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Farnesyl and geranylgeranyl transferase inhibitors induce G1 arrest by targeting the proteasome
Ekem T Efuet1, Khandan Keyomarsi
1Department of Experimental Radiation Oncology, The University of Texas M.D. Anderson Cancer Center, 1515 Holcombe Boulevard, Houston, TX 77030, USA.
Abstract:
Isoprenoid inhibitors are being evaluated as agents for the treatment of cancer. Their antitumor activity is attributed to inhibition of post-translational modification of Ras, which is crucial for its translocation and attachment to the plasma membrane, and ultimate involvement in signal transduction. However, whether blocking of Ras is solely responsible for the observed antitumor activity is unresolved. In this report, we propose an alternate mechanism. Using breast tumor models, we show that agents possessing a lactone moiety, including statins (such as lovastatin) and the isoprenoid inhibitors (such as FTI-277 and GGTI-298), mediate their cell cycle inhibitory activities by blocking the chymotrypsin activity of the proteasome in vitro. This results in the accumulation of cyclin-dependent kinase inhibitors p21 and p27 with subsequent G(1) arrest. Cells devoid of p21 were refractory to the growth-inhibitory activity of lovastatin, FTI-277, and GGTI-298. However, in these p21 null cells, isoprenylation of key substrates of farnesyl transferase (such as Ras) and of geranylgeranyl transferase (such as RAP-1) were inhibited by FTI-277 and GGTI-298, respectively, suggesting that although both these isoprenoid inhibitors reached and inhibited their intended targets, inhibition of the isoprenylation of Ras and RAP-1A are not sufficient to mediate G(1) arrest. We also show that the cell cycle effects can be attributed to the functional lactone moiety of the aforementioned agents. Collectively, our data suggest that FTI and GGTI and other agents containing an active lactone moiety mediate G(1) arrest via inhibition of the proteasome and up-regulation of p21, independent of the inhibition of isoprenylation of Ras or RAP-1.
Insights
Isoprenoid inhibitors, like statins, block cancer cell growth by inhibiting the proteasome, not just Ras. This mechanism increases cell cycle inhibitors (p21/p27), causing G1 arrest, independent of Ras inhibition.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Isoprenoid inhibitors are investigated for cancer treatment, primarily targeting Ras post-translational modification.
- The precise mechanism behind their antitumor activity remains under investigation.
Purpose of the Study:
- To explore an alternative mechanism for the antitumor activity of isoprenoid inhibitors and lactone-containing agents.
- To determine if Ras inhibition is the sole driver of cell cycle arrest.
Main Methods:
- Utilized breast tumor models to assess the effects of statins, FTI-277, and GGTI-298.
- Investigated proteasome chymotrypsin activity inhibition in vitro.
- Analyzed the role of p21 in mediating growth inhibition using p21-deficient cells.
- Examined isoprenylation of Ras and RAP-1 in p21 null cells.
Main Results:
- Lactone-containing agents, including statins and isoprenoid inhibitors, inhibit proteasome activity, leading to p21 and p27 accumulation and G1 arrest.
- Cells lacking p21 were resistant to the growth-inhibitory effects of these agents.
- Despite inhibiting their intended targets (Ras, RAP-1), isoprenoid inhibition alone was insufficient for G1 arrest in p21 null cells.
- The functional lactone moiety was identified as critical for the observed cell cycle effects.
Conclusions:
- The cell cycle inhibitory effects of FTI, GGTI, and other lactone-containing agents are mediated by proteasome inhibition and subsequent p21 up-regulation.
- This mechanism operates independently of Ras or RAP-1 isoprenylation inhibition.
- The lactone moiety is essential for this proteasome-mediated G1 arrest pathway.
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