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TULP3 NLS inhibition: an in silico study to hamper cargo transport to nucleus
Rana Muhammad Mateen1, Asma Tariq2, Muhammad Sohail Afzal1
1Department of Life sciences, School of Science, University of Management and Technology, Lahore, Pakistan.
Abstract:
TULP3 is involved in cell regulation pathways including transcription and signal transduction. In some pathological states like in cancers, increased level of TULP3 has been observed so it can serve as a potential target to hamper the activation of those pathways. We propose a novel idea of inhibiting nuclear localization signal (NLS) to interrupt nuclear translocation of TULP3 so that the downstream activations of pathways are blocked. In current in silico study, 3D structure of TULP3 was modeled using 8 different tools including I-TASSER, CABS-FOLD, Phyre2, PSIPRED, RaptorX, Robetta, Rosetta and Prime by Schrödinger. Best structure was selected after quality evaluation by SAVES and implied for the investigation of NLS sequence. Mapped NLS sequence was further used to dock with natural ligand importin-α as control docking to validate the NLS sequence as binding site. After docking and molecular dynamics (MD) simulation validation, these residues were used as binding side for subsequent docking studies. 70 alkaloids were selected after intensive literature survey and were virtually docked with NLS sequence where natural ligand importin-α is supposed to be bound. This study demonstrates the virtual inhibition of NLS sequence so that it paves a way for future in-vivo studies to use NLS as a new drug target for cancer therapeutics.Communicated by Ramaswamy H. Sarma.
Insights
This study proposes inhibiting TULP3
Area of Science:
- Molecular Biology
- Biochemistry
- Structural Biology
Background:
- TULP3 protein regulates transcription and signal transduction pathways.
- Elevated TULP3 levels are observed in cancers, indicating its potential as a therapeutic target.
- Targeting TULP3 could inhibit cancer-promoting pathways.
Purpose of the Study:
- To investigate the inhibition of TULP3 nuclear localization signal (NLS) as a novel cancer therapeutic strategy.
- To identify potential natural compounds that can inhibit TULP3 nuclear translocation.
Main Methods:
- 3D structure modeling of TULP3 using eight different tools.
- Quality evaluation and selection of the best TULP3 structure.
- In silico molecular docking and dynamics simulations to identify NLS binding sites and potential inhibitors.
Main Results:
- The study successfully modeled the 3D structure of TULP3 and identified its NLS.
- Virtual screening of 70 alkaloids against the TULP3 NLS revealed potential inhibitory compounds.
- Molecular dynamics simulations validated the binding interactions.
Conclusions:
- Inhibiting TULP3's nuclear localization via its NLS is a viable strategy for cancer therapy.
- This study provides a foundation for developing NLS-targeting drugs against cancer.
- Further in vivo studies are warranted to validate these findings.
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