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Potent inhibitory activity of chimeric oligonucleotides targeting two different sites of human telomerase
Eckart Matthes1, Christine Lehmann, Marianne Stulich
1Max-Delbrück-Centrum für Molekulare Medizin, D-13125 Berlin, Germany. emat@mdc-berlin.de
Abstract:
Suppression of telomerase activity in tumor cells has been considered as a new anticancer strategy. Here, we present chimeric oligonucleotides (chimeric ODNs) as a new type of telomerase inhibitor that contains differently modified oligomers to address two different sites of telomerase: the RNA template and a suggested protein motif. We have shown previously that phosphorothioate-modified oligonucleotides (PS ODNs) interact in a length-dependent rather than in a sequence-dependent manner, presumably with the protein part of the primer-binding site of telomerase, causing strong inhibition of telomerase. In the present study, we demonstrate that extensions of these PS ODNs at their 3'-ends with an antisense oligomer partial sequence covering 11 bases of the RNA template cause significantly increased inhibitory activity, with IC(50) values between 0.60 and 0.95 nM in a Telomeric Repeat Amplification Protocol (TRAP) assay based on U-87 cell lysates. The enhanced inhibitory activity is observed regardless of whether the antisense part is modified (phosphodiester, PO; 2'-O-methylribosyl, 2'-OMe/PO; phosphoramidate, PAM). However, inside intact U-87 cells, these modifications of the antisense part proved to be essential for efficient telomerase inhibition 20 hours after transfection. In particular, the chimeric ODNs containing PAM or 2'-OMe/PO modifications, when complexed with lipofectin, were most efficient telomerase inhibitors (ID(50) = 0.04 and 0.06 microM, respectively). In conclusion, ODNs of this new type emerged as powerful inhibitors of human telomerase and are, therefore, promising candidates for further investigations of the anticancer strategy of telomerase inhibition.
Insights
New chimeric oligonucleotides (chimeric ODNs) show potent telomerase inhibition for cancer therapy. These novel compounds effectively suppress telomerase activity in tumor cells, offering a promising new anticancer strategy.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Telomerase activity is crucial for tumor cell proliferation.
- Inhibiting telomerase is a potential anticancer strategy.
- Previous studies showed phosphorothioate-modified oligonucleotides (PS ODNs) inhibit telomerase.
Purpose of the Study:
- To develop and evaluate chimeric oligonucleotides (chimeric ODNs) as novel telomerase inhibitors.
- To investigate the enhanced inhibitory activity of chimeric ODNs targeting both RNA and protein components of telomerase.
- To assess the efficacy of different modifications in chimeric ODNs for telomerase inhibition in cancer cells.
Main Methods:
- Chimeric ODNs were designed with extensions to target the RNA template of telomerase.
- Telomerase inhibition was measured using the Telomeric Repeat Amplification Protocol (TRAP) assay.
- Inhibition was assessed in U-87 cell lysates and intact U-87 cells after lipofectin-mediated transfection.
Main Results:
- Chimeric ODNs showed significantly increased telomerase inhibitory activity (IC50 values between 0.60–0.95 nM) compared to PS ODNs.
- The antisense modification of the 3'-end extension was crucial for efficient inhibition in intact U-87 cells.
- Chimeric ODNs with phosphoramidate (PAM) or 2'-O-methylribosyl (2'-OMe/PO) modifications were the most potent inhibitors (ID50 = 0.04 and 0.06 µM).
Conclusions:
- Chimeric ODNs represent a new class of powerful human telomerase inhibitors.
- These novel compounds demonstrate significant potential for anticancer strategies targeting telomerase.
- Further investigation of these chimeric ODNs is warranted for their application in cancer therapy.
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