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

Oligonucleotides
|January 7, 2006
PubMed

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.