FA
Faizan Abul Qais
Jamia Hamdard, Atrium Health Wake Forest Baptist, Aligarh Muslim University
Employment
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Jamia Hamdard Research Associate2024 - Present
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Atrium Health Wake Forest Baptist Post-Doctoral Research Associate2022 - 2022
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Aligarh Muslim University Research Associate2021 - 2022
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Aligarh Muslim University Research Scholar2015 - 2020
Education
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Aligarh Muslim University Ph.D.2015 - 2020
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Aligarh Muslim University M.Sc.2013 - 2015
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Aligarh Muslim University B.Sc.2010 - 2013
Projects & Funding
Projects & funding information is unavailable.
Publications (119)
- Utilizing Non-β-Lactam Antibiotics to Combat Antimicrobial Resistance by Targeting Multiple Virulence Factors of Pseudomonas aeruginosa Save
- In Silico Investigation of Eleusine coracana Phytocompounds as Prostate Cancer Therapeutics Targeting Heat Shock Protein 90 Alpha Family Protein Save
- Coumarin Prevents the Oligomerization and Aggregation of Amylid β: Deciphering the Mode of Action using Molecular Simulations Save
- Alpha lipoic acid modulates metabolic reprogramming in breast cancer stem cells enriched 3D spheroids by targeting phosphoinositide 3-kinase: In silico and in vitro insights Save
- Nalidixic acid inhibits the aggregation of HSA: Utilizing the molecular simulations to uncover the detailed insights Save
- In-silico Identification of Dexamethasone-similar Compounds Against SARS-Cov-2 Spike Protein: A Drug Repurposing Approach Save
- Biogenic synthesis of zinc oxide nanoparticles using Drynaria Quercifolia tuber extract for antioxidant, antibiofilm, larvicidal, and photocatalytic applications Save
- Biogenic synthesis of zinc oxide nanoparticles using Drynaria Quercifolia tuber extract for antioxidant, antibiofilm, larvicidal, and photocatalytic applications (Aug, 10.1007/s13399-023-04751-3, 2023) Save
- FTIR, 1H-/13 C-NMR spectral characterization, antimicrobial, anticancer, antioxidant, anti-inflammatory, PASS, SAR, and in silico properties of methyl α-D-glucopyranoside derivatives Save
- Hydroxychloroquine interaction with phosphoinositide 3-kinase modulates prostate cancer growth in bone microenvironment: In vitro and molecular dynamics based approach Save