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MNK kinases facilitate c-myc IRES activity in rapamycin-treated multiple myeloma cells
1Department of Medicine, Greater Los Angeles VA Healthcare Center and Jonsson Comprehensive Cancer Center of the UCLA Medical Center, Los Angeles, CA, USA.
Abstract:
When mTOR inhibitor rapalogs prevent cap-dependent translation of cell-cycle proteins like c-myc, continuing tumor cell growth depends on cap-independent translation, which is mediated by internal ribosome entry sites (IRESes) located in the 5'-UTR (untranslated region) of transcripts. To investigate if rapalog-induced activation of MNK kinases had a role in such IRES activity, we studied multiple myeloma (MM) cells. Rapamycin (RAP)-activated MNK1 kinase activity in MM cell lines and primary specimens by a mitogen-activated protein kinase-dependent mechanism. Pharmacological inhibition of MNK activity or genetic silencing of MNK1 prevented a rapalog-induced upregulation of c-myc IRES activity. Although RAP, used alone, had little effect on myc protein expression, when combined with a MNK inhibitor, myc protein expression was abrogated. In contrast, there was no inhibition of myc RNA, consistent with an effect on myc translation. In a RAP-resistant MM cell lines as well as a resistant primary MM specimen, co-exposure to a MNK inhibitor or MNK1 knockdown significantly sensitized cells for RAP-induced cytoreduction. Studies in MNK-null murine embryonic fibroblasts additionally supported a role for MNK kinases in RAP-induced myc IRES stimulation. These results indicate that MNK kinase activity has a critical role in the fail-safe mechanism of IRES-dependent translation when mTOR is inhibited. As kinase activity also regulated sensitivity to RAP, the data also provide a rationale for therapeutically targeting MNK kinases for combined treatment with mTOR inhibitors.
Insights
Rapamycin resistance in cancer can be overcome by targeting MNK kinases, which control internal ribosome entry site (IRES) activity. Inhibiting MNK kinases sensitizes resistant cells to mTOR inhibitors like rapamycin.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Cell Biology
Background:
- mTOR inhibitors (rapalogs) block cap-dependent translation, forcing tumor cells to rely on cap-independent translation via internal ribosome entry sites (IRESes) for growth.
- The role of MNK kinases in mediating IRES activity during mTOR inhibition was previously unclear.
Purpose of the Study:
- To investigate the role of MNK kinases in regulating IRES activity and sensitivity to mTOR inhibitors in multiple myeloma (MM).
Main Methods:
- Studied multiple myeloma cell lines and primary specimens.
- Assessed MNK kinase activity, c-myc IRES activity, and protein/RNA expression.
- Utilized pharmacological MNK inhibitors and genetic MNK1 silencing.
- Examined rapamycin-resistant MM models and MNK-null cells.
Main Results:
- Rapamycin activated MNK1 kinase activity in MM cells via a MAPK-dependent pathway.
- MNK inhibition or silencing prevented rapamycin-induced c-myc IRES activity upregulation.
- Combined MNK inhibition and rapamycin abrogated myc protein expression without affecting RNA levels.
- MNK inhibition sensitized rapamycin-resistant MM cells and specimens to rapamycin-induced cell death.
Conclusions:
- MNK kinase activity is critical for IRES-dependent translation during mTOR inhibition, serving as a fail-safe mechanism for tumor cell growth.
- MNK kinase activity influences sensitivity to mTOR inhibitors, suggesting a therapeutic strategy.
- Targeting MNK kinases in combination with mTOR inhibitors offers a rationale for overcoming therapeutic resistance in cancers like multiple myeloma.
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