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Journal of Clinical Medicine|April 3, 2020
The Optimal Range of Serum Uric Acid for Cardiometabolic Diseases: A 5-Year Japanese Cohort StudyMasanari Kuwabara, Ichiro Hisatome, Koichiro Niwa, et al.
American Journal of Physiology. Endocrinology and Metabolism|June 24, 2020
Sugar causes obesity and metabolic syndrome in mice independently of sweet tasteAna Andres-Hernando, Masanari Kuwabara, David J Orlicky, et al.
Journal of Hypertension|December 4, 2018
Fasting blood glucose is predictive of hypertension in a general Japanese populationMasanari Kuwabara, Yaswanth Chintaluru, Mehmet Kanbay, et al.
Philosophical Transactions of the Royal Society of London. Series B, Biological Sciences|July 24, 2023
The fructose survival hypothesis for obesityRichard J Johnson, Miguel A Lanaspa, L Gabriela Sanchez-Lozada, et al.
Frontiers in Immunology|July 5, 2021
Endogenous Fructose Metabolism Could Explain the Warburg Effect and the Protection of SGLT2 Inhibitors in Chronic Kidney DiseaseTakahiko Nakagawa, Laura G Sanchez-Lozada, Ana Andres-Hernando, et al.
American Journal of Physiology. Renal Physiology|August 24, 2006
Interaction of MAP17 with NHERF3/4 induces translocation of the renal Na/Pi IIa transporter to the trans-GolgiMiguel A Lanaspa, Héctor Giral, Sophia Y Breusegem, et al.
Iscience|July 18, 2022
Pulmonary surfactants and the respiratory-renal connection in steroid-sensitive nephrotic syndrome of childhoodGabriel Cara-Fuentes, Ana Andres-Hernando, Colin Bauer, et al.
Chemico-Biological Interactions|January 26, 2013
ALDH16A1 is a novel non-catalytic enzyme that may be involved in the etiology of gout via protein-protein interactions with HPRT1Vasilis Vasiliou, Monica Sandoval, Donald S Backos, et al.
Diabetologia|June 8, 2015
Fructose and uric acid in diabetic nephropathyPetter Bjornstad, Miguel A Lanaspa, Takuji Ishimoto, et al.
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