uric acid has been researched along with Nephritis in 48 studies
Uric Acid: An oxidation product, via XANTHINE OXIDASE, of oxypurines such as XANTHINE and HYPOXANTHINE. It is the final oxidation product of purine catabolism in humans and primates, whereas in most other mammals URATE OXIDASE further oxidizes it to ALLANTOIN.
uric acid : An oxopurine that is the final oxidation product of purine metabolism.
6-hydroxy-1H-purine-2,8(7H,9H)-dione : A tautomer of uric acid having oxo groups at C-2 and C-8 and a hydroxy group at C-6.
7,9-dihydro-1H-purine-2,6,8(3H)-trione : An oxopurine in which the purine ring is substituted by oxo groups at positions 2, 6, and 8.
Nephritis: Inflammation of any part of the KIDNEY.
Excerpt | Relevance | Reference |
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" The effects of API on renal function, inflammation, fibrosis, and uric acid (UA) metabolism in mice with HN were evaluated." | 8.02 | Apigenin ameliorates hyperuricemic nephropathy by inhibiting URAT1 and GLUT9 and relieving renal fibrosis via the Wnt/β-catenin pathway. ( Cao, Y; Chen, Y; Huang, Q; Jiang, Y; Li, L; Li, Y; Luo, J; Pang, J; Wu, T; Zhang, L; Zhao, Z; Zhou, P, 2021) |
" Such lesions were only produced by very high dosage (approximately 0." | 5.24 | Experimental uric acid nephritis in the rabbit. ( CHEN, YC; SMITH, JF, 1957) |
" However, its mechanism of action on lowering uric acid (UA) and inhibiting inflammation still deserves further investigation." | 4.31 | Simiao San alleviates hyperuricemia and kidney inflammation by inhibiting NLRP3 inflammasome and JAK2/STAT3 signaling in hyperuricemia mice. ( Dai, X; Gao, S; Liu, T; Liu, Y; Orekhov, AN; Shi, H; Sukhorukov, V; Wang, L; Wang, S; Xu, T; Yin, J; Zhang, D; Zhang, Y; Zhao, D, 2023) |
"To compare uric acid levels in children with Henoch-Schonlein purpura (HSP)without nephritis and with renal damage, and at different pathological grades." | 4.31 | Risk due to Elevated Uric Acid Levels in Children With Henoch-Schonlein Purpura. ( Han, X; Xu, P, 2023) |
" The effects of API on renal function, inflammation, fibrosis, and uric acid (UA) metabolism in mice with HN were evaluated." | 4.02 | Apigenin ameliorates hyperuricemic nephropathy by inhibiting URAT1 and GLUT9 and relieving renal fibrosis via the Wnt/β-catenin pathway. ( Cao, Y; Chen, Y; Huang, Q; Jiang, Y; Li, L; Li, Y; Luo, J; Pang, J; Wu, T; Zhang, L; Zhao, Z; Zhou, P, 2021) |
"The influence of serum urate on kidney disease is attracting attention, but the effects of uric acid (UA) on nephrosclerosis have not been elucidated." | 3.85 | Hyperuricemia as a Predictive Marker for Progression of Nephrosclerosis: Clinical Assessment of Prognostic Factors in Biopsy-Proven Arterial/Arteriolar Nephrosclerosis. ( Kataoka, H; Mochizuki, T; Momoki, K; Moriyama, T; Nitta, K, 2017) |
