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Updated: Aug 4, 2026

Visualization of Recombinant DNA and Protein Complexes Using Atomic Force Microscopy
Published on: July 18, 2011
Structural characterization of human de novo protein NCYM and its complex with a newly identified DNA aptamer using
Seigi Yamamoto1, Fumiaki Kono2, Kazuma Nakatani1,3,4,5
1Laboratory of Evolutionary Oncology, Chiba Cancer Center Research Institute, Chiba, Japan.
Abstract:
NCYM, a Homininae-specific oncoprotein, is the first de novo gene product experimentally shown to have oncogenic functions. NCYM stabilizes MYCN and β-catenin via direct binding and inhibition of GSK3β and promotes cancer progression in various tumors. Thus, the identification of compounds that binds to NCYM and structural characterization of the complex of such compounds with NCYM are required to deepen our understanding of the molecular mechanism of NCYM function and eventually to develop anticancer drugs against NCYM. In this study, the DNA aptamer that specifically binds to NCYM and enhances interaction between NCYM and GSK3β were identified for the first time using systematic evolution of ligands by exponential enrichment (SELEX). The structural properties of the complex of the aptamer and NCYM were investigated using atomic force microscopy (AFM) in combination with truncation and mutation of DNA sequence, pointing to the regions on the aptamer required for NCYM binding. Further analysis was carried out by small-angle X-ray scattering (SAXS). Structural modeling based on SAXS data revealed that when isolated, NCYM shows high flexibility, though not as a random coil, while the DNA aptamer exists as a dimer in solution. In the complex state, models in which NCYM was bound to a region close to an edge of the aptamer reproduced the SAXS data. Therefore, using a combination of SELEX, AFM, and SAXS, the present study revealed the structural properties of NCYM in its functionally active form, thus providing useful information for the possible future design of novel anti-cancer drugs targeting NCYM.
Insights
Researchers identified a DNA aptamer that binds to the NCYM oncoprotein, stabilizing its interaction with GSK3β. This discovery provides structural insights into NCYM
Area of Science:
- Oncology
- Molecular Biology
- Biophysics
Background:
- NCYM is a Homininae-specific oncoprotein with experimentally verified oncogenic functions.
- NCYM promotes cancer progression by stabilizing MYCN and β-catenin through GSK3β inhibition.
- Understanding NCYM's molecular mechanisms and structural interactions is crucial for developing targeted anti-cancer drugs.
Purpose of the Study:
- To identify compounds that bind to NCYM.
- To structurally characterize the NCYM-compound complex.
- To provide insights for novel anti-cancer drug design targeting NCYM.
Main Methods:
- Systematic evolution of ligands by exponential enrichment (SELEX) to identify a specific DNA aptamer for NCYM.
- Atomic force microscopy (AFM) with DNA sequence analysis to determine aptamer-NCYM binding regions.
- Small-angle X-ray scattering (SAXS) and structural modeling to elucidate complex structure and NCYM flexibility.
Main Results:
- A DNA aptamer specifically binding to NCYM was identified, enhancing NCYM-GSK3β interaction.
- AFM revealed key aptamer regions involved in NCYM binding.
- SAXS and modeling showed NCYM is flexible in isolation, the aptamer exists as a dimer, and binding occurs at the aptamer's edge.
Conclusions:
- The study successfully identified a DNA aptamer targeting NCYM and characterized the structural properties of the NCYM-aptamer complex.
- These findings reveal NCYM's structural characteristics in its active form.
- The structural information obtained is valuable for future development of NCYM-targeting anti-cancer therapeutics.
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