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Published on: October 4, 2018
Development of ribozymes that target stathmin, a major regulator of the mitotic spindle
S J Mistry1, C J Benham, G F Atweh
1Department of Medicine, Mount Sinai School of Medicine, New York, NY 10029, USA.
Abstract:
Stathmin is a major cytosolic phosphoprotein that plays an important role in the control of cellular proliferation by regulating the dynamics of the microtubules that make up the mitotic spindle. Because stathmin is expressed at high levels in all human cancers, it is an attractive molecular target for anticancer interventions. We had shown previously that antisense stathmin inhibition results in marked abrogation of the transformed phenotype of leukemic cells in vitro and in vivo. Unlike the antisense approach, ribozymes can catalytically cleave several molecules of target RNA. This may provide a more efficient strategy for downregulating genes, such as stathmin, that are expressed at very high levels in cancer cells. We designed several antistathmin hammerhead ribozymes and tested their cleavage activity against short synthetic stathmin RNA substrates. In vitro cleavage studies demonstrated site-specific cleavage of stathmin RNA that was dependent on ribozyme concentration and duration of exposure to ribozyme. The most active antistathmin ribozyme was capable of cleaving >90% stathmin RNA in a catalytic manner, cleaving multiple substrate molecules per ribozyme molecule. We also demonstrated that the designed antistathmin ribozymes are capable of selectively cleaving native stathmin RNA in a mixture of total RNA isolated from leukemic cells. These antistathmin ribozymes may provide a novel and effective form of gene therapy that may be applicable to a wide variety of human cancers.
Insights
New ribozymes effectively target stathmin, a protein overexpressed in cancers. This gene therapy approach offers a promising strategy for cancer treatment by catalytically degrading stathmin RNA in leukemic cells.
Area of Science:
- Molecular Biology
- Cancer Research
- Gene Therapy
Background:
- Stathmin is a key protein regulating microtubule dynamics and cellular proliferation.
- High stathmin expression in human cancers makes it a viable therapeutic target.
- Previous antisense strategies showed potential but ribozymes offer catalytic efficiency.
Purpose of the Study:
- To design and evaluate hammerhead ribozymes for targeting stathmin RNA.
- To assess the efficiency and specificity of antistathmin ribozymes in cancer cells.
- To explore ribozymes as a novel gene therapy for various cancers.
Main Methods:
- Design of antistathmin hammerhead ribozymes.
- In vitro cleavage assays using synthetic and native stathmin RNA substrates.
- Testing ribozyme activity on total RNA from leukemic cells.
Main Results:
- Designed ribozymes demonstrated site-specific cleavage of stathmin RNA.
- Cleavage activity was dependent on ribozyme concentration and exposure time.
- The most active ribozyme cleaved over 90% of stathmin RNA catalytically and selectively in leukemic cell RNA.
Conclusions:
- Antistathmin ribozymes provide an efficient gene silencing strategy.
- These ribozymes show potential for selective gene therapy in diverse human cancers.
- Ribozyme-based therapy offers a novel approach to targeting highly expressed cancer genes.
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