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Sabha, N.

Publications and source records attributed to Sabha, N..

2 recordsLinked to original sources

Natural history of a mouse model of X-linked myotubular myopathy

X-linked myotubular myopathy is a severe monogenetic disorder of the skeletal muscle caused by loss of expression/function mutations in the MTM1 (myotubularin) gene. There is a growing understanding of the pathologic and molecular abnormalities associated with loss of MTM1, and emerging therapeutic strategies that are in the process of translation to patients. Much of these data have been uncovered through experimentation in pre-clinical animal models of the disease. The most widely used model is an Mtm1 gene knockout mouse line; this line faithfully recapitulates the salient genetic and pathologic features of the disease. Despite the advances in aspects of XLMTM, there remain many unknowns related to disease pathomechanisms and to understanding of MTM1s function in normal muscle development, and a continued need for therapy identification and development. To address these barriers, and to lay the groundwork for future study, we performed a natural history study of the Mtm1 knockout mouse model of XLMTM. We show that certain molecular and pathologic changes precede overt phenotypic changes, while others, including abnormalities in triad structure, occur more coincident with muscle weakness in the mouse. In total, we provide a comprehensive longitudinal assessment of molecular and structural features of the murine XLMTM disease process.

genetics↗

CASCADES, a novel SOX2 super-enhancer associated long noncoding RNA, regulates cancer stem cell specification and differentiation in glioblastoma multiforme

Glioblastoma multiforme (GBM) is the most common primary malignant brain tumor in adults, with a median survival of just over one year. The failure of available treatments to achieve remission in patients with GBM has been attributed to the presence of cancer stem cells (CSCs), which are thought to play a central role in tumor development and progression and serve as a treatment-resistant cell repository capable of driving tumor recurrence; in fact, the property of "stemness" itself may be responsible for treatment resistance. In this study, we identify a novel lncRNA, Cancer stem cell associated distal enhancer of SOX2 (CASCADES) that functions as an epigenetic regulator in glioma CSCs (GSCs). CASCADES is expressed in IDH-wild type GBM and significantly enriched in GSCs. Knockdown of CASCADES in GSCs results in differentiation towards a neuronal lineage in a cell- and cancer-specific manner. Bioinformatics analysis reveals that CASCADES functions as a super-enhancer associated lncRNA epigenetic regulator of SOX2. Our findings identify CASCADES as a critical regulator of stemness in GSCs and represent a novel epigenetic and therapeutic target for disrupting the cancer stem cell compartment in GBM.

cancer biology↗