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本文引用的文献

1
Diffusive Silicon Nanopore Membranes for Hemodialysis Applications.用于血液透析应用的扩散型硅纳米孔膜
PLoS One. 2016 Jul 20;11(7):e0159526. doi: 10.1371/journal.pone.0159526. eCollection 2016.
2
Silicon nanopore membrane (SNM) for islet encapsulation and immunoisolation under convective transport.用于对流传输下胰岛封装和免疫隔离的硅纳米孔膜(SNM)。
Sci Rep. 2016 Mar 24;6:23679. doi: 10.1038/srep23679.
3
Hydration repulsion between membranes and polar surfaces: simulation approaches versus continuum theories.膜和极性表面之间的水合排斥:模拟方法与连续体理论的比较。
Adv Colloid Interface Sci. 2014 Jun;208:142-52. doi: 10.1016/j.cis.2014.02.001. Epub 2014 Feb 15.
4
Achieving more frequent and longer dialysis for the majority: wearable dialysis and implantable artificial kidney devices.实现大多数人更频繁和更长时间的透析:可穿戴透析和植入式人工肾设备。
Kidney Int. 2013 Aug;84(2):256-64. doi: 10.1038/ki.2012.466. Epub 2013 Feb 13.
5
Characterizing the surface charge of synthetic nanomembranes by the streaming potential method.通过流动电势法表征合成纳米膜的表面电荷。
J Colloid Interface Sci. 2010 Aug 1;348(1):85-95. doi: 10.1016/j.jcis.2010.04.017. Epub 2010 Apr 14.
6
High-Performance Silicon Nanopore Hemofiltration Membranes.高性能硅纳米孔血液滤过膜
J Memb Sci. 2009 Jan 5;326(1):58-63. doi: 10.1016/j.memsci.2008.09.039.
7
Electrostatic and electrokinetic effects on hindered convection in pores.静电和动电效应对孔隙中受阻对流的影响。
J Colloid Interface Sci. 2009 Oct 1;338(1):135-44. doi: 10.1016/j.jcis.2009.06.018. Epub 2009 Jun 12.
8
Serum beta-2 microglobulin levels predict mortality in dialysis patients: results of the HEMO study.血清β2微球蛋白水平可预测透析患者的死亡率:HEMO研究结果
J Am Soc Nephrol. 2006 Feb;17(2):546-55. doi: 10.1681/ASN.2005020132. Epub 2005 Dec 28.
9
Ultrasonication-induced amyloid fibril formation of beta2-microglobulin.超声诱导β2-微球蛋白形成淀粉样纤维
J Biol Chem. 2005 Sep 23;280(38):32843-8. doi: 10.1074/jbc.M506501200. Epub 2005 Jul 25.
10
Surface Element Integration: A Novel Technique for Evaluation of DLVO Interaction between a Particle and a Flat Plate.表面单元积分:一种评估颗粒与平板之间DLVO相互作用的新技术。
J Colloid Interface Sci. 1997 Sep 15;193(2):273-85. doi: 10.1006/jcis.1997.5076.

硅纳米多孔膜作为验证生物分子传输模型的严格平台。

Silicon nanoporous membranes as a rigorous platform for validation of biomolecular transport models.

作者信息

Feinberg Benjamin J, Hsiao Jeff C, Park Jaehyun, Zydney Andrew L, Fissell William H, Roy Shuvo

机构信息

Department of Bioengineering and Therapeutic Sciences, University of California, San Francisco, California, USA.

Department of Chemical Engineering, The Pennsylvania State University, University Park, PA.

出版信息

J Memb Sci. 2017 Aug 15;536:44-51. doi: 10.1016/j.memsci.2017.04.030. Epub 2017 Apr 17.

DOI:10.1016/j.memsci.2017.04.030
PMID:28936029
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5604868/
Abstract

Microelectromechanical systems (MEMS), a technology that resulted from significant innovation in semiconductor fabrication, have recently been applied to the development of silicon nanopore membranes (SNM). In contrast to membranes fabricated from polymeric materials, SNM exhibit slit-shaped pores, monodisperse pore size, constant surface porosity, zero pore overlap, and sub-micron thickness. This development in membrane fabrication is applied herein for the validation of the XDLVO (extended Derjaguin, Landau, Verwey, and Overbeek) theory of membrane transport within the context of hemofiltration. In this work, the XDLVO model has been derived for the unique slit pore structure of SNM. Beta-2-microglobulin (B2M), a clinically relevant "middle molecular weight" solute in kidney disease, is highlighted in this study as the solute of interest. In order to determine interaction parameters within the XDLVO model for B2M and SNM, goniometric measurements were conducted, yielding a Hamaker constant of 4.61× 10 J and an acid-base Gibbs free energy at contact of 41 mJ/m. The XDLVO model was combined with existing models for membrane sieving, with predictions of the refined model in good agreement with experimental data. Furthermore, the results show a significant difference between the XDLVO model and the simpler steric predictions typically applied in membrane transport. The refined model can be used as a tool to tailor membrane chemistry and maximize sieving or rejection of different biomolecules.

摘要

微机电系统(MEMS)是半导体制造领域重大创新的产物,最近已应用于硅纳米孔膜(SNM)的开发。与由聚合物材料制成的膜不同,SNM具有狭缝形孔、单分散孔径、恒定的表面孔隙率、零孔重叠和亚微米厚度。膜制造方面的这一进展在此用于验证血液滤过背景下的膜传输XDLVO(扩展的Derjaguin、Landau、Verwey和Overbeek)理论。在这项工作中,针对SNM独特的狭缝孔结构推导了XDLVO模型。β-2微球蛋白(B2M)是肾病中一种临床相关的“中分子量”溶质,在本研究中被作为感兴趣的溶质加以重点研究。为了确定B2M与SNM在XDLVO模型中的相互作用参数,进行了测角测量,得出哈梅克常数为4.61×10焦耳,接触时的酸碱吉布斯自由能为41毫焦/平方米。XDLVO模型与现有的膜筛分模型相结合,改进模型的预测结果与实验数据吻合良好。此外,结果表明XDLVO模型与膜传输中通常应用的更简单的空间位阻预测之间存在显著差异。改进后的模型可作为一种工具,用于调整膜的化学性质,最大限度地筛分或排斥不同的生物分子。