Literature DB >> 21272255

Evaluation of dialyzer jacket structure and hollow-fiber dialysis membranes to achieve high dialysis performance.

Ayaka Hirano1, Ken-ichiro Yamamoto, Masato Matsuda, Takehito Ogawa, Taiji Yakushiji, Takehiro Miyasaka, Kiyotaka Sakai.   

Abstract

The objective of this study was to determine the optimum dialyzer jacket structure and hollow-fiber dialysis membrane, both of which are indispensable factors for achieving high dialysis performance, by clarifying the relationship between the dialysis performance and the flow of dialysate and blood in a hollow-fiber dialyzer. We evaluated the clearance, dialysate, and blood flow for four commercially available hollow-fiber dialyzers, namely, the APS-15S, APS-15SA, TS-1.6UL, and CX-1.6U. To evaluate dialysate and blood flow, we measured the residence-time distribution of dialysate and blood flow of these dialyzers by the pulse-response method. We also determined the clearances of urea, creatinine, vitamin B(12), and lysozyme to evaluate the dialysis performance of these dialyzers. While the baffle and taper structures allow effective supply of dialysate into the dialyzer jacket, the hollow-fiber shape, inner diameter, and packing density significantly influence the dialysate flow. In dialyzers with long taper-holding slits, the slit area is a key design parameter for achieving optimum dialysate flow. Similarly, the blood flow is significantly influenced by the structure of the inflowing and outflowing blood ports at the header of a dialyzer, and the shape and inner diameter of the hollow fibers. Hollow fibers with smaller inner diameters cause an increase in blood pressure, which causes blood to enter the hollow fibers more easily. The hollow-fiber shape hardly affects the blood flow. While improved dialysate and blood flow cause higher clearance of low molecular-weight substances, higher membrane area and pure-water permeability accelerate internal filtration, thereby causing an increase in the clearance of large molecular-weight substances.
© 2010 The Authors. Therapeutic Apheresis and Dialysis © 2010 International Society for Apheresis.

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Year:  2010        PMID: 21272255     DOI: 10.1111/j.1744-9987.2010.00869.x

Source DB:  PubMed          Journal:  Ther Apher Dial        ISSN: 1744-9979            Impact factor:   1.762


  7 in total

1.  Experimental evaluation of flow and dialysis performance of hollow-fiber dialyzers with different packing densities.

Authors:  Ayaka Hirano; Shoko Kida; Ken-ichiro Yamamoto; Kiyotaka Sakai
Journal:  J Artif Organs       Date:  2011-11-25       Impact factor: 1.731

Review 2.  Enhancing dialyser clearance-from target to development.

Authors:  Kamonwan Tangvoraphonkchai; Andrew Davenport
Journal:  Pediatr Nephrol       Date:  2017-04-12       Impact factor: 3.714

Review 3.  Green nephrology.

Authors:  Katherine A Barraclough; John W M Agar
Journal:  Nat Rev Nephrol       Date:  2020-02-07       Impact factor: 28.314

4.  Is it useful to increase dialysate flow rate to improve the delivered Kt?

Authors:  Marta Albalate; Rafael Pérez-García; Patricia de Sequera; Elena Corchete; Roberto Alcazar; Mayra Ortega; Marta Puerta
Journal:  BMC Nephrol       Date:  2015-02-14       Impact factor: 2.388

5.  Highly porous nanofiber-supported monolayer graphene membranes for ultrafast organic solvent nanofiltration.

Authors:  Liang Shen; Qi Shi; Shengping Zhang; Jie Gao; David Chi Cheng; Ming Yi; Ruiyang Song; Luda Wang; Jianwen Jiang; Rohit Karnik; Sui Zhang
Journal:  Sci Adv       Date:  2021-09-08       Impact factor: 14.136

Review 6.  The Application of Hollow Fiber Cartridge in Biomedicine.

Authors:  Yixuan Hou; Kun Mi; Lei Sun; Kaixiang Zhou; Lei Wang; Lan Zhang; Zhenli Liu; Lingli Huang
Journal:  Pharmaceutics       Date:  2022-07-18       Impact factor: 6.525

7.  Mass Transfer Characteristics of Haemofiltration Modules-Experiments and Modeling.

Authors:  Alexandra Moschona; Margaritis Kostoglou; Anastasios J Karabelas
Journal:  Membranes (Basel)       Date:  2022-01-01
  7 in total

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