"Asymptomatic hyperuricemia is frequently observed in patients with kidney disease." | 2.66 | Uric acid and inflammation in kidney disease. ( Jung, SW; Kim, SM; Kim, YG; Lee, SH; Moon, JY, 2020) |
"Patients with ESRD undergo frequent maintenance (haemo)dialysis treatment, and finally must receive a combined liver-kidney transplantation as the only curative treatment option available in PH Type 1." | 2.61 | Targeting kidney inflammation as a new therapy for primary hyperoxaluria? ( Hoppe, B; Kurts, C; Ludwig-Portugall, I; Martin-Higueras, C, 2019) |
"Dipyridamole pretreatment in gentamicin-administered rats afforded a noticeable renoprotection by markedly preventing renal structural and functional abnormalities, renal inflammation and serum uric acid elevation." | 1.46 | Effects of pre and post-treatments with dipyridamole in gentamicin-induced acute nephrotoxicity in the rat. ( Bahari, MB; Balakumar, P; Gan, YS; Jayachristy, SA; JemayPuah, SM; Kuganesswari, S; Prajapati, SK; Sundram, K; Varatharajan, R; WitnessKoe, WE, 2017) |
"Allopurinol treatment significantly lowered uric acid levels, reduced albuminuria, and ameliorated tubulointerstitial injury, but it did not prevent mesangial expansion." | 1.35 | Effect of lowering uric acid on renal disease in the type 2 diabetic db/db mice. ( Heinig, M; Johnson, RJ; Kosugi, T; Nakagawa, T; Nakayama, T; Roncal, C; Sanchez-Lozada, LG; Yuzawa, Y; Zhang, L, 2009) |
"Uric acid level was high in the serum and the carbamide-N and creatinine showed also increased values." | 1.28 | [Hyperuricacidemic nephrogenic diabetes insipidus]. ( Lengyel, I, 1991) |
Timeframe | Studies, this research(%) | All Research% |
---|---|---|
pre-1990 | 26 (54.17) | 18.7374 |
1990's | 1 (2.08) | 18.2507 |
2000's | 4 (8.33) | 29.6817 |
2010's | 10 (20.83) | 24.3611 |
2020's | 7 (14.58) | 2.80 |
Authors | Studies |
---|---|
Zhang, Y | 5 |
Wang, S | 2 |
Dai, X | 2 |
Liu, T | 2 |
Liu, Y | 2 |
Shi, H | 2 |
Yin, J | 2 |
Xu, T | 2 |
Zhao, D | 1 |
Sukhorukov, V | 2 |
Orekhov, AN | 2 |
Gao, S | 2 |
Wang, L | 2 |
Zhang, D | 2 |
Han, X | 1 |
Xu, P | 1 |
Lu, M | 1 |
Mo, F | 1 |
Han, J | 1 |
Wang, X | 1 |
Tang, S | 1 |
Lu, C | 1 |
Wan, H | 1 |
Zhou, J | 1 |
Li, Y | 2 |
Ming, T | 1 |
Wang, ZJ | 1 |
Su, X | 1 |
Jung, SW | 1 |
Kim, SM | 1 |
Kim, YG | 1 |
Lee, SH | 1 |
Moon, JY | 1 |
Zheng, Y | 1 |
Guan, H | 1 |
Zhou, X | 1 |
Xu, Y | 1 |
Fu, C | 1 |
Xiao, J | 2 |
Ye, Z | 1 |
Zhao, Z | 2 |
Luo, J | 1 |
Jiang, Y | 1 |
Li, L | 1 |
Chen, Y | 1 |
Zhang, L | 2 |
Huang, Q | 1 |
Cao, Y | 1 |
Zhou, P | 1 |
