[1] |
International Society of Nephrology. Global kidney health atlas [DB/OL]. 2019:
URL
|
[2] |
Saran R, Robinson B, Abbott KC, et al. US renal data system 2018 annual data report: epidemiology of kidney disease in the United States [J]. Am J Kidney Dis, 2019, 73(3 Supply 1): A7-A8.
|
[3] |
Kolff WJ. Dialysis in treatment of uremia: artificial kidney and peritoneal lavage [J]. AMA Arch Intern Med, 1954, 94(1): 142-160.
|
[4] |
Song JJ, Guyette JP, Gilpin SE, et al. Regeneration and experimental orthotopic transplantation of a bioengineered kidney [J]. Nat Med, 2013, 19(5): 646-651.
|
[5] |
Stamatialis DF, Papenburg BJ, Gironés M, et al. Medical applications of membranes: drug delivery, artificial organs and tissue engineering [J]. J Memb Sci, 2008, 308(1-2): 1-34.
|
[6] |
Gura V, Rivara MB, Bieber S, et al. A wearable artificial kidney for patients with end-stage renal disease [J]. JCI Insight, 2016, 1(8): e86397.
|
[7] |
Davenport A, Gura V, Ronco C, et al. A wearable hemodialysis device for patients with end-stage renal failure: a pilot study [J]. Lancet, 2007, 370(9604): 2005-2010.
|
[8] |
Ostadfar A, Ravcz A, Jones DD, et al. Pore geometry optimization for an implantable artificial kidney [J]. Med Tekh, 2014, 3: 37-40.
|
[9] |
Moon BM, Choi MJ, Sultan MT, et al. Novel fabrication method of the peritoneal dialysis filter using silk fibroin with urease fixation system [J]. Biomed Mater Res B Appl Biomater, 2017, 105(7): 2136-2144.
|
[10] |
Bazaev NA, Grinval′d VM, Pozhar KV, et al. Mathematical model of a biotechnical system for extra renal blood purification using a portable artificial kidney apparatus [J]. Biomed Eng, 2016, 49(5): 322-327.
|
[11] |
Gelder MK, Jong JAW, Folkertsma L, et al. Urea removal strategies for dialysate regeneration in a wearable artificial kidney [J]. Biomaterials, 2020, 234: 119735.
|
[12] |
Ronco C, Fecandini L. The Vicenza wearable artificial kidney for peritoneal dialysis (viWAK PD) [J]. Blood Purif, 2007, 25(4): 383-388.
|
[13] |
Clark WR, Ferrari F, Manna GL, et al. Extracorporeal sorbent technologies: basic concepts and clinical application [J]. Contrib Nephrol, 2017, 190: 43-57.
|
[14] |
Cheah WK, Ishikawa K, Othman R, et al. Nanoporous biomaterials for uremic toxin adsorption in artificial kidney systems: a review [J]. J Biomed Mater Res B Appl Biomater, 2017, 105(5): 1232-1240.
|
[15] |
Buffington DA, Pino CJ, Chen LJ, et al. Bioartificial renal epithelial cell system (BRECS): a compact, cryopreservable extracorporeal renal replacement device [J]. Cell Med, 2012, 4(1): 33-43.
|
[16] |
Johnston KA, Westover AJ, Rojas-Pena A, et al. Development of a wearable bioartificial kidney using the bioartificial renal epithelial cell system (BRECS) [J]. J Tissue Eng Regen Med, 2017, 11(11): 3048-3055.
|