Every reference with a DOI in the deposited reference list resolved to a known
work in Crossref or DataCite at the dated check, and none carried a retraction,
withdrawal, or removal notice.
The 135 checked references that resolve
resolves10.1159/000328960Contribution of Polysulfone Membranes to the Success of Convective Dialysis Therapies
resolves10.1053/j.ajkd.2016.05.013Vitamin E–Coated and Heparin-Coated Dialyzer Membranes for Heparin-Free Hemodialysis: A Multicenter, Randomized, Crossover Trial
resolves10.5301/ijao.5000603Medium Cut-Off Membranes - Closer to the Natural Kidney Removal Function
resolves10.1038/ki.1994.377Membrane adsorption of β2-microglobulin: Equilibrium and kinetic characterization
resolves10.1016/j.biomaterials.2007.11.019The effect of electronegativity and angiotensin-converting enzyme inhibition on the kinin-forming capacity of polyacrylonitrile dialysis membranes
resolves10.1172/JCI108710Hemodialysis leukopenia. Pulmonary vascular leukostasis resulting from complement activation by dialyzer cellophane membranes.
resolves10.1038/ki.1984.155Biocompatibility of dialysis membranes: Effects of chronic complement activation
resolves10.1159/000059946Polymethylmethacrylate: One Biomaterial for a Series of Membrane
resolves10.1159/000328961AN69: Evolution of the World’s First High Permeability Membrane
resolves10.1159/000232934Effects of Arterial Port Design on Blood Flow Distribution in Hemodialyzers
resolves10.1111/j.1542-4758.2006.00134.xFlow distribution analysis by helical scanning in polysulfone hemodialyzers: Effects of fiber structure and design on flow patterns and solute clearances
resolves10.1177/039139880502801003Dialytic Performance Evaluation of Rexeed
<sup>™</sup>
: a New Polysulfone-based Dialyzer with Improved Flow Distributions
resolves10.1177/039139880302600203Effects of Novel Manufacturing Technology on Blood and Dialysate Flow Distribution in a New Low Flux “α Polysulfone” Hemodialyzer
resolves10.1159/000060238Flow Distribution and Cross Filtration in Hollow Fiber Hemodialyzers
resolves10.1177/039139880002300902Dialysate Flow Distribution in Hollow Fiber Hemodialyzers with Different Dialysate Pathway Configurations
resolves10.1159/000067402Performance of DIAPES<sup>&reg;</sup> Filters in CRRT
resolves10.1159/000067390Flow Dynamic Characteristics of DIAPES<sup>&reg;</sup> Hemodialyzers
resolves10.1159/000046080Effects of Hematocrit and Blood Flow Distribution on Solute Clearance in Hollow-Fiber Hemodialyzers
resolves10.1177/039139889902200905In Vitro and in Vivo Evaluation of a New Polysulfone Membrane for Hemodialysis. Reference Methodology and Clinical Results: (Part. 2: In Vivo Study)
resolves10.1177/039139889902200904In Vitro and in Vivo Evaluation of a New Polysulfone Membrane for Hemodialysis. Reference Methodology and Clinical Results: (Part 1: In Vitro Study)
resolves10.1159/000059948Hydraulic and Flow Dynamic Characteristics of PMMA Dialyzers
resolves10.1016/j.memsci.2004.02.029Characterization of polyethersulfone hemodialysis membrane by ultrafiltration and atomic force microscopy
resolves10.1097/MAT.0000000000000224Influence of Sterilization and Storage Period on Elution of Polyvinylpyrrolidone from Wet-Type Polysulfone Membrane Dialyzers
resolves10.1186/s41100-016-0047-xProblems in the evaluation of polyvinylpyrrolidone (PVP) elution from polysulfone membrane dialyzers sterilized by gamma-ray irradiation
resolves10.1111/j.1542-4758.2011.00553.xAnaphylactic reaction induced by a polysulfone/polyvinylpyrrolidone membrane in the 10th session of hemodialysis with the same dialyzer
resolves10.1681/ASN.V101117Effects of Hemodialyzer Reuse on Clearances of Urea and β2-Microglobulin
resolves10.1016/0049-3848(86)90283-5The influence of preadsorbed canine von willebrand factor, fibronectin and fibrinogen on artificial surface-induced thrombosis
resolves10.1159/000479258Solute Transport in Hemodialysis: Advances and Limitations of Current Membrane Technology
