated CO2-dependent Ca2+ influxes into fibre cells that are blocked by La3+ and exhibit the same CO2 dose dependence as Cx50 hemichannels. Lens fibre cells respond to glutamate via NMDA receptors and our data shows that the Ca2+ influx to raised PCO2 partially depends on NMDA receptor activation. We hypothesize that CO2-dependent gating of Cx50, subsequent release of glutamate resulting in the downstream activation of glutamate receptors, and the consequent alterations in transmembrane Na+ fluxes, provide homeostatic control of the microcirculation system that is critical for lens health.

cell biology↗