Potent Antihyperuricemic Triterpenoids Based on Two Unprecedented Scaffolds from the Leaves of Alstonia scholaris.
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Yun-Li Zhao | Xiao-Dong Luo | Pei-Feng Zhu | Li-Xing Zhao | Ying-Jie He | Bin‐Yuan Hu | Zhao-Jie Wang | Zhong-Shun Zhou | Yong-liang Wang | Deng-Sen Xiong
[1] S. Bangalore,et al. Study Design and Baseline Characteristics of the CARDINAL Trial: A Phase 3 Study of Bardoxolone Methyl in Patients with Alport Syndrome , 2021, American Journal of Nephrology.
[2] Yuan-xin Tian,et al. Baicalein alleviates hyperuricemia by promoting uric acid excretion and inhibiting xanthine oxidase. , 2020, Phytomedicine : international journal of phytotherapy and phytopharmacology.
[3] O. A. Lawal,et al. A Lanosteryl Triterpene (RA-3) Exhibits Antihyperuricemic and Nephroprotective Effects in Rats , 2020, Molecules.
[4] Yun-Li Zhao,et al. "Kidney Tea" and Its Bioactive Secondary Metabolites for Treatment of Gout. , 2020, Journal of agricultural and food chemistry.
[5] Jie‐Kun Xu,et al. Triterpene saponins from the seeds of Erythrophleum fordii and their cytotoxic activities. , 2020, Phytochemistry.
[6] Yun-Li Zhao,et al. Acute and Chronic Toxicity of Indole Alkaloids from Leaves of Alstonia scholaris (L.) R. Br. in Mice and Rats , 2020, Natural Products and Bioprospecting.
[7] Komal Pandey,et al. Pharmaceutical perspective on bioactives from Alstonia scholaris: ethnomedicinal knowledge, phytochemistry, clinical status, patent space, and future directions , 2020, Phytochemistry Reviews.
[8] Rui Gao,et al. Pharmacokinetics and safety evaluation in healthy Chinese volunteers of alkaloids from leaf of Alstonia scholaris: A multiple doses phase I clinical trial. , 2019, Phytomedicine : international journal of phytotherapy and phytopharmacology.
[9] Ling Li,et al. Dual actions of norathyriol as a new candidate hypouricaemic agent: uricosuric effects and xanthine oxidase inhibition , 2019, European journal of pharmacology.
[10] Jiaoyan Ren,et al. Novel xanthine oxidase‐based cell model using HK‐2 cell for screening antihyperuricemic functional compounds , 2019, Free radical biology & medicine.
[11] Y. Bustanji,et al. Antihyperuricemic and xanthine oxidase inhibitory activities of Tribulus arabicus and its isolated compound, ursolic acid: In vitro and in vivo investigation and docking simulations , 2018, PloS one.
[12] Heng Li,et al. Phainanolide A, Highly Modified and Oxygenated Triterpenoid from Phyllanthus hainanensis. , 2017, Organic letters.
[13] C. Shyu,et al. Antibacterial and Synergistic Activity of Pentacyclic Triterpenoids Isolated from Alstonia scholaris , 2016, Molecules.
[14] C. Xia,et al. Alstoscholarisines H-J, Indole Alkaloids from Alstonia scholaris: Structural Evaluation and Bioinspired Synthesis of Alstoscholarisine H. , 2016, Organic letters.
[15] Yong Cao,et al. Antibacterial oleanane-type triterpenoids from pericarps of Akebia trifoliata. , 2015, Food chemistry.
[16] Jian-Mei Li,et al. Betaine Reduces Serum Uric Acid Levels and Improves Kidney Function in Hyperuricemic Mice , 2013, Planta Medica.
[17] Y. Jing,et al. Ursane-type pentacyclic triterpenoids as useful platforms to discover anticancer drugs. , 2012, Natural product reports.
[18] Hongbin Sun,et al. Synthesis, biology and clinical significance of pentacyclic triterpenes: a multi-target approach to prevention and treatment of metabolic and vascular diseases. , 2011, Natural product reports.
[19] Jikai Liu,et al. Alstonic acids A and B, unusual 2,3-secofernane triterpenoids from Alstonia scholaris. , 2009, Phytochemistry.
[20] Li Huang,et al. HIV-1 maturation inhibitors: An update , 2009, Drugs of the future.
[21] Y. Ebizuka,et al. Origin of structural diversity in natural triterpenes: direct synthesis of seco-triterpene skeletons by oxidosqualene cyclase. , 2007, Journal of the American Chemical Society.
[22] Y. Kuo,et al. Novel triterpenoids from the aerial roots of Ficus microcarpa. , 2002, The Journal of organic chemistry.
[23] A. Ikuta,et al. Triterpenes from Stauntonia hexaphylla callus tissues , 1992 .