Wu, T | 1 |
Pang, J | 1 |
Martin-Higueras, C | 1 |
Ludwig-Portugall, I | 1 |
Hoppe, B | 1 |
Kurts, C | 1 |
Ye, Y | 1 |
Wang, B | 1 |
Walana, W | 1 |
Wei, J | 1 |
Gordon, JR | 1 |
Li, F | 1 |
Milanesi, S | 1 |
Verzola, D | 1 |
Cappadona, F | 1 |
Bonino, B | 1 |
Murugavel, A | 1 |
Pontremoli, R | 1 |
Garibotto, G | 1 |
Viazzi, F | 1 |
Mulay, SR | 1 |
Evan, A | 1 |
Anders, HJ | 1 |
Choe, JY | 1 |
Park, KY | 1 |
Kim, SK | 1 |
Viers, BR | 1 |
Lieske, JC | 1 |
Vrtiska, TJ | 1 |
Herrera Hernandez, LP | 1 |
Vaughan, LE | 1 |
Mehta, RA | 1 |
Bergstralh, EJ | 1 |
Rule, AD | 1 |
Holmes, DR | 1 |
Krambeck, AE | 1 |
Momoki, K | 1 |
Kataoka, H | 1 |
Moriyama, T | 1 |
Mochizuki, T | 1 |
Nitta, K | 1 |
Balakumar, P | 1 |
WitnessKoe, WE | 1 |
Gan, YS | 1 |
JemayPuah, SM | 1 |
Kuganesswari, S | 1 |
Prajapati, SK | 1 |
Varatharajan, R | 1 |
Jayachristy, SA | 1 |
Sundram, K | 1 |
Bahari, MB | 1 |
Lu, S | 1 |
Liu, D | 1 |
Cheng, G | 1 |
Zhang, X | 1 |
Liu, Z | 1 |
Kosugi, T | 1 |
Nakayama, T | 1 |
Heinig, M | 1 |
Yuzawa, Y | 1 |
Sanchez-Lozada, LG | 1 |
Roncal, C | 1 |
Johnson, RJ | 1 |
Nakagawa, T | 1 |
Jabur, WL | 1 |
Zhou, Y | 1 |
Fang, L | 1 |
Jiang, L | 1 |
Wen, P | 1 |
Cao, H | 1 |
He, W | 1 |
Dai, C | 1 |
Yang, J | 1 |
SMITH, JF | 1 |
CHEN, YC | 1 |
AGNOLETTO, A | 1 |
CARNELUTTI, M | 1 |
CONTI, M | 1 |
FOA, V | 1 |
RICHET, G | 1 |
ALBAHARY, C | 1 |
ARDAILLOU, R | 1 |
SULTAN, C | 1 |
MOREL-MAROGER, A | 1 |
THOMAS, J | 1 |
THOMAS, E | 1 |
RABUSSIER, H | 1 |
DESGREZ, P | 1 |
DUNCAN, GG | 1 |
DUNCAN, TG | 1 |
SCHLESS, GL | 1 |
CRISTOFORI, FC | 1 |
Rodriguez-Iturbe, B | 1 |
Vaziri, ND | 1 |
Delbarre, F | 1 |
Auscher, C | 1 |
Aignan, M | 1 |
Fournout, J | 1 |
Fabre, P | 1 |
Lagarde, G | 1 |
Hanssen, I | 2 |
Pirson, Y | 1 |
Loute, G | 1 |
Cosyns, JP | 1 |
Dahan, K | 1 |
Verellen, C | 1 |
Lebedev, VP | 1 |
Boĭtsova, NA | 1 |
Tsybysheva, AK | 1 |
Klinenberg, JR | 3 |
Bluestone, R | 3 |
Waisman, J | 3 |
Suzuki, Y | 1 |
Hara, S | 1 |
Mimura, N | 1 |
Lengyel, I | 1 |
Maksimov, NA | 1 |
Varshavskiĭ, VA | 1 |
Balkarov, IM | 2 |
Pal'tsev, MA | 1 |
Poliantseva, LR | 2 |
Maksimov, NM | 1 |
Aleksandrovskaia, TN | 1 |
Pintér, J | 1 |
Wölfer, E | 1 |
Berlyne, GM | 1 |
Shaw, AB | 1 |
Nilwarangkur, S | 1 |
Wessels, F | 1 |
Heinze, A | 1 |
Oberwittler, W | 1 |
Losse, H | 1 |
Boodt, PJ | 1 |
Janssens, J | 1 |
Vertuno, LL | 1 |
Preuss, HG | 1 |
Argy, WP | 1 |
Schreiner, GE | 1 |
Schewitz, LJ | 1 |
Tanabe, Y | 1 |
Kiely, JM | 1 |
Wagoner, RD | 1 |
Holley, KE | 1 |
Jolley, RL | 1 |
Scott, CD | 1 |
Emmerson, BT | 1 |
Schubert, R | 1 |
Axmacher, K | 1 |
5 reviews available for uric acid and Nephritis
Article | Year |
---|---|
Uric acid and inflammation in kidney disease.
