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Portable, wearable and implantable artificial kidney systems: needs, opportunities and challenges

人工肾 医学 透析 重症监护医学 可穿戴计算机 再生(生物学) 风险分析(工程) 生物相容性材料 生化工程 生物医学工程 工程类 计算机科学 外科 嵌入式系统 生物 细胞生物学
作者
David Ramada,Joost C. de Vries,Jeroen C. Vollenbroek,Nazia Noor,Odyl ter Beek,Silvia M. Mihăilă,Fokko P. Wieringa,Rosalinde Masereeuw,Karin G. F. Gerritsen,Dimitrios Stamatialis
出处
期刊:Nature Reviews Nephrology [Nature Portfolio]
卷期号:19 (8): 481-490 被引量:41
标识
DOI:10.1038/s41581-023-00726-9
摘要

Haemodialysis is life sustaining but expensive, provides limited removal of uraemic solutes, is associated with poor patient quality of life and has a large carbon footprint. Innovative dialysis technologies such as portable, wearable and implantable artificial kidney systems are being developed with the aim of addressing these issues and improving patient care. An important challenge for these technologies is the need for continuous regeneration of a small volume of dialysate. Dialysate recycling systems based on sorbents have great potential for such regeneration. Novel dialysis membranes composed of polymeric or inorganic materials are being developed to improve the removal of a broad range of uraemic toxins, with low levels of membrane fouling compared with currently available synthetic membranes. To achieve more complete therapy and provide important biological functions, these novel membranes could be combined with bioartificial kidneys, which consist of artificial membranes combined with kidney cells. Implementation of these systems will require robust cell sourcing; cell culture facilities annexed to dialysis centres; large-scale, low-cost production; and quality control measures. These challenges are not trivial, and global initiatives involving all relevant stakeholders, including academics, industrialists, medical professionals and patients with kidney disease, are required to achieve important technological breakthroughs. Portable, wearable and implantable artificial kidney systems require compact and efficient dialysate regeneration systems and novel membranes for improved toxin removal and long-term patency. Here, the authors discuss efforts to overcome these challenges and future perspectives for achieving miniaturized dialysis.
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