resolves10.1093/ndt/13.suppl_6.3The haemodialysis system: basic mechanisms of water and solute transport in extracorporeal renal replacement therapies
resolves10.1093/ckj/sfv003Optimization of the convection volume in online post-dilution haemodiafiltration: practical and technical issues
resolves10.1159/000346093Effects of Dialysate Flow Configurations in Continuous Renal Replacement Therapy on Solute Removal: Computational Modeling
resolves10.5301/ijao.5000094Computational Modeling of Effects of Mechanical Shaking on Hemodynamics in Hollow Fibers
resolves10.1159/000321073Enhancement of Solute Removal in a Hollow-Fiber Hemodialyzer by Mechanical Vibration
resolves10.1159/000107233Fluid Mechanics and Crossfiltration in Hollow-Fiber Hemodialyzers
resolves10.1111/j.1525-139X.2009.00658.xInnovation in the Treatment of Uremia: Proceedings from the Cleveland Clinic Workshop: Blood–Membrane Interactions During Dialysis
resolves10.1159/000170178Effect of Blood Contact on the Transport Properties of Hemodialysis Membranes: A Two-Layer Membrane Model
resolves10.1038/ki.1986.202Permeability and secondary membrane formation of a high flux polysulfone hemofilter
resolves10.1038/ki.1995.317Plasma protein adsorption to highly permeable hemodialysis membranes
resolves10.1159/000097079A New Semiempirical Mathematical Model for Prediction of Internal Filtration in Hollow Fiber Hemodialyzers
resolves10.1681/ASN.V13suppl_1s53Blood and Dialysate Flow Distributions in Hollow-Fiber Hemodialyzers Analyzed by Computerized Helical Scanning Technique
resolves10.1159/000081877New Trends in HDF Therapies: Validity of Internal Filtration-Enhanced Hemodialysis
resolves10.1159/000468959Expanded Hemodialysis: A New Therapy for a New Class of Membranes
resolves10.1159/000479549A Personal Tribute to Frank A. Gotch and Lee W. Henderson, Giants in Dialysis and in Life
resolves10.1177/039139880102401005Nanoscale Modulation of the Pore Dimensions, Size Distribution and Structure of a new Polysulfone-Based High-Flux Dialysis Membrane
resolves10.1177/039139888901200605Adsorption of ß2-Microglobulin on Dialysis Membranes: Comparison of Different Dialyzers and Effects of Reuse Procedures
resolves10.1038/ki.2009.138Specific adsorption of some complement activation proteins to polysulfone dialysis membranes during hemodialysis
resolves10.1159/000479252Middle-Molecule Uremic Toxins and Outcomes in Chronic Kidney Disease
resolves10.1159/000356224Elimination of Middle-Sized Uremic Solutes with High-Flux and High-Cut-Off Membranes: A Randomized in vivo Study
resolves10.1159/000479251The Evolving Patterns of Uremia: Unmet Clinical Needs in Dialysis
resolves10.1093/ndt/gfs530Online haemodiafiltration: definition, dose quantification and safety revisited
resolves10.5301/ijao.5000220Extended Characterization of a New Class of Membranes for Blood Purification: The High Cut-off Membranes
resolves10.1371/journal.pone.0140463Effectiveness of Haemodiafiltration with Heat Sterilized High-Flux Polyphenylene HF Dialyzer in Reducing Free Light Chains in Patients with Myeloma Cast Nephropathy
resolves10.1093/ndt/gfr773Immunoglobulin free light chain levels and recovery from myeloma kidney on treatment with chemotherapy and high cut-off haemodialysis
resolves10.2215/CJN.04590908Treatment of Acute Renal Failure Secondary to Multiple Myeloma with Chemotherapy and Extended High Cut-Off Hemodialysis
resolves10.5301/ijao.5000527High Cut-Off Hemofiltration versus Standard Hemofiltration: Effect on Plasma Cytokines
resolves10.1159/000446978Hemodialysis with High Cut-Off Hemodialyzers in Patients with Multi-Drug Resistant Gram-Negative Sepsis and Acute Kidney Injury: A Retrospective, Case-Control Study
resolves10.1371/journal.pone.0172039Organ dysfunction during continuous veno-venous high cut-off hemodialysis in patients with septic acute kidney injury: A prospective observational study
