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Published on: June 12, 2017
MDA-9/Syntenin regulates protective autophagy in anoikis-resistant glioma stem cells
Sarmistha Talukdar1, Anjan K Pradhan1, Praveen Bhoopathi1
1Department of Human and Molecular Genetics, School of Medicine, Virginia Commonwealth University, Richmond, VA 23298.
Abstract:
Glioma stem cells (GSCs) comprise a small subpopulation of glioblastoma multiforme cells that contribute to therapy resistance, poor prognosis, and tumor recurrence. Protective autophagy promotes resistance of GSCs to anoikis, a form of programmed cell death occurring when anchorage-dependent cells detach from the extracellular matrix. In nonadherent conditions, GSCs display protective autophagy and anoikis-resistance, which correlates with expression of melanoma differentiation associated gene-9/Syntenin (MDA-9) (syndecan binding protein; SDCBP). When MDA-9 is suppressed, GSCs undergo autophagic death supporting the hypothesis that MDA-9 regulates protective autophagy in GSCs under anoikis conditions. MDA-9 maintains protective autophagy through phosphorylation of BCL2 and by suppressing high levels of autophagy through EGFR signaling. MDA-9 promotes these changes by modifying FAK and PKC signaling. Gain-of-function and loss-of-function genetic approaches demonstrate that MDA-9 regulates pEGFR and pBCL2 expression through FAK and pPKC. EGFR signaling inhibits autophagy markers (ATG5, Lamp1, LC3B), helping to maintain protective autophagy, and along with pBCL2 maintain survival of GSCs. In the absence of MDA-9, this protective mechanism is deregulated; EGFR no longer maintains protective autophagy, leading to highly elevated and sustained levels of autophagy and consequently decreased cell survival. In addition, pBCL2 is down-regulated in the absence of MDA-9, leading to cell death in GSCs under conditions of anoikis. Our studies confirm a functional link between MDA-9 expression and protective autophagy in GSCs and show that inhibition of MDA-9 reverses protective autophagy and induces anoikis and cell death in GSCs.
Insights
Melanoma differentiation associated gene-9 (MDA-9) enables glioma stem cells to survive therapy by regulating protective autophagy. Inhibiting MDA-9 triggers autophagic cell death, offering a potential therapeutic strategy for glioblastoma.
Area of Science:
- Oncology
- Cell Biology
- Molecular Biology
Background:
- Glioma stem cells (GSCs) drive glioblastoma recurrence and therapy resistance.
- Protective autophagy promotes GSC survival against anoikis (anchorage-independent cell death).
- Melanoma differentiation associated gene-9/Syntenin (MDA-9/SDCBP) expression correlates with GSC anoikis resistance.
Purpose of the Study:
- To investigate the role of MDA-9 in regulating protective autophagy in GSCs under anoikis conditions.
- To elucidate the molecular mechanisms by which MDA-9 controls autophagy and GSC survival.
Main Methods:
- Utilized gain-of-function and loss-of-function genetic approaches in GSCs.
- Analyzed the expression of key signaling molecules including MDA-9, EGFR, BCL2, FAK, and PKC.
- Assessed autophagy markers (ATG5, Lamp1, LC3B) and cell survival under nonadherent conditions.
Main Results:
- MDA-9 suppression led to autophagic death in GSCs, confirming its role in regulating protective autophagy.
- MDA-9 maintains protective autophagy via BCL2 phosphorylation and suppression of excessive autophagy through EGFR signaling.
- MDA-9 modulates FAK and PKC signaling pathways, impacting pEGFR and pBCL2 levels, crucial for GSC survival.
Conclusions:
- MDA-9 is a critical regulator of protective autophagy in glioma stem cells.
- Inhibition of MDA-9 disrupts this protective mechanism, inducing anoikis and cell death in GSCs.
- Targeting MDA-9 presents a promising therapeutic strategy for overcoming glioblastoma resistance.
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