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Rasia-Filho, A. A.

Publications and source records attributed to Rasia-Filho, A. A..

2 recordsLinked to original sources

Interregional human assembloids recapitulate fetal brain morphologies and enhance neuronal complexity

Neuronal morphology governs how neurons connect, integrate, and process information, offering critical insights into the functional architecture of the brain. Characterizing the three-dimensional (3D) morphology of individual neurons is key not only for mapping circuit connectivity but also for understanding the cellular diversity that emerges during development. Neural organoids are valuable models of human brain development and disease, yet their morphological complexity remains poorly characterized despite advances in single-cell transcriptomics. Here, we use 3D confocal imaging and manual reconstruction of 735 neurons to analyze forebrain (dorsal and ventral) and thalamic (dorsal and ventral) organoids, as well as forebrain, thalamic, and corticothalamic assembloids. We find that organoids and assembloids exhibit distinct morphologies resembling fetal brain neurons, including immature pyramidal-like, double-bouquet, and bushy-like neurons. Interregional assembloids show greater neuronal morphological complexity than individual organoids, with more extensive dendritic branching, longer projections, and diverse soma shapes. Corticothalamic assembloids further display features of emerging connectivity. We observe dendritic spines with excitatory and inhibitory profiles and varicosities, indicative of maturing synaptic architecture. Together, our work makes an initial effort in describing the diversity of neuronal morphology in human neural organoids and assembloids. It further establishes structural phenotyping as a critical dimension for validating human neural models and underscores their value for modeling morphofunctional disorders.

neuroscience↗

SEX-RELATED GENE EXPRESSION IN THE POSTERODORSAL MEDIAL AMYGDALA OF CYCLING FEMALE RATS ALONG WITH PROLACTIN MODULATION OF LORDOSIS BEHAVIOR

The rat posterodorsal medial amygdala (MePD) is sexually dimorphic, has a high concentration of receptors for gonadal hormones and prolactin (PRL), and modulates reproduction. To unravel genetic and functional data for this relevant node of the social behavior network, we studied the expression of ER, ER{beta}, GPER1, Kiss1, Kiss1R, PRGR, PRL, PRLR, EGR1, JAK2, STAT5A, and STAT5B in the MePD of males and females along the estrous cycle using the RT-qPCR technique. We also investigated whether PRL in the MePD would affect the sexual behavior display of proestrus females by microinjecting saline, the PRL receptor antagonist Del1-9-G129R-hPRL (1 {micro}M and 10 {micro}M), or PRL (1 nM) and Del1-9-G129R-hPRL (10 {micro}M) 3h before the onset of the dark-cycle period. The estrogen-dependent lordosis behavior, indicative of sexual receptivity of proestrus females, was recorded and compared before (control) and after (test) microinjections in these groups. Sex differences were found in the right and left MePD gene expression. ER and Kiss1R, as well as PRL, Short PRLR, and STAT5B expression, is higher in cycling females than males. Kiss1 expression is higher in males than females, and GPER1 is higher during diestrus than proestrus. Furthermore, Del1-9-G129R-hPRL in the MePD significantly reduced the full display and quotient of lordosis in proestrus females, an effect restored by the co-microinjection of PRL. In conjunction, the expression of studied genes showed specific sex and estrous cycle phase features while, in proestrus, PRL action in the MePD plays an essential role in the display of lordosis during the ovulatory period. HighlightsO_LIThe MePD expression of Kiss1 is higher in males than females. C_LIO_LIER and Kiss1R expression is higher in cycling females than males. C_LIO_LIPRL, Short PRLR, and STAT5B expression is higher in cycling females than males. C_LIO_LIGPER1 expression is higher during diestrus than in proestrus. C_LIO_LIDel1-9-G129R-hPRL action in the MePD reduced lordosis quotient during proestrus. C_LI

neuroscience↗