|
[1]
|
Gersch, C., Palii, S.P., Kim, K.M., Angerhofer, A., Johnson, R.J. and Henderson, G.N. (2008) Inactivation of Nitric Oxide by Uric Acid. Nucleosides, Nucleotides & Nucleic Acids, 27, 967-978. [Google Scholar] [CrossRef] [PubMed]
|
|
[2]
|
Zhou, Y., Fang, L., Jiang, L., Wen, P., Cao, H., He, W., Dai, C. and Yang, J. (2012) Uric Acid Induces Renal Inflammation via Activating Tubular NF-κB Signaling Pathway. PLoS One, 7, e39738. [Google Scholar] [CrossRef] [PubMed]
|
|
[3]
|
Pacher, P., Nivorozhkin, A. and Szabó, C. (2006) Therapeutic Effects of Xanthine Oxidase Inhibitors: Renaissance Half a Century after the Discovery of Allopurinol. Pharmacological Reviews, 58, 87-114. [Google Scholar] [CrossRef] [PubMed]
|
|
[4]
|
Heel, R.C., Brogden, R.N., Speight, T.M., et al. (1977) Benzbromarone: A Review of Its Pharmacological Properties and Therapeutic Use in Gout and Hyperuricaemia. Drugs, 14, 349-366. [Google Scholar] [CrossRef] [PubMed]
|
|
[5]
|
Singh, G., Lingala, B. and Mithal, A. (2019) Gout and Hyperuricaemia in the USA: Prevalence and Trends. Rheumatology (Oxford, England), 58, 2177-2180. [Google Scholar] [CrossRef] [PubMed]
|
|
[6]
|
Liu, H., Zhang, X.M., Wang, Y.L. and Liu, B.C. (2014) Preva-lence of Hyperuricemia among Chinese Adults: A National Cross-Sectional Survey Using Multistage, Stratified Sam-pling. Journal of Nephrology, 27, 653-658. [Google Scholar] [CrossRef] [PubMed]
|
|
[7]
|
Kan, Y., Zhang, Z., Yang, K., Ti, M., Ke, Y., Wu, L., Yang, J. and He, Y. (2019) Influence of d-Amino Acids in Beer on Formation of Uric Acid. Food Technology and Biotechnology, 57, 418-425. [Google Scholar] [CrossRef] [PubMed]
|
|
[8]
|
Choi, H.K., Liu, S. and Curhan, G. (2005) Intake of Purine-Rich Foods, Protein, and Dairy Products and Relationship to Serum Levels of Uric Acid: The Third National Health and Nu-trition Examination Survey. Arthritis and Rheumatism, 52, 283-289. [Google Scholar] [CrossRef] [PubMed]
|
|
[9]
|
Yamada, N., Saito, C., Kano, H., Fukuuchi, T., Yamaoka, N., Kaneko, K. and Asami, Y. (2020) Lactobacillus Gasseri PA-3 Di-rectly Incorporates Purine Mononucleotides and Utilizes Them for Growth. Nucleosides, Nucleotides & Nucleic Acids, 1-10. [Google Scholar] [CrossRef] [PubMed]
|
|
[10]
|
Kuo, Y.W., Hsieh, S.H., Chen, J.F., Liu, C.R., Chen, C.W., Huang, Y.F. and Ho, H.H. (2021) Lactobacillus reuteri TSR332 and Lactobacillus Fermentum TSF331 Stabilize Serum Uric Acid Levels and Prevent Hyperuricemia in Rats. PeerJ, 9, e11209. [Google Scholar] [CrossRef] [PubMed]
|
|
[11]
|
Wang, H., Mei, L., Deng, Y., Liu, Y., Wei, X., Liu, M., Zhou, J., Ma, H., Zheng, P., Yuan, J., et al. (2019) Lactobacillus Brevis DM9218 Ameliorates Fructose-Induced Hyperuricemia through Inosine Degradation and Manipulation of Intestinal Dysbiosis. Nutrition, 62, 63-73. [Google Scholar] [CrossRef] [PubMed]
|
|
[12]
|
Guo, Y., Li, H., Liu, Z., Li, C., Chen, Y., Jiang, C., Yu, Y. and Tian, Z. (2019) Impaired Intestinal Barrier Function in a Mouse Model of Hyperuricemia. Molecular Medicine Reports, 20, 3292-3300. [Google Scholar] [CrossRef] [PubMed]
|
|
[13]
|
Wang, R., Ma, C.H., Zhou, F. and Kong, L.D. (2016) Siwu Decoc-tion Attenuates Oxonate-Induced Hyperuricemia and Kidney Inflammation in Mice. Chinese Journal of Natural Medi-cines, 14, 499-507. [Google Scholar] [CrossRef]
|
|
[14]
|
Serfilippi, L.M., Pallman, D.R. and Russell, B. (2003) Serum Clinical Chemistry and Hematology Reference Values in Outbred Stocks of Albino Mice from Three Commonly Used Vendors and Two Inbred Strains of Albino Mice. Contemporary Topics in Laboratory Animal Science, 42, 46-52.
|
|
[15]
|
Dolati, K., Rakhshandeh, H., Golestani, M., Forouzanfar, F., Sadeghnia, R. and Sadeghnia, H.R. (2018) In-hibitory Effects of Apiumgraveolens on Xanthine Oxidase Activity and Serum Uric Acid Levels in Hyperuricemic Mice. Preventive Nutrition and Food Science, 23, 127-133. [Google Scholar] [CrossRef] [PubMed]
|