Topics: Animals; Biomarkers; Humans; Hyperuricemia; Kidney; Nephritis; Risk Assessment; Risk Factors; Signal | 2020 |
Targeting kidney inflammation as a new therapy for primary hyperoxaluria?
Topics: Adolescent; Adult; Animals; Calcium Oxalate; Child; Child, Preschool; Disease Models, Animal; Humans | 2019 |
Salt-sensitive hypertension--update on novel findings.
Topics: Humans; Hypertension; Insulin; Nephritis; Nephrons; Oxidative Stress; Sodium Channels; Sodium, Dieta | 2007 |
Autosomal-dominant chronic interstitial nephritis with early hyperuricemia.
Topics: Chronic Disease; Genes, Dominant; Humans; Kidney; Kidney Transplantation; Nephritis; Uric Acid | 2000 |
Hypertension and renal disease in pregnancy.
Topics: Adrenal Cortex Hormones; Animals; Biopsy; Body Weight; Diet, Sodium-Restricted; Eclampsia; Edema; Fe | 1971 |
43 other studies available for uric acid and Nephritis
Article | Year |
---|---|
Simiao San alleviates hyperuricemia and kidney inflammation by inhibiting NLRP3 inflammasome and JAK2/STAT3 signaling in hyperuricemia mice.
Topics: Animals; Creatinine; Hyperuricemia; Inflammasomes; Inflammation; Interleukin-10; Interleukin-6; Janu | 2023 |
Risk due to Elevated Uric Acid Levels in Children With Henoch-Schonlein Purpura.
Topics: Child; Creatinine; Cystatin C; Humans; IgA Vasculitis; Nephritis; Uric Acid | 2023 |
Fuling-Zexie formula attenuates hyperuricemia-induced nephropathy and inhibits JAK2/STAT3 signaling and NLRP3 inflammasome activation in mice.
Topics: Albumins; Animals; Chromatography, Liquid; Fibrosis; Hyperuricemia; Inflammasomes; Inflammation; Int | 2024 |
Protective effects of tuna meat oligopeptides (TMOP) supplementation on hyperuricemia and associated renal inflammation mediated by gut microbiota.
Topics: Animals; Anti-Inflammatory Agents; Dietary Supplements; Fish Proteins, Dietary; Gastrointestinal Mic | 2020 |
The association of renal tubular inflammatory and injury markers with uric acid excretion in chronic kidney disease patients.
Topics: Acute Kidney Injury; Adult; Aged; Biomarkers; Correlation of Data; Cross-Sectional Studies; Female; | 2020 |
Apigenin ameliorates hyperuricemic nephropathy by inhibiting URAT1 and GLUT9 and relieving renal fibrosis via the Wnt/β-catenin pathway.
Topics: Animals; Apigenin; beta Catenin; Creatinine; Dose-Response Relationship, Drug; Fibrosis; Glucose Tra | 2021 |
CXCR1/CXCR2 antagonist G31P inhibits nephritis in a mouse model of uric acid nephropathy.
Topics: Animals; Blood Urea Nitrogen; Chemokine CXCL1; Disease Models, Animal; Humans; Interleukin-8; Kidney | 2018 |
Uric acid and angiotensin II additively promote inflammation and oxidative stress in human proximal tubule cells by activation of toll-like receptor 4.
Topics: Angiotensin II; Angiotensin II Type 1 Receptor Blockers; Cell Line; Chemokine CCL2; Humans; Immunity | 2019 |
Molecular mechanisms of crystal-related kidney inflammation and injury. Implications for cholesterol embolism, crystalline nephropathies and kidney stone disease.
Topics: Animals; Embolism, Cholesterol; Gout; Humans; Inflammasomes; Kidney; Kidney Calculi; Nephritis; Uric | 2014 |
Oxidative stress by monosodium urate crystals promotes renal cell apoptosis through mitochondrial caspase-dependent pathway in human embryonic kidney 293 cells: mechanism for urate-induced nephropathy.
Topics: Apoptosis; Apoptosis Regulatory Proteins; Caspases; Cyclooxygenase 2; HEK293 Cells; Humans; Kidney; | 2015 |
Endoscopic and histologic findings in a cohort of uric acid and calcium oxalate stone formers.
