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Biology subjects

Kogan, M.

Publications and source records attributed to Kogan, M..

2 recordsLinked to original sources

Single-nucleus and spatial landscape of the sub-ventricular zone in human glioblastoma

The sub-ventricular zone (SVZ) is the most well-characterized neurogenic area in the mammalian brain. We previously showed that in 65% of patients with glioblastoma (GBM), the SVZ is a reservoir of cancer stem-like cells that contribute to treatment resistance and emergence of recurrence. Here, we built a single-nucleus RNA-sequencing-based microenvironment landscape of the tumor mass (T_Mass) and the SVZ (T_SVZ) of 15 GBM patients and 2 histologically normal SVZ (N_SVZ) samples as controls. We identified a mesenchymal signature in the T_SVZ of GBM patients: tumor cells from the T_SVZ relied on the ZEB1 regulatory network, whereas tumor cells in the T_Mass relied on the TEAD1 regulatory network. Moreover, the T_SVZ microenvironment was predominantly characterized by tumor-supportive microglia, which spatially co-exist and establish heterotypic interactions with tumor cells. Lastly, differential gene expression analyses, predictions of ligand-receptor and incoming/outgoing interactions, and functional assays revealed that the IL-1{beta}/IL-1RAcP and Wnt-5a/Frizzled-3 pathways are therapeutic targets in the T_SVZ microenvironment. Our data provide insights into the biology of the SVZ in GBM patients and identify specific targets of this microenvironment.

cancer biology↗

Calcium (Ca2+) fluxes at Mitochondria-ER Contact Sites (MERCS) are a new target of senolysis in Therapy-Induced Senescence (TIS).

O_LIThis study investigates the state of calcium (Ca2+) flux and Mitochondria-ER contact sites (MERCS) on Therapy-Induced Senescence (TIS). C_LIO_LITIS cells-induced by Doxorubicin and Etoposide increase their MERCS contact surface but exhibit a decreased ER-mitochondria Ca2+ flux. C_LIO_LITIS cells show decreased levels of IP3R isoforms and a decreased interaction between type 1 IP3R isoform and VDAC1. C_LIO_LIThe ER-mitochondria Ca2+ flux is essential to maintain the viability of senescence cells. C_LIO_LIInhibition of ER-mitochondria Ca2+ flux rise as a new target of senolysis in vitro and in vivo. C_LI

cell biology↗