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A specific anti-cyclin D1 intrabody represses breast cancer cell proliferation by interrupting the cyclin D1-CDK4
Jialiang Zhao1, Yan Wu1,2, Tong Xiao1
1Key Laboratory for Molecular Enzymology and Engineering of the Ministry of Education, School of Life Sciences, Jilin University, Changchun, 130012, China.
Background:
Cyclin D1 overexpression may contribute to development of various cancers, including breast cancer, and thus may serve as a key cancer diagnostic marker and therapeutic target. In our previous study, we generated a cyclin D1-specific single-chain variable fragment antibody (ADκ) from a human semi-synthetic single-chain variable fragment library. ADκ specifically interacted with recombinant and endogenous cyclin D1 proteins through an unknown molecular basis to inhibit HepG2 cell growth and proliferation.
Results:
Here, using phage display and in silico protein structure modeling methods combined with cyclin D1 mutational analysis, key residues that bind to ADκ were identified. Notably, residue K112 within the cyclin box was required for cyclin D1-ADκ binding. In order to elucidate the molecular mechanism underlying ADκ anti-tumor effects, a cyclin D1-specific nuclear localization signal-containing intrabody (NLS-ADκ) was constructed. When expressed within cells, NLS-ADκ interacted specifically with cyclin D1 to significantly inhibit cell proliferation, induce G1-phase arrest, and trigger apoptosis of MCF-7 and MDA-MB-231 breast cancer cells. Moreover, the NLS-ADκ-cyclin D1 interaction blocked binding of cyclin D1 to CDK4 and inhibited RB protein phosphorylation, resulting in altered expression of downstream cell proliferation-related target genes.
Conclusion:
We identified amino acid residues in cyclin D1 that may play key roles in the ADκ-cyclin D1 interaction. A nuclear localization antibody against cyclin D1 (NLS-ADκ) was constructed and successfully expressed in breast cancer cells. NLS-ADκ exerted tumor suppressor effects via blocking the binding of CDK4 to cyclin D1 and inhibiting phosphorylation of RB. The results presented here demonstrate anti-tumor potential of intrabody-based cyclin D1-targeted breast cancer therapy.
Insights
Researchers identified key residues in cyclin D1 that bind to the ADκ antibody. A novel nuclear localization antibody (NLS-ADκ) demonstrated anti-cancer effects by inhibiting cell proliferation and inducing apoptosis in breast cancer cells.
Area of Science:
- Oncology
- Molecular Biology
- Immunotherapy
Background:
- Cyclin D1 overexpression is implicated in various cancers, including breast cancer, making it a potential diagnostic marker and therapeutic target.
- A previously developed cyclin D1-specific single-chain variable fragment antibody (ADκ) inhibited cancer cell growth through an uncharacterized mechanism.
Purpose of the Study:
- To identify the molecular basis of the interaction between ADκ and cyclin D1.
- To elucidate the anti-tumor mechanism of ADκ by constructing and evaluating a nuclear-localized version (NLS-ADκ).
Main Methods:
- Phage display and in silico protein structure modeling were used to identify key binding residues.
- Cyclin D1 mutational analysis pinpointed residue K112 as critical for ADκ binding.
- A cyclin D1-specific intrabody with a nuclear localization signal (NLS-ADκ) was engineered and expressed in breast cancer cells.
Main Results:
- Residue K112 in cyclin D1 was identified as essential for ADκ binding.
- NLS-ADκ specifically targeted cyclin D1 within breast cancer cells (MCF-7 and MDA-MB-231).
- NLS-ADκ significantly inhibited cell proliferation, induced G1-phase arrest, and promoted apoptosis, while blocking cyclin D1-CDK4 interaction and RB phosphorylation.
Conclusions:
- Key amino acid residues involved in the ADκ-cyclin D1 interaction were identified.
- A functional nuclear-localized antibody (NLS-ADκ) was successfully developed and expressed in breast cancer cells.
- NLS-ADκ exhibits anti-tumor properties by disrupting the cyclin D1-CDK4-RB pathway, highlighting its potential for targeted breast cancer therapy.
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