Topics: Aged; Biopsy; Calcium Oxalate; Case-Control Studies; Creatinine; Diabetes Mellitus; Endoscopy; Femal | 2015 |
Hyperuricemia as a Predictive Marker for Progression of Nephrosclerosis: Clinical Assessment of Prognostic Factors in Biopsy-Proven Arterial/Arteriolar Nephrosclerosis.
Topics: Adolescent; Adult; Aged; Biomarkers; Biopsy; Cohort Studies; Comorbidity; Disease Progression; Femal | 2017 |
Effects of pre and post-treatments with dipyridamole in gentamicin-induced acute nephrotoxicity in the rat.
Topics: Animals; Anti-Inflammatory Agents; Biomarkers; Creatinine; Cytoprotection; Dipyridamole; Disease Mod | 2017 |
Correlation Between Clinicaland Pathological Characteristics of Henoch-Schönlein Purpura Nephritis in Adults.
Topics: Adult; Age Factors; Biopsy; China; Cystatin C; Feasibility Studies; Female; Humans; IgA Vasculitis; | 2016 |
Effect of lowering uric acid on renal disease in the type 2 diabetic db/db mice.
Topics: Albuminuria; Allopurinol; Animals; Blood Pressure; Blood Urea Nitrogen; Cell Line; Diabetes Mellitus | 2009 |
Acute urate nephropathy precipitated by acute diarrhea.
Topics: Acute Disease; Biomarkers; Creatinine; Diarrhea; Fluid Therapy; Humans; Hyperuricemia; Male; Middle | 2009 |
Uric acid induces renal inflammation via activating tubular NF-κB signaling pathway.
Topics: Animals; Cell Line; Chemokine CCL2; Chemokine CCL5; Kidney Tubules; Mice; Nephritis; NF-kappa B; Sig | 2012 |
Experimental uric acid nephritis in the rabbit.
Topics: Animals; Kidney; Kidney Tubules, Distal; Nephritis; Rabbits; Uric Acid | 1957 |
MEDICAL GRAND ROUNDS OF THE METHODIST HOSPITAL HOUSTON, TEXAS. SUBJECT: GOUTY NEPHRITIS.
Topics: Acetazolamide; Anuria; Blood Chemical Analysis; Body Fluids; Gout; Nephritis; Nephrosclerosis; Patho | 1964 |
[THE KIDNEY IN CHRONIC LEAD POISONING].
Topics: Edetic Acid; Electrons; Gout; Humans; Hypertension; Kidney; Kidney Diseases; Kidney Function Tests; | 1964 |
[STUDY OF URINARY CITRATES IN RENAL LITHIASIS. PRELIMINARY RESULTS].
Topics: Citrates; Humans; Kidney Calculi; Lithiasis; Nephritis; Nephrolithiasis; Oxalates; Phosphates; Uric | 1964 |
SOME HAZARDS OF TOTAL FASTS IN THE CONTROL OF OBESITY AND DIABETES AND THEIR PREVENTION.
Topics: Anemia; Atrial Flutter; Blood; Diabetes Mellitus; Diet, Reducing; Fasting; Fatigue; Gout; Humans; Ne | 1964 |
[Data for the study of the gouty kidney].
Topics: Adolescent; Adult; Female; Glomerulonephritis; Gout; Humans; Kidney Calculi; Kidney Diseases, Cystic | 1967 |
Clostridium perfringens type A toxins in relation to nephritis and uric acid diathesis in captive willow ptarmigan (Lagopus l. lagopus).
Topics: Animals; Bird Diseases; Birds; Clostridium perfringens; Disease Susceptibility; Enterotoxins; Female | 1982 |
Nephritis and uric acid diathesis in captive willow ptarmigan (Lagopus l. lagopus). Effect of feed protein concentration and grass meal admixture.
Topics: Animals; Bird Diseases; Birds; Diet; Dietary Proteins; Disease Susceptibility; Female; Male; Nephrit | 1982 |
[Use of the uricosuric preparations and allopurinol in children with uratic nephropathies].
