Selective apoptosis induction in MCF-7 cell line by truncated minimal functional region of Apoptin
Lim Shen Ni, Zeenathul Nazariah Bt Allaudin1, Mohd Azmi B Mohd Lila
1Institute of Biosciences, Universiti Putra, Serdang, Malaysia. zeenathul@upm.edu.my.
Background:
Chicken Anemia Virus (CAV) VP3 protein (also known as Apoptin), a basic and proline-rich protein has a unique capability in inducing apoptosis in cancer cells but not in normal cells. Five truncated Apoptin proteins were analyzed to determine their selective ability to migrate into the nucleus of human breast adenocarcinoma MCF-7 cells for inducing apoptosis.
Methods:
For identification of the minimal selective domain for apoptosis, the wild-type Apoptin gene had been reconstructed by PCR to generate segmental deletions at the N' terminal and linked with nuclear localization sites (NLS1 and NLS2). All the constructs were fused with maltose-binding protein gene and individually expressed by in vitro Rapid Translation System. Standardized dose of proteins were delivered into human breast adenocarcinoma MCF-7 cells and control human liver Chang cells by cytoplasmic microinjection, and subsequently observed for selective apoptosis effect.
Results:
Three of the truncated Apoptin proteins with N-terminal deletions spanning amino acid 32-83 retained the cancer selective nature of wild-type Apoptin. The proteins were successfully translocated to the nucleus of MCF-7 cells initiating apoptosis, whereas non-toxic cytoplasmic retention was observed in normal Chang cells. Whilst these truncated proteins retained the tumour-specific death effector ability, the specificity for MCF-7 cells was lost in two other truncated proteins that harbor deletions at amino acid 1-31. The detection of apoptosing normal Chang cells and MCF-7 cells upon cytoplasmic microinjection of these proteins implicated a loss in Apoptin's signature targeting activity.
Conclusions:
Therefore, the critical stretch spanning amino acid 1-31 at the upstream of a known hydrophobic leucine-rich stretch (LRS) was strongly suggested as one of the prerequisite region in Apoptin for cancer targeting. Identification of this selective domain provides a platform for developing small targets to facilitating carrier-mediated-transport across cellular membrane, simultaneously promoting protein delivery for selective and effective breast cancer therapy.
Insights
The Apoptin protein selectively induces apoptosis in cancer cells. Researchers identified a critical amino acid region (1-31) essential for this cancer-targeting ability, paving the way for targeted breast cancer therapies.
Area of Science:
- Molecular Biology
- Cancer Research
- Virology
Background:
- Chicken Anemia Virus (CAV) VP3 protein, also known as Apoptin, selectively induces apoptosis in cancer cells.
- Apoptin's unique cancer-selective apoptosis-inducing capability makes it a promising therapeutic agent.
Purpose of the Study:
- To identify the minimal selective domain of Apoptin responsible for nuclear translocation and apoptosis induction in cancer cells.
- To analyze the role of specific N-terminal deletions in Apoptin's cancer-targeting and apoptosis-inducing functions.
Main Methods:
- Generated truncated Apoptin proteins with N-terminal deletions using PCR.
- Expressed truncated proteins using an in vitro Rapid Translation System.
- Delivered proteins into human breast adenocarcinoma MCF-7 cells and normal Chang cells via cytoplasmic microinjection to assess selective apoptosis.
Main Results:
- Three truncated Apoptin proteins (deletions 32-83) retained selective apoptosis induction in MCF-7 cells.
- These truncated proteins translocated to the nucleus of MCF-7 cells, inducing apoptosis, while remaining in the cytoplasm of normal Chang cells.
- Truncated proteins with deletions at amino acid 1-31 lost cancer-specific targeting, leading to apoptosis in both cancer and normal cells.
Conclusions:
- The N-terminal region spanning amino acids 1-31 is critical for Apoptin's cancer-targeting ability.
- This identified domain is a prerequisite for Apoptin's selective action and can be utilized for developing targeted cancer therapies.
- Understanding this domain facilitates the development of protein delivery systems for effective breast cancer treatment.
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