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Slit pores preferred over cylindrical pores for high selectivity in biomolecular filtration

机译:狭缝孔比圆柱孔更可取因为在生物分子过滤中具有高选择性

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摘要

Microelectromechanical systems (MEMS) have enabled the fabrication of silicon nanopore membranes (SNM) with uniform non-overlapping “slit shaped” pores. The application of SNM has been suggested for high selectivity of biomolecules in a variety of medical filtration applications. The aim of this study was to rigorously quantify the differences in sieving between slit pore SNM and more commonly modeled cylindrical pore membranes, including effects of the extended Derjaguin, Landau, Verwey, and Overbeek (XDLVO) interactions. Applying equations derived for SNM in previous work, we compare the partition coefficient of slit and cylindrical pore membranes while accounting for both steric and XDLVO interactions. Simple, steric approximations demonstrate that slit pore membranes exhibit significantly lower partition coefficients than cylindrical pore models. Incorporating XDLVO interactions results in an even more marked difference between slit pore and cylindrical pore membranes. These partition coefficients were used to evaluate changes in beta-2-microglobulin (B2M) selectivity. The data demonstrate that XDLVO interactions increase the selectivity advantage that slit pores possess over cylindrical pores, particularly for larger values of the acid-base decay constant. Finally, the bovine serum albumin (BSA) to B2M selectivity ratio was investigated. The selectivity ratio appears larger in slit pores than cylindrical pores for all cases, indicating that slit pores are particularly well suited for hemofiltration applications. The results of this study have significant implications for the application of SNM in membrane processes where highly selective separations of biomolecules is desirable.
机译:微机电系统(MEMS)能够制造具有均匀的非重叠“狭缝形”孔的硅纳米孔膜(SNM)。已建议将SNM应用于多种医疗过滤应用中的生物分子的高选择性。这项研究的目的是严格量化狭缝SNM和更常见的建模圆柱孔膜之间筛分的差异,包括延长的Derjaguin,Landau,Verwey和Overbeek(XDLVO)相互作用的影响。应用先前工作中为SNM导出的方程式,我们比较了狭缝和圆柱孔膜的分配系数,同时考虑了空间和XDLVO相互作用。简单的空间近似表明,裂隙孔膜的分配系数比圆柱孔模型低得多。结合XDLVO相互作用会在狭缝孔膜和圆柱孔膜之间产生更大的差异。这些分配系数用于评估β-2-微球蛋白(B2M)选择性的变化。数据表明,XDLVO相互作用增加了裂隙孔相对于圆柱孔具有的选择性优势,特别是对于较大的酸碱衰减常数值。最后,研究了牛血清白蛋白(BSA)对B2M的选择性比。在所有情况下,狭缝孔中的选择性比圆柱形孔都更大,这表明狭缝孔特别适合于血液滤过应用。这项研究的结果对SNM在需要高度选择性分离生物分子的膜工艺中的应用具有重要意义。

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