Topics: Adolescent; Allopurinol; Child; Child, Preschool; Drug Therapy, Combination; Humans; Nephritis; Puri | 1978 |
Suppression of experimental urate nephropathy by salicylate.
Topics: Animals; Nephritis; Oxonic Acid; Rats; Salicylates; Triazines; Uric Acid | 1977 |
Nephropathy and urinary stones in hyperuricemic rats. The effect of aspirin.
Topics: Animals; Aspirin; Disease Models, Animal; Granuloma; Male; Nephritis; Rats; Uric Acid; Urinary Calcu | 1977 |
[Uric acid metabolism in kidney diseases, with special reference to hyperuricemia in chronic nephritis].
Topics: Adult; Aged; Chronic Disease; Female; Humans; Male; Middle Aged; Nephritis; Uric Acid | 1975 |
[Hyperuricacidemic nephrogenic diabetes insipidus].
Topics: Diabetes Insipidus; Drinking; Humans; Male; Middle Aged; Nephritis; Polyuria; Thirst; Uric Acid | 1991 |
[Immune complex hyperuricemic nephritis: aspects of its morphology and pathogenesis].
Topics: Biopsy, Needle; Glomerular Mesangium; Glomerulonephritis; Gout; Humans; Immune Complex Diseases; Kid | 1986 |
[Disorders of purine metabolism as an etiological factor in renal pathology].
Topics: Arthritis, Gouty; Humans; Kidney; Metabolic Clearance Rate; Nephritis; Uric Acid | 1988 |
[Current problems of the uremic syndrome].
Topics: Adult; Blood Urea Nitrogen; Chronic Disease; Creatinine; Female; Humans; Male; Nephritis; Prognosis; | 1969 |
Dietary treatment of chronic renal failure. Experiences with a modified Giovannetti diet.
Topics: Acidosis; Acute Kidney Injury; Adolescent; Adult; Aged; Arteritis; Dietary Proteins; Edema; Female; | 1965 |
[The genesis of hyperuricemia in patients with essential hypertension (author's transl)].
Topics: Adult; Angiotensin II; Biological Transport; Blood Pressure; Body Weight; Creatinine; Electrolytes; | 1974 |
[Between Scylla and Charybdis; pregnancy in chronic nephritis].
Topics: Adult; Chronic Disease; Creatinine; Estrogens; Female; Humans; Nephritis; Placental Lactogen; Pregna | 1974 |
Fanconi syndrome following homotransplantation.
Topics: Adult; Azathioprine; Cadaver; Carbon Dioxide; Creatinine; Fanconi Syndrome; Glycosuria; Humans; Kidn | 1974 |
A preliminary report of nephropathy in hyperuricemic rats.
Topics: Animals; Body Weight; Disease Models, Animal; Gout; Kidney; Kidney Calculi; Kidney Diseases; Kidney | 1974 |
[Studies on uric acid metabolism in man. 2. Studies on uric acid metabolism in patients with hyperuricemia].
Topics: Adolescent; Adult; Aged; Female; Gout; Humans; Male; Metabolic Diseases; Middle Aged; Nephritis; Uri | 1971 |
Renal complications of lymphoma.
Topics: Adult; Aged; Amyloidosis; Female; Humans; Hydronephrosis; Hypercalcemia; Hypertension, Renal; Kidney | 1969 |
Preliminary results from high-resolution analyses of ultraviolet-absorbing and carbohydrate constituents in several pathologic body fluids.
Topics: Adolescent; Adult; Alkaptonuria; Allopurinol; Amniotic Fluid; Athetosis; Carbohydrates; Chorea; Chro | 1970 |
The clinical differentiation of lead gout from primary gout.
Topics: Alcohol Drinking; Body Height; Body Weight; Child Behavior Disorders; Diagnosis, Differential; Envir | 1968 |
[Polyvinylpyrrolidone in restricted renal function].
Topics: Adult; Aged; Blood Protein Electrophoresis; Creatine; Female; Humans; Kidney Diseases, Cystic; Male; | 1965 |