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Off the Clock: the Non-canonical Roles of Cyclin-Dependent Kinases in Neural and Glioma Stem Cell Self-Renewal
Ling-Kai Shih1, Subhas Mukherjee1, Daniel J Brat2
1Department of Pathology, Feinberg School of Medicine, Northwestern University, 303 E. Chicago Avenue, Rm #4-127, Chicago, IL, 60611, USA.
Abstract:
Glioma stem cells (GSCs) are thought to drive growth and therapy resistance in glioblastoma (GBM) by "hijacking" at least a subset of signaling pathways active in normal neural stem cells (NSCs). Though the origins of GSCs still remain elusive, uncovering the mechanisms of self-renewing division and cell differentiation in normal NSCs has shed light on their dysfunction in GSCs. However, the distinction between self-renewing division pathways utilized by NSC and GSC becomes critical when considering options for therapeutically targeting signaling pathways that are specifically active or altered in GSCs. It is well-established that cyclin-dependent kinases (CDKs) regulate the cell cycle, yet more recent studies have shown that CDKs also play important roles in the regulation of neuronal survival, metabolism, differentiation, and self-renewal. The intimate relationship between cell cycle regulation and the cellular programs that determine self-renewing division versus cell differentiation is only beginning to be understood, yet seems to suggest potential differential vulnerabilities in GSCs. In this timely review, we focus on the role of CDKs in regulating the self-renewal properties of normal NSCs and GSCs, highlighting novel opportunities to therapeutically target self-renewing signaling pathways specifically in GBM.
Insights
Cyclin-dependent kinases (CDKs) regulate cell division and self-renewal in both normal neural stem cells (NSCs) and glioma stem cells (GSCs). Targeting CDK pathways offers new therapeutic strategies for glioblastoma (GBM).
Area of Science:
- Neuro-oncology
- Cellular Biology
- Molecular Signaling
Background:
- Glioma stem cells (GSCs) drive glioblastoma (GBM) growth and resistance by altering neural stem cell (NSC) pathways.
- Understanding NSC self-renewal and differentiation mechanisms is key to deciphering GSC dysfunction.
Purpose of the Study:
- To review the role of cyclin-dependent kinases (CDKs) in NSC and GSC self-renewal.
- To identify therapeutic strategies targeting CDK-mediated self-renewal pathways in GBM.
Main Methods:
- Literature review focusing on CDK functions in stem cell biology.
- Analysis of signaling pathways involved in cell cycle regulation, differentiation, and self-renewal.
- Exploration of therapeutic vulnerabilities in GSCs related to CDK activity.
Main Results:
- CDKs regulate not only the cell cycle but also neuronal survival, metabolism, differentiation, and self-renewal.
- Distinct roles of CDKs in NSC versus GSC self-renewing divisions suggest potential therapeutic targets.
- The interplay between cell cycle control and stem cell fate determination is crucial.
Conclusions:
- CDKs are critical regulators of self-renewal in both normal and cancer stem cells.
- Targeting specific CDK functions presents a promising avenue for novel GBM therapies.
- Further research into CDK regulation of stem cell programs may unlock new treatment strategies.
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