The Future for End-Stage Kidney Disease Treatment: Implantable Bioartificial Kidney Challenge

被引:1
作者
Nalesso, Federico [1 ]
Garzotto, Francesco [2 ,3 ]
Cattarin, Leda [1 ]
Bettin, Elisabetta [1 ]
Cacciapuoti, Martina [1 ]
Silvestre, Cristina [4 ]
Stefanelli, Lucia F. [1 ]
Furian, Lucrezia [4 ]
Calo, Lorenzo A. [1 ]
机构
[1] Univ Padua, Dept Med, Nephrol Dialysis Kidney Transplant Unit, I-35128 Padua, Italy
[2] Univ Padua, Dept Cardiac Thorac Vasc Sci & Publ Hlth, Unit Biostat Epidemiol & Publ Hlth, I-35128 Padua, Italy
[3] ASL VCO, I-28922 Verbania, Italy
[4] Univ Padua, Dept Surg Oncol & Gastroenterol Sci, Kidney & Pancreas Transplant Unit, I-35128 Padua, Italy
来源
APPLIED SCIENCES-BASEL | 2024年 / 14卷 / 02期
关键词
end-stage renal disease; chronic kidney disease; kidney transplant; implantable bioartificial kidney; bioreactor; WEARABLE ULTRAFILTRATION DEVICE; AMMONIA METABOLISM; ARTIFICIAL-KIDNEY; SORBENT SYSTEM; HEMODIALYSIS; SILICON; REPLACEMENT; HEMOFILTER; UREA;
D O I
10.3390/app14020491
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Despite limited organ availability and post-transplant complications, kidney transplantation remains the optimal treatment for End-Stage Kidney Disease (ESKD). However, innovative dialysis technologies such as portable, wearable, and implantable bioartificial kidney systems are being developed with the aim of addressing these issues and improving patient care. An ideal implantable device could combine bioreactors and blood ultrafiltration to replicate key native cell functions for solute reabsorption, secretion, and endocrinologic activities. Today, the feasibility of an implantable bioreactor for renal cell therapy opens the challenge of developing a fully implantable bioartificial kidney based on silicon nanopore membranes to ensure immunological isolation, cell viability, and the possibility of maintaining a blood substrate for metabolic activities. Current technology is not sufficient to obtain an efficient artificial bioreactor to reach physiological blood purification, which requires a more complex system to produce an ultrafiltrate from the blood that can be processed by cells and eliminated as urine. The number of cells in the bioreactor, endocrine activity, immunological cell isolation, solute and fluid secretion/reabsorption, cell viability, blood and ultrafiltration flow control, and thrombogenicity are fundamental issues that require a new technology that today appears to be a challenge for the design of an implantable artificial kidney. This review aims to analyze the state of the art in this particular field of kidney replacement therapy to highlight the current limitations and possible future technology developments to create implanted and wearable organs capable of treating ESKD with artificial organs that can replicate all native kidneys functions.
引用
收藏
页数:13
相关论文
共 53 条
  • [1] ABBOTT WA, 1984, J BIOL CHEM, V259, P5393
  • [2] Wearable Devices for Blood Purification: Principles, Miniaturization, and Technical Challenges
    Armignacco, Paolo
    Lorenzin, Anna
    Neri, Mauro
    Nalesso, Federico
    Garzotto, Francesco
    Ronco, Claudio
    [J]. SEMINARS IN DIALYSIS, 2015, 28 (02) : 125 - 130
  • [3] BLUMENKRANTZ MJ, 1979, ARTIF ORGANS, V3, P230
  • [4] Integration of blood volume, blood pressure, heart rate and bioimpedance monitoring for the achievement of optimal dry body weight during chronic hemodialysis
    Bonello, M.
    House, A. A.
    Cruz, D.
    Asuman, Y.
    Andrikos, E.
    Petras, D.
    Strazzabosco, M.
    Ronco, F.
    Brendolan, A.
    Crepaldi, C.
    Nalesso, F.
    Ronco, C.
    [J]. INTERNATIONAL JOURNAL OF ARTIFICIAL ORGANS, 2007, 30 (12) : 1098 - 1108
  • [5] Health-Related Quality of Life in Home Dialysis Patients Compared to In-Center Hemodialysis Patients: A Systematic Review and Meta-analysis
    Bonenkamp, Anna A.
    van der Sluijs, Anita van Eck
    Hoekstra, Tiny
    Verhaar, Marianne C.
    van Ittersum, Frans J.
    Abrahams, Alferso C.
    van Jaarsveld, Brigit C.
    [J]. KIDNEY MEDICINE, 2020, 2 (02) : 139 - 154
  • [6] Bioartificial Renal Epithelial Cell System (BRECS): A Compact, Cryopreservable Extracorporeal Renal Replacement Device
    Buffington, Deborah A.
    Pino, Christopher J.
    Chen, Lijun
    Westover, Angela J.
    Hageman, Gretchen
    Humes, H. David
    [J]. CELL MEDICINE, 2012, 4 (01): : 33 - 43
  • [7] Wearable artificial kidney and wearable ultrafiltration device vascular accessfuture directions
    Castro, Ana Coutinho
    Neri, Mauro
    Karopadi, Akash Nayak
    Lorenzin, Anna
    Marchionna, Nicola
    Ronco, Claudio
    [J]. CLINICAL KIDNEY JOURNAL, 2019, 12 (02) : 300 - 307
  • [8] Davenport A, 2011, CONTRIB NEPHROL, V171, P237, DOI 10.1159/000327172
  • [9] Physical Activity and Quality of Life in Hemodialysis Patients and Healthy Controls: A Cross-Sectional Study
    Filipcic, Tjasa
    Bogataj, Spela
    Pajek, Jernej
    Pajek, Maja
    [J]. INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH, 2021, 18 (04) : 1 - 10
  • [10] Bioartificial kidney alters cytokine response and hemodynamics in endotoxin-challenged uremic animals
    Fissell, WH
    Dyke, DB
    Weitzel, WF
    Buffington, DA
    Westover, AJ
    MacKay, SM
    Gutierrez, JM
    Humes, HD
    [J]. BLOOD PURIFICATION, 2002, 20 (01) : 55 - 60