Plant flavonoid inhibition of SARS-CoV-2 main protease and viral replication
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R. Flaumenhaft | Mohsan Saeed | Christina Scartelli | G. Merrill-Skoloff | Moua Yang | Lijun Sun | Huanzhang Xie | Lin Lin | Da-Yuan Chen | Glenn Merrill-Skoloff
[1] Sarath G Nath,et al. Safely Prescribing Nirmatrelvir and Ritonavir-Avoiding Drug-Drug Interactions. , 2023, JAMA internal medicine.
[2] D. Celi,et al. Critical Review of Plant-Derived Compounds as Possible Inhibitors of SARS-CoV-2 Proteases: A Comparison with Experimentally Validated Molecules , 2022, ACS omega.
[3] Jin Ju Park,et al. Nirmatrelvir/Ritonavir Prescription Rate and Outcomes in Coronavirus Disease 2019: A Single Center Study , 2022, Infection & chemotherapy.
[4] S. Moro,et al. SARS-CoV-2 3CLpro mutations selected in a VSV-based system confer resistance to nirmatrelvir, ensitrelvir, and GC376 , 2022, Science Translational Medicine.
[5] H. Mohri,et al. Rebound of SARS-CoV-2 Infection after Nirmatrelvir–Ritonavir Treatment , 2022, The New England journal of medicine.
[6] P. Caubel,et al. Nirmatrelvir–Ritonavir and Viral Load Rebound in Covid-19 , 2022, The New England journal of medicine.
[7] M. Hoshen,et al. Nirmatrelvir Use and Severe Covid-19 Outcomes during the Omicron Surge , 2022, The New England journal of medicine.
[8] Yurii S. Moroz,et al. Large library docking for novel SARS-CoV-2 main protease non-covalent and covalent inhibitors , 2022, bioRxiv.
[9] Carolina Q. Sacramento,et al. Commercially Available Flavonols Are Better SARS-CoV-2 Inhibitors than Isoflavone and Flavones , 2022, Viruses.
[10] Keda Chen,et al. Progress on SARS-CoV-2 3CLpro Inhibitors: Inspiration from SARS-CoV 3CLpro Peptidomimetics and Small-Molecule Anti-Inflammatory Compounds , 2022, Drug design, development and therapy.
[11] Jian Li,et al. Crystal structure of SARS-CoV 3C-like protease with baicalein , 2022, Biochemical and Biophysical Research Communications.
[12] M. Baniecki,et al. Oral Nirmatrelvir for High-Risk, Nonhospitalized Adults with Covid-19 , 2022, The New England journal of medicine.
[13] Mahmoud M. Shehata,et al. Naturally Available Flavonoid Aglycones as Potential Antiviral Drug Candidates against SARS-CoV-2 , 2021, Molecules.
[14] A. Hussain,et al. In silico screening, SAR and kinetic studies of naturally occurring flavonoids against SARS CoV-2 main protease , 2021, Arabian Journal of Chemistry.
[15] Artur M. S. Silva,et al. Plant Flavonoids: Chemical Characteristics and Biological Activity , 2021, Molecules.
[16] K. Gajiwala,et al. An oral SARS-CoV-2 Mpro inhibitor clinical candidate for the treatment of COVID-19 , 2021, Science.
[17] M. Zimic,et al. Comprehensive virtual screening of 4.8 k flavonoids reveals novel insights into allosteric inhibition of SARS-CoV-2 MPRO , 2021, Scientific Reports.
[18] Jourdan K. Ewoldt,et al. SARS-CoV-2 Disrupts Proximal Elements in the JAK-STAT Pathway , 2021, Journal of virology.
[19] Atul R. Bendale,et al. In silico screening of phytopolyphenolics for the identification of bioactive compounds as novel protease inhibitors effective against SARS-CoV-2 , 2021, Journal of biomolecular structure & dynamics.
[20] A. El-Keblawy,et al. Flavonoids are promising safe therapy against COVID-19 , 2021, Phytochemistry reviews : proceedings of the Phytochemical Society of Europe.
