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Published on: December 13, 2018
Nanobody-Mediated c-MYC Degradation Inhibits Tumor Cell Progression
Yuanyuan Xue1, Hao Jiang1, Zhaoyun Zong1
1MOE Key Laboratory of Bioinformatics Center For Synthetic and Systematic Biology School of Life Sciences Tsinghua University Beijing China.
Abstract:
The c-MYC oncogene, a critical driver of malignancies, is frequently associated with poor prognosis because it promotes unchecked cell proliferation and alters gene expression. Effective targeting of c-MYC using conventional therapeutic strategies has been difficult, largely because of its unstructured nature. In the present study, we identified a myc-binding nanobody named as M4 from a synthetic phage-display nanobody library. We conjugated M4 with a cell-penetrating peptide (CPP) to generate a molecule CPM4 and examined the effects and action mechanisms of CPM4 in inhibition of tumor cell growth in vitro and in vivo. CPM4 exhibited efficient nuclear localization, caused c-MYC reduction, and induced apoptosis in MYC-expressing cells. Hydrogen/deuterium exchange mass spectrometry revealed that CPM4 binds to the central PEST sequence (241-263 epitope) of c-MYC with high affinity. Further analysis revealed that CPM4 promotes c-MYC degradation via enhanced phosphorylation at Thr58, disrupts the c-MYC/MAX heterodimer, and downregulates c-MYC-targeted downstream genes. Xenograft studies further validated the therapeutic efficacy of CPM4, showing a significant reduction in tumor growth. These results underscore the therapeutic potential of CPM4 as an effective drug candidate for inhibiting c-MYC-driven tumor growth.
Insights
Researchers developed CPM4, a novel drug targeting the c-MYC oncogene. This therapy effectively reduces tumor growth by inducing cancer cell death and shows promise for treating MYC-driven malignancies.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- The c-MYC oncogene drives cancer but is difficult to target therapeutically due to its unstructured nature.
- Effective inhibition of c-MYC is crucial for improving prognosis in various malignancies.
Purpose of the Study:
- To develop and evaluate a novel therapeutic agent, CPM4, for targeting the c-MYC oncogene.
- To investigate the mechanism of action and efficacy of CPM4 in inhibiting tumor growth.
Main Methods:
- Identification of a c-MYC binding nanobody (M4) using phage display.
- Conjugation of M4 with a cell-penetrating peptide (CPP) to create CPM4.
- In vitro and in vivo studies assessing CPM4's effects on tumor cells, including apoptosis induction and tumor growth inhibition.
- Hydrogen/deuterium exchange mass spectrometry to determine the binding epitope of CPM4 on c-MYC.
Main Results:
- CPM4 demonstrated efficient nuclear localization and reduced c-MYC levels in cancer cells, inducing apoptosis.
- CPM4 binds to the PEST sequence of c-MYC, enhancing its phosphorylation and promoting degradation.
- CPM4 disrupted the c-MYC/MAX heterodimer, downregulating downstream target genes and significantly reducing tumor growth in xenograft models.
Conclusions:
- CPM4 is a promising therapeutic candidate for targeting c-MYC-driven cancers.
- The mechanism involves promoting c-MYC degradation and disrupting its oncogenic functions.
- CPM4 shows significant potential for clinical application in oncology.
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