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Breunig, J.

Publications and source records attributed to Breunig, J..

3 recordsLinked to original sources

Dynamin 2–dependent endocytosis differentially regulates ligand and receptor contributions to Notch signaling during neural precursor cell fate determination

A critical event in the development of the highly structured cerebral cortex is the appropriate generation of differentiated daughter cell populations from asymmetric precursor cell divisions. Internalization of extracellular receptors and ligands in the process of endocytosis is key to the establishment of asymmetry. However, the detailed mechanisms mediating this exchange are incompletely understood. The dynamin family of membrane remodeling GTPases is considered critical for many forms of clathrin-mediated endocytosis (CME) but its role in brain development is unexplored. Here we found that dynamin 2 (Dnm2), a protein involved in CME through vesicle release from the plasma membrane, is essential for the maintenance of neural stem cells. Conditional deletion of Dnm2 leads to early exhaustion of neural precursor cells and premature neurogenesis, resulting in gross structural abnormalities, periventricular hemorrhaging and increased perinatal mortality. Notably, Notch ligands accumulate at the cell surface and cleaved NICD is reduced in neural stem cells, consistent with impaired ligand-mediated activation. In contrast, inhibition of CME in receptor-expressing cells increases cell autonomous Notch signaling, likely by promoting receptor accumulation at the plasma membrane. Further, dynamin 1, 2, and 3 can rescue loss of Dnm2 to different extents. Taken together, these findings reveal that Dnm2 is the essential isoform for physiological non-cell autonomous Notch-mediated neural stem cell maintenance, and that CME exerts fundamentally distinct roles in Notch signaling, promoting ligand activity while restricting receptor signaling through control of surface receptor abundance.

Developmental Biology↗

The Role of Supraoptic Hypothalamic Arginine Vasopressin Neurons in Aging-Associated Water Balance and Thermoregulatory Deficits

Aging disrupts physiological homeostasis, impairing thermoregulation, metabolism, and water balance, but the underlying neural mechanisms remain unclear. Here, we identify arginine vasopressin (AVP) neurons in the supraoptic nucleus (SON) of the hypothalamus as a critical driver of these changes. Using single-nucleus RNA-sequencing of the anterior hypothalamus in young and aged mice, we found Avp to be one of the most upregulated neuronal transcripts with age. Aged SONAVP neurons displayed enlarged size and heightened excitability, features consistent with hyperactivity. Functionally, chemogenetic activation of SONAVP neurons in young mice reproduced aging-associated phenotypes including hypothermia, reduced energy expenditure, and suppressed water intake. Conversely, knockdown of Avp in the SON of aged mice restored water balance, partially improved thermoregulation and systemic metabolism. Pharmacological inhibition of AVP receptors revealed that neuroendocrine release of AVP drives homeostatic deficits, with distinct roles for V1A and V2 receptors. Senolytic drug treatment improved systemic metabolism and reduced inflammaging but does not rescue hypothalamic AVP dysfunction, underscoring a brain autonomous mechanism of age-related physiological failure. Together, our findings establish SONAVP neuronal hyperactivity as a driver of impaired homeostasis with age and suggest that targeted modulation of neuroendocrine AVP signaling may offer a therapeutic strategy to alleviate age-associated water balance defects.

physiology↗

Increasing Ciliary ARL13B Expression Drives Active and Inhibitor-Resistant SMO and GLI into Glioma Primary Cilia

ADP-ribosylation factor-like protein 13B (ARL13B), a regulatory GTPase and guanine exchange factor (GEF) enriches in primary cilia and promotes tumorigenesis in part by regulating Smoothened (SMO), GLI, and Sonic hedgehog (SHH) signaling. Gliomas with increased ARL13B, SMO and GLI2 expression are more aggressive but the relationship to cilia is unclear. Previous studies showed increasing ARL13B in glioblastoma cells promoted ciliary SMO accumulation, independent of exogenous SHH addition. Here we show SMO accumulation is due to increased ciliary, but not extraciliary ARL13B. Increasing ARL13B expression promotes the accumulation of both activated SMO and GLI2 in glioma cilia, but not in NIH3T3 fibroblast cilia. ARL13B-driven increases in ciliary SMO and GLI2 are resistant to SMO inhibitors, GDC-0449 and cyclopamine. Finally, temozolomide chemotherapy which increases ARL13B expression in glioma, stimulates SMO and GLI2 into glioma cilia, but not fibroblast cilia. Collectively, our data suggest factors that elevate ARL13B may drive drug-resistant SMO and GLI into cilia. This suggests the ARL13B-associated mechanism that leads to ciliary SMO/GLI recruitment may promote treatment resistance in glioma.

cancer biology↗