[21] A. Tiwari,et al. The interaction of the bioflavonoids with five SARS-CoV-2 proteins targets: An in silico study , 2021, Computers in Biology and Medicine.
[22] Aiping Lu,et al. ADMETlab 2.0: an integrated online platform for accurate and comprehensive predictions of ADMET properties , 2021, Nucleic Acids Res..
[23] Jaeyong Lee,et al. Crystallographic structure of wild-type SARS-CoV-2 main protease acyl-enzyme intermediate with physiological C-terminal autoprocessing site , 2020, Nature Communications.
[24] Yufeng Shi,et al. Baicalein inhibits SARS-CoV-2/VSV replication with interfering mitochondrial oxidative phosphorylation in a mPTP dependent manner , 2020, Signal Transduction and Targeted Therapy.
[25] Xiaozhong Peng,et al. The comprehensive study on the therapeutic effects of baicalein for the treatment of COVID-19 in vivo and in vitro , 2020, Biochemical Pharmacology.
[26] Kunqian Yu,et al. Anti-SARS-CoV-2 activities in vitro of Shuanghuanglian preparations and bioactive ingredients , 2020, Acta Pharmacologica Sinica.
[27] L. Lai,et al. Scutellaria baicalensis extract and baicalein inhibit replication of SARS-CoV-2 and its 3C-like protease in vitro , 2020, bioRxiv.
[28] D. Shin,et al. Inhibition of SARS-CoV 3CL protease by flavonoids , 2019, Journal of enzyme inhibition and medicinal chemistry.
[29] K. Yam,et al. A Review on Flavonoid Apigenin: Dietary Intake, ADME, Antimicrobial Effects, and Interactions with Human Gut Microbiota , 2019, BioMed research international.
[30] Hyojin Kim,et al. Characteristics of flavonoids as potent MERS‐CoV 3C‐like protease inhibitors , 2019, Chemical biology & drug design.
[31] Songtao Li,et al. Characterization of the anti-Staphylococcus aureus fraction from Penthorum chinense Pursh stems , 2019, BMC Complementary and Alternative Medicine.
[32] R. Nakabayashi,et al. The Origin and Evolution of Plant Flavonoid Metabolism , 2019, Front. Plant Sci..
[33] A. Fernie,et al. The Structure and Function of Major Plant Metabolite Modifications. , 2019, Molecular plant.
[34] K. Gupta,et al. Plant Flavone Apigenin: an Emerging Anticancer Agent , 2017, Current Pharmacology Reports.
[35] B. H. Maia,et al. Flavonoids: Classification, Biosynthesis and Chemical Ecology , 2017 .
[36] Luqi Huang,et al. Pharmacokinetic properties and drug interactions of apigenin, a natural flavone , 2017, Expert opinion on drug metabolism & toxicology.
[37] Sheela Chandra,et al. Flavonoids: an overview , 2016, Journal of Nutritional Science.
[38] Yu-chian Chen. Beware of docking! , 2015, Trends in pharmacological sciences.
[39] Yun Jiang,et al. Polyphenols with Anti-Proliferative Activities from Penthorum Chinense Pursh , 2014, Molecules.
[40] S. Haeryfar,et al. A robust scoring system to evaluate sepsis severity in an animal model , 2014, BMC Research Notes.
[41] Jian-Guo Jiang,et al. Hepatoprotective function of Penthorum chinense Pursh. , 2013, Food & function.
[42] Young-Min Kim,et al. Flavonoid-mediated inhibition of SARS coronavirus 3C-like protease expressed in Pichia pastoris , 2012, Biotechnology Letters.
[43] Arthur J. Olson,et al. AutoDock Vina: Improving the speed and accuracy of docking with a new scoring function, efficient optimization, and multithreading , 2009, J. Comput. Chem..
[44] R. Koes,et al. Flavonoids: a colorful model for the regulation and evolution of biochemical pathways. , 2005, Trends in plant science.