resolves10.1159/000184891Different Handling of Beta
<sub>2</sub>
-Microglobulin during Hemodialysis and Hemofiltration
resolves10.1159/000169490Removal, Generation and Adsorption of Beta-2-Microglobulin during Hemofiltration with Five Different Membranes
resolves10.1177/039139888901201106Transmembranous Transport and Adsorption of Beta-2-microglobulin during Hemodialysis using Polysulfone, polyacrylonitrile, polymethylmethacrylate and Cuprammonium Rayon Membranes
resolves10.1177/039139889702000505Impact of Spacing Filaments External to Hollow Fibers on Dialysate flow Distribution and Dialyzer Performance
resolves10.1159/000407589Deposition of an Amyloid-Like Substance as a Possible Complication of Regular Dialysis Treatment
resolves10.1159/000423356Comparison of Types of On-Line Hemodiafiltration from the Standpoint of Low-Molecular-Weight Protein Removal
resolves10.5414/CNP62021Dialysis membrane-dependent removal of middle molecules during hemodiafiltration: the b2-microglobulin/ albumin relationship
resolves10.1159/000358214Elimination of Large Uremic Toxins by a Dialyzer Specifically Designed for High-Volume Convective Therapies
resolves10.1681/ASN.2012080875High-Efficiency Postdilution Online Hemodiafiltration Reduces All-Cause Mortality in Hemodialysis Patients
resolves10.1159/000345175Emerging Clinical Evidence on Online Hemodiafiltration: Does Volume of Ultrafiltration Matter?
resolves10.1093/ndt/gfs407Mortality and cardiovascular events in online haemodiafiltration (OL-HDF) compared with high-flux dialysis: results from the Turkish OL-HDF Study
resolves10.1681/ASN.2011121140Effect of Online Hemodiafiltration on All-Cause Mortality and Cardiovascular Outcomes
resolves10.5301/ijao.5000389Factors Associated with Albumin Loss in Post-Dilution Hemodiafiltration and Nutritional Consequences
resolves10.5301/ijao.5000106Divert to ULTRA: Differences in Infused Volumes and Clearance in Two On-Line Hemodiafiltration Treatments
resolves10.1038/sj.ki.5000110Transmembrane pressure modulation in high-volume mixed hemodiafiltration to optimize efficiency and minimize protein loss
resolves10.1093/ndt/gft493The ultrafiltration coefficient: this old 'grand inconnu' in dialysis
resolves10.1159/000232935Mid-Dilution Hemodiafiltration: A Comparison with Pre- and Postdilution Modes Using the Same Polyphenylene Membrane
resolves10.1111/j.1523-1755.2005.00088.xClinical cross-over comparison of mid-dilution hemodiafiltration using a novel dialyzer concept and post-dilution hemodiafiltration
resolves10.1159/000479264Effects of Hemodialysis Therapy Using Dialyzers with Medium Cut-Off Membranes on Middle Molecules
resolves10.1159/000479266Large Middle Molecule and Albumin Removal: Why Should We Not Rest on Our Laurels?
resolves10.1111/1744-9987.12526Implications of Albumin Leakage for Survival in Maintenance Hemodialysis Patients: A 7‐year Observational Study
resolves10.2215/CJN.05540610Peritoneal Albumin and Protein Losses Do Not Predict Outcome in Peritoneal Dialysis Patients
resolves10.1093/ndt/gfg272Optimal anticoagulation strategy in haemodialysis with heparin-coated polyacrylonitrile membrane
resolves10.1177/039139880002300104High Molecular Weight Kininogen Adsorption on Hemodialysis Membranes: Influence of pH and Relationship with Contact Phase Activation of Blood Plasma. Influence of Pre-Treatment with Poly(Ethyleneimine)
resolves10.1159/000327204Antioxidant Dialytic Approach with Vitamin E-Coated Membranes
resolves10.1177/039139880803100610Effect of Vitamin E-Coated Dialysis Membranes on Anemia in Patients with Chronic Kidney Disease: An Italian Multicenter Study
resolves10.1159/000060000Excebrane&reg;: Hemocompatibility Studies by the Intradialytic Monitoring of Oxygen Saturation
The 21 references without a DOI — listed, not checked
no DOI — not checkedVertes, B., Aoyama, S. & Kolff, W. The twin-coil disposable artificial kidney. Trans. Am. Soc. Artif. Intern. Organs 3, 119–121 (1958).
