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Updated: May 20, 2025

Spontaneous Murine Model of Anaplastic Thyroid Cancer
Published on: February 3, 2023
Nature's answer to thyroid cancer: unraveling eclipta prostrata's hidden potential through in silico molecular
Acharya Balkrishna1,2, Himani Bhatt1, Vedpriya Arya1,2
1Patanjali Research Foundation, Herbal Research Division, Haridwar, Uttarakhand, India.
Abstract:
Thyroid cancer (TC) is poised to become the fourth most prevalent global malignancy, highlighting the urgency for innovative therapeutic strategies. Current treatments often come with significant adverse effects, emphasizing the necessity for targeted drugs with reduced side effects. In this study, we have employed a comprehensive approach, including network pharmacology, molecular docking, molecular dynamics simulations, and MMPBSA to uncover the potential compounds within Eclipta prostrata and their interactions with SRC kinase of TC. The Src family of kinases is a versatile family of nonreceptor tyrosine kinase, regulating key cellular processes responsible for mediating thyroid tumor progression. Our aim is to harness nature's arsenal for the development of safe and effective TC therapeutics. We have identifyied six E. prostrata compounds, carefully chosen based on Lipinski's Rule of Five, bioavailability and drug-likeness scores. Additionally, our research pinpoints the top three core proteins through network pharmacology, assessing their potential for immune infiltration into cancer tissue and examining mRNA expression profiles across various pathological stages. Significantly, luteolin emerged as a primary SRC kinase inhibitor, displaying remarkable binding energy of -9.0 kcal/mol, comparable to the standard quinazoline inhibitor with binding energy of -9.5 kcal/mol. In addition, rigorous 100 nanosecond molecular dynamics simulations were performed on protein-compound complex, confirming their thermodynamic stability. Additionally, MM-PBSA also confirmed the docking results. Our in silico analysis suggested that luteolin holds promise as potent TC inhibitor, ushering in a new era in the quest for natural, low-risk therapeutic options for thyroid cancer, inspiring hope for patients and healthcare providers alike.
Insights
Eclipta prostrata compounds show potential as natural thyroid cancer (TC) inhibitors. Luteolin effectively inhibits SRC kinase, offering a promising, low-risk therapeutic option for TC.
Area of Science:
- Phytochemistry
- Computational Biology
- Oncology
Background:
- Thyroid cancer (TC) is a growing global health concern, necessitating novel therapeutics with fewer side effects than current treatments.
- Targeted therapies are crucial for managing TC, driving research into natural compounds for drug development.
Purpose of the Study:
- To identify potential natural compounds from Eclipta prostrata with therapeutic activity against thyroid cancer.
- To investigate the inhibitory effects of these compounds on SRC kinase, a key regulator of thyroid tumor progression.
Main Methods:
- Network pharmacology was used to identify key proteins and compounds.
- Molecular docking, molecular dynamics simulations, and MM-PBSA were employed to assess compound-protein interactions.
- Lipinski's Rule of Five and drug-likeness scores were used for compound selection.
Main Results:
- Six Eclipta prostrata compounds were identified based on drug-likeness criteria.
- Luteolin demonstrated significant SRC kinase inhibition with a binding energy of -9.0 kcal/mol.
- Molecular dynamics and MM-PBSA confirmed the stability and efficacy of the luteolin-SRC kinase complex.
Conclusions:
- Luteolin from Eclipta prostrata is a promising natural inhibitor of SRC kinase for thyroid cancer treatment.
- In silico findings support luteolin as a potential low-risk, effective therapeutic agent for thyroid cancer.
- This study opens new avenues for developing natural, safe treatments for thyroid cancer.
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