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组合使用热温水消毒、连续水循环和最小化死腔空间对透析管道进行消毒,以维持超纯透析液并防止中央透析液输送系统中生物膜的形成。

Effectiveness of combination of heat water disinfection, continuous water circulation, and minimalized dead space for dialysis piping in maintaining ultrapure dialysis fluid and preventing biofilm formation in a central dialysis fluid delivery system.

机构信息

Sendai Makinose Urological Clinic, Kagoshima, Japan.

Graduate School of Health Sciences, Kyushu University of Health and Welfare, Nobeoka, Japan.

出版信息

J Artif Organs. 2023 Sep;26(3):220-225. doi: 10.1007/s10047-022-01362-z. Epub 2022 Sep 8.

DOI:10.1007/s10047-022-01362-z
PMID:36074207
Abstract

Various benefits have been attached to purifying the dialysis fluid used for hemodialysis therapy. The central dialysis fluid delivery system can treat approximately 50 dialysis patients simultaneously and is convenient to operate. In contrast, the dialysis fluid supply piping is complicated, and bacterial growth can cause biofilms. This study aimed to develop sustainable cleaning strategies to solve the complicated dialysis fluid piping, which is a weakness of the central dialysis fluid delivery system, and provide ultrapure dialysis fluid for a long term. Combination of heat water disinfection, continuous water circulation, and minimalized dead space in the dialysis piping were designed for a central dialysis fluid delivery system and used in a clinic for 6 years. As an index of water purification, endotoxin concentrations and microbial colony counts in reverse osmosis water and dialysis fluid were measured. In addition, we performed scanning electron microscopy of the silicon tube surface that had been used for 5 years to confirm the presence or absence of biofilm formation. For 6 years, endotoxin concentrations and microbial colonies were not detected in reverse osmosis water and dialysis fluid using the multiple-patient dialysis fluid supply equipment. The purity of the dialysis fluid was maintained. No biofilm formation was observed by scanning electron microscopy. Combination of heat water disinfection, continuous water circulation, and minimalized dead space designs for dialysis piping can supply ultrapure dialysis fluid with minimal biofilm formation in the piping in the long term.

摘要

各种益处都归因于对用于血液透析治疗的透析液进行净化。中央透析液输送系统可以同时治疗大约 50 名透析患者,并且操作方便。相比之下,透析液供应管道复杂,细菌生长会导致生物膜形成。本研究旨在开发可持续的清洁策略,以解决中央透析液输送系统中透析液管道复杂的问题,为长期提供超纯透析液提供解决方案。我们为中央透析液输送系统设计了热水消毒、连续水循环和最小化透析管道死腔的组合,并在诊所中使用了 6 年。作为水质净化的指标,测量了反渗透水和透析液中的内毒素浓度和微生物菌落计数。此外,我们对使用了 5 年的硅管表面进行了扫描电子显微镜检查,以确认是否形成了生物膜。在使用多患者透析液供应设备的 6 年中,反渗透水和透析液中均未检测到内毒素浓度和微生物菌落。透析液的纯度得以维持。扫描电子显微镜检查未观察到生物膜形成。对于透析液管道,采用热水消毒、连续水循环和最小化死腔设计的组合,可以在长期内提供超纯透析液,并且在管道中形成的生物膜最少。

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本文引用的文献

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瑞士可持续肾脏病工作组提供的十条关于如何让透析单元实现绿色环保的建议。
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当前和未来的透析领域。
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Predilution online hemodiafiltration is associated with improved survival compared with hemodialysis.预稀释在线血液透析滤过与血液透析相比可提高生存率。
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2011 JSDT standard on the management of endotoxin retentive filter for dialysis and related therapies.2011年日本透析技术协会关于透析及相关治疗中内毒素保留过滤器管理的标准。
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