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Mirhosseiniardakani, S.

Publications and source records attributed to Mirhosseiniardakani, S..

2 recordsLinked to original sources

Comparative Cilia Analysis in the Cerebral Cortices of Turtles, Mice, and Macaques

Primary cilia are centriole-derived sensory organelles found in most vertebrate cells including neurons. In the mouse neocortex, the primary cilia of pyramidal neurons are found to orient predominantly toward the pia, reflecting a reverse movement that occurs during postnatal neuronal repositioning. This study compared cilia orientation in principal excitatory neurons in the cerebral cortex across turtles, mice, and macaques to identify patterns to infer mechanisms of cortical evolution. We first developed custom MATLAB Apps to facilitate the fast identification and statistical analyses of cilia orientation. We found that generally the primary cilia of principal neurons in sparse inside-out laminated regions, including the macaque and mouse neocortex, macaque CA1, mouse entorhinal cortex and neighboring regions, and mouse piriform cortex layer III, orient toward the pia. In contrast, primary cilia in compact laminae of these species, including the macaque and mouse dentate gyrus (DG), macaque CA3, mouse piriform cortex layer II, and turtle lateral cortex manifest opposite orientations, positioning perpendicular to the laminae. These data suggest that over the course of cortical evolution, primary cilia in principal neurons evolve from initially having no preferred orientation to becoming increasingly oriented toward the pial surface. We propose a working model for cortical evolution: the placement of principal neurons progresses from minimal migration in lower vertebrates to forward migration in higher species, and ultimately to pronounced reverse soma movement in higher inside-out laminated cortices, driven by the accumulation of large neuronal populations in the outer layers after completing radial migration.

neuroscience↗

Reelin Controls the Directional Orientation, Apical Localization and Length of Primary Cilia in Principal Neurons in the Cerebral Cortex

The primary cilia of pyramidal neurons in inside-out laminated regions orient predominantly toward the pia, reflecting reverse soma movement during postnatal neurodevelopment. However, the mechanisms underlying the directional cilia orientation are unknown. Here we show that the primary cilia of pyramidal neurons are localized near the base of the apical dendrites and aligned on the nuclear side opposite to the axon initial segment (AIS). However, this pattern is not observed in atypical pyramidal neurons in the deep neocortex, excitatory neurons in non-laminated regions, interneurons, or astrocytes, where cilia are irregularly positioned around the nuclei and lack preferred orientation. In Reelin-deficient mice (reeler), the directional orientation and apical location of cilia in late-born neocortical and CA1 neurons are disrupted. However, the initial impairments are partially corrected during postnatal development, along with a realignment of apical-basal orientation. In contrast, loss of Reelin drastically disrupts the directional orientation of cilia in early-born neocortical neurons and principal neurons in evolutionarily conserved cortical regions, which lack postnatal correction. Consistently, their cilia do not preferably localize to the apical side. Additionally, Reelin deficiency increases the cilia length of principal neurons across the cerebral cortex at a developmental stage when cilia stabilize in wild-type mice, but this effect is not observed in interneurons, astrocytes, or excitatory neurons in non-laminated regions. Together, Reelin controls the directional orientation, apical localization, and length of primary cilia in principal neurons in the cerebral cortex, underscoring the cilium as a key apical domain particularly prominent in late-born neurons.

neuroscience↗