no DOI — not checkedKiil, F. Development of a parallel-flow artificial kidney in plastics. Acta Chir. Scand. Suppl. 253, 142–150 (1960).
no DOI — not checkedCole, J., Pollard, T. & Murray, J. Studies on the modified polypropylene Kiil dialyzer. Trans. Am. Soc. Artif. Intern. Organs 9, 67–70 (1963).
no DOI — not checkedFunck-Bretano, J. et al. A new disposable plate-kidney. Trans. Am. Soc. Artif. Intern. Organs 15, 127–130 (1969).
no DOI — not checkedLipps, B. et al. The hollow fiber artificial kidney. Trans. Am. Soc. Artif. Intern. Organs 13, 200–207 (1967).
no DOI — not checkedLysaght, M. J. Evolution of hemodialysis membranes. Contrib. Nephrol. 113, 1–10 (1995).
no DOI — not checkedZweigart, C. et al. in Comprehensive Membrane Science and Engineering 2nd edn (eds Drioli, E., Giorno, L. & Fontana, E.) 215–247 (Elsevier, 2017).
no DOI — not checkedChung, T. S. N. in Advanced Membrane Technology and Applications Ch. 31 (eds Li, N. N., Fane, A. G., Ho, W. S. W. & Matsuura, T.) (John Wiley and Sons, 2008).
no DOI — not checkedMichaels, A. S. Operating parameters and performance criteria for hemodialyzers and other membrane-separation devices. Trans. Am. Soc. Artif. Intern. Organs 12, 387–392 (1966).
no DOI — not checkedColton, C. K. & Lowrie, E. G. in The Kidney 2nd edn (eds Brenner, B. M. & Rector, F. C.) 2425–2489 (WB Saunders, 1981).
no DOI — not checkedBird, R. B., Stewart, W. E. & Lightfoot, E. N. in Transport Phenomena 1st edn (eds Bird, R. B., Stewart, W. E. & Lightfoot, E. N.) 34–70 (John Wiley and Sons, 1960).
no DOI — not checkedColton, C. K., Henderson, L. W., Ford, C. A. & Lysaght, M. J. Kinetics of hemodiafiltration. I. In vitro transport characteristics of a hollow-fiber blood ultrafilter. J. Lab. Clin. Med. 85, 355–371 (1975).
no DOI — not checkedUS Food and Drug Administration. Guidance for the content of premarket notifications for conventional and high permeability hemodialyzers. FDA https://www.fda.gov/downloads/medicaldevices/deviceregulationandguidance/guidancedocuments/ucm080166.pdf (1998).
no DOI — not checkedOta, K. et al. Short-time hemodiafiltration using polymethylmethacrylate hemodiafilter. Trans. Am. Soc. Artif. Intern. Organs 24, 454–457 (1978).
no DOI — not checkedZingraff, J. et al. Influence of haemodialysis membranes on beta2-microglobulin kinetics: in vivo and in vitro studies. Nephrol. Dial. Transplant. 3, 284–290 (1988).
no DOI — not checkedFloege, J. et al. High flux synthetic versus cellulosic membranes for beta2-microglobulin removal during hemodialysis, hemodiafiltration, and hemofiltration. Nephrol. Dial. Transplant. 4, 653–657 (1989).
no DOI — not checkedNaitoh, A., Tatsuguchi, T., Okada, M., Ohmura, T. & Sakai, K. Removal of beta2-microglobulin by diffusion is feasible using highly permeable dialysis membranes. Trans. Am. Soc. Artif. Intern. Organs 34, 630–634 (1988).
no DOI — not checkedMineshima, M. et al. Difference in beta2-microglobulin removal between cellulosic and synthetic polymer membrane dialylzers. Trans. Am. Soc. Artif. Intern. Organs 36, M643–M646 (1990).
no DOI — not checkedFloege, J. et al. Beta2-microglobulin kinetics during hemodialysis and hemofiltration. Nephrol. Dial. Transplant. 1, 223–228 (1987).
no DOI — not checkedMaeda, N. et al. Performance and mechanism of beta-2-microglobulin elimination with a new PAN hollow fiber membrane. Jap. J. Artif. Organs 17, 3–9 (1988).
no DOI — not checkedKirsch, A. H. et al. Performance of hemodialysis with novel medium cut-off dialyzers. Nephrol. Dial. Transplant. 32, 165–172 (2017).
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