For: | Bilbault H, Haymann JP. Experimental models of renal calcium stones in rodents. World J Nephrol 2016; 5(2): 189-194 [PMID: 26981444 DOI: 10.5527/wjn.v5.i2.189] |
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URL: | https://www.wjgnet.com/2220-6124/full/v5/i2/189.htm |
Number | Citing Articles |
1 |
Lauren P. Kane, Copper Aitken-Palmer, Sara Sokolik, Nicole I. Stacy, Michael J. Adkesson, Sathya K. Chinnadurai, Jennifer N. Langan, Laura Adamovicz, Matthew C. Allender. CLINICOPATHOLOGIC EVALUATION OF AN EX SITU POPULATION OF ADULT AFRICAN WHITE-BELLIED PANGOLIN (PHATAGINUS TRICUSPIS). Journal of Zoo and Wildlife Medicine 2022; 53(3) doi: 10.1638/2021-0055
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2 |
Rais A. Ansari, Kazim Husain, Shakil A. Saghir. Patty's Toxicology. 2023; : 1 doi: 10.1002/0471125474.tox070.pub3
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3 |
Rohan S. Virgincar, Aaron K. Wong, Kai H. Barck, Joshua D. Webster, Jeffrey Hung, Patrick Caplazi, Man Kin Choy, William F. Forrest, Laura C. Bell, Alex J. de Crespigny, Debra Dunlap, Charles Jones, Dong Eun Kim, Robby M. Weimer, Andrey S. Shaw, Hans D. Brightbill, Luke Xie. Diffusion tensor MRI is sensitive to fibrotic injury in a mouse model of oxalate-induced chronic kidney disease. American Journal of Physiology-Renal Physiology 2024; 327(2): F235 doi: 10.1152/ajprenal.00099.2024
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4 |
Yuhao Liu, Ying Zhao, Yousef Shukha, Haocheng Lu, Lu Wang, Zhipeng Liu, Cai Liu, Yang Zhao, Huilun Wang, Guizhen Zhao, Wenying Liang, Yanbo Fan, Lin Chang, Arif Yurdagul, Christopher B. Pattillo, A. Wayne Orr, Michael Aviram, Bo Wen, Minerva T. Garcia-Barrio, Jifeng Zhang, Wanqing Liu, Duxin Sun, Tony Hayek, Y. Eugene Chen, Oren Rom. Dysregulated oxalate metabolism is a driver and therapeutic target in atherosclerosis. Cell Reports 2021; 36(4): 109420 doi: 10.1016/j.celrep.2021.109420
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5 |
Wei Zhu, Yang Liu, Yu Lan, Xiaohang Li, Lianmin Luo, Xiaolu Duan, Ming Lei, Guanzhao Liu, Zhou Yang, Xin Mai, Yan Sun, Li Wang, Suilin Lu, Lili Ou, Wenqi Wu, Zanlin Mai, Dongliang Zhong, Chao Cai, Zhijian Zhao, Wen Zhong, Yongda Liu, Yin Sun, Guohua Zeng. Dietary vinegar prevents kidney stone recurrence via epigenetic regulations. EBioMedicine 2019; 45: 231 doi: 10.1016/j.ebiom.2019.06.004
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6 |
Shiyao Wang, Yingjie Ju, Lujuan Gao, Yaodong Miao, Huanhuan Qiao, Yiwen Wang. The fruit fly kidney stone models and their application in drug development. Heliyon 2022; 8(4): e09232 doi: 10.1016/j.heliyon.2022.e09232
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7 |
Monika D. Kale, Sonal P. Kadam, Bhupendra V. Shravage, Vandana S. Nikam. From computational prediction to experimental validation: Hesperidin's anti-Urolithiatic activity in sodium oxalate-induced urolithiasis models in fruit flies and mice. Toxicology and Applied Pharmacology 2024; 492: 117104 doi: 10.1016/j.taap.2024.117104
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8 |
Shiyao Wang, Yingjie Ju, Lujuan Gao, Yaodong Miao, Huanhuan Qiao, Yiwen Wang. Fruit Fly Kidney Stone Models for Drug Development. SSRN Electronic Journal 2022; doi: 10.2139/ssrn.4017356
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9 |
Mohamed S. Al‐Marhoon, Ahmed Al‐Harrasi, Khurram Siddiqui, Mohammed Ashique, Haytham Ali, Badreldin H. Ali. Effects of frankincense on experimentally induced renal stones in rats. BJUI Compass 2023; 4(4): 437 doi: 10.1002/bco2.227
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10 |
Sumanjali C., Shashidhar M., Sravani M., K. Reddy Babu, Tejeswarudu B., C. Deepthi Kalyani. Anti-Urolithiatic Activity of the Ethanolic Extract of Cassia auriculata
against Ethylene Glycol Induced Urolithiasis in Experimental Rats. Research Journal of Pharmacy and Technology 2021; : 5207 doi: 10.52711/0974-360X.2021.00906
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11 |
Heather A. L. Riddle, Shiqin Zhang, Feng Qian, James C. Williams, Jason R. Stubbs, Peter Stanley N. Rowe, Stephen C. Parnell. Kidney stone formation in a novel murine model of polycystic kidney disease. American Journal of Physiology-Renal Physiology 2022; 323(1): F59 doi: 10.1152/ajprenal.00165.2021
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12 |
Christopher S. Ward, Teng-Wei Huang, José A. Herrera, Rodney C. Samaco, Meagan R. Pitcher, Alan Herron, Steven A. Skinner, Walter E. Kaufmann, Daniel G. Glaze, Alan K. Percy, Jeffrey L. Neul, Nicoletta Landsberger. Loss of MeCP2 Causes Urological Dysfunction and Contributes to Death by Kidney Failure in Mouse Models of Rett Syndrome. PLOS ONE 2016; 11(11): e0165550 doi: 10.1371/journal.pone.0165550
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13 |
Nahla E. El-Ashmawy, Hoda A. El-Bahrawy, Heba H. Ashmawy, Eman G. Khedr, Rosanna Di Paola. Amelioration of lithiatic injury to renal tissue by candesartan and sodium thiosulfate in a rat model of nephrolithiasis. PLOS ONE 2021; 16(5): e0251408 doi: 10.1371/journal.pone.0251408
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14 |
Ayse Betul Ergul, Mehmet Kara, Cigdem Karakukcu, Arzu Tasdemir, Humeyra Aslaner, Mehmet Ali Ergul, Sebahattin Muhtaroglu, Gozde Erturk Zararsiz, Yasemin Altuner Torun. High Doses of Boron Have No Protective Effect Against Nephrolithiasis or Oxidative Stress in a Rat Model. Biological Trace Element Research 2018; 186(1): 218 doi: 10.1007/s12011-018-1294-1
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15 |
А.К. Масальцев, В.Б. Бородулин. Models for development of calcium-oxalate and calcium-phosphate urolithiasis in experimental conditions. Nauchno-prakticheskii zhurnal «Patogenez» 2018; (1()): 11 doi: 10.25557/2310-0435.2018.01.11-16
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16 |
John A. Sayer. Progress in Understanding the Genetics of Calcium-Containing Nephrolithiasis. Journal of the American Society of Nephrology 2017; 28(3): 748 doi: 10.1681/ASN.2016050576
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17 |
Darrion Walker, Michael T. Gardner, Haile Dennis, Mitko Voutchkov. A simple assessment of the effect of strontium on the urinary excretion of calcium in Sprague Dawley rats. Urolithiasis 2023; 51(1) doi: 10.1007/s00240-023-01427-5
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