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Design, Fabrication, and Characterization of Archaeal Tetraether Free-Standing Planar Membranes in a PDMS- and PCB-Based Fluidic Platform

机译:在基于PDMS和PCB的流体平台中设计,制造和表征古细菌四醚自由站立的平面膜

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摘要

The polar lipid fraction E (PLFE) isolated from the thermoacidophilic archaeon Sulfolobus acidocaidarius contains exclusively bipolar tetraether lipids, which are able to form extraordinarily stable vesicular membranes against a number of chemical, physical, and mechanical stressors. PLFE liposomes have thus been considered appealing biomaterials holding great promise for biotechnology applications such as drug delivery and biosensing. Here we demonstrated that PLFE can also form free-standing "planar" membranes on micropores (~100 μm) of polydimethylsiloxane (PDMS) thin films embedded in printed circuit board (PCB)-based fluidics. To build this device, two novel approaches were employed: (i) an S1813 sacrificial layer was used to facilitate the fabrication of the PDMS thin film, and (ii) oxygen plasma treatment was utilized to conveniently bond the PDMS thin film to the PCB board and the PDMS fluidic chamber. Using electrochemical impedance spectroscopy, we found that the dielectric properties of PLFE planar membranes suspended on the PDMS films are distinctly different from those obtained from diester lipid and triblock copolymer membranes. In addition to resistance (R) and capacitance (C) that were commonly seen in all the membranes examined, PLFE planar membranes showed an inductance (L) component. Furthermore, PLFE planar membranes displayed a relatively large membrane resistance, suggesting that, among the membranes examined, PLFE planar membrane would be a better matrix for studying channel proteins and transmembrane events. PLFE planar membranes also exhibited a sharp decrease in phase angle with the frequency of the input AC signal at ~1 MHz, which could be utilized to develop sensors for monitoring PLFE membrane integrity in fluidics. Since the stability of free-standing planar lipid membranes increases with increasing membrane packing tightness and PLFE lipid membranes are more tightly packed than those made of diester lipids, PLFE free-standing planar membranes are expected to be considerably stable. All these salient features make PLFE planar membranes particularly attractive for model studies of channel proteins and transmembrane events and for high-throughput drug screening and artificial photosynthesis. This work can be extended to nanopores of PDMS thin films in microfluidics and eventually aid in membrane-based new lab-on-a-chip applications.
机译:从嗜热古细菌Sulfolobus acidocaidarius中分离出的极性脂质组分E(PLFE)仅包含双极性四醚脂质,它们能够针对许多化学,物理和机械应力形成非常稳定的囊泡膜。因此,PLFE脂质体被认为是具有吸引力的生物材料,在生物技术应用(如药物输送和生物传感)方面具有广阔的前景。在这里,我们证明了PLFE还可以在嵌入基于印刷电路板(PCB)的流体技术中的聚二甲基硅氧烷(PDMS)薄膜的微孔(〜100μm)上形成独立的“平面”膜。为了构建该器件,采用了两种新颖的方法:(i)使用S1813牺牲层来促进PDMS薄膜的制造,并且(ii)利用氧等离子体处理将PDMS薄膜方便地粘合到PCB板上和PDMS流体室。使用电化学阻抗谱,我们发现悬浮在PDMS膜上的PLFE平面膜的介电性能与从二酯脂质和三嵌段共聚物膜获得的介电性能明显不同。除了在所有检查过的膜中常见的电阻(R)和电容(C)外,PLFE平面膜还显示出电感(L)分量。此外,PLFE平面膜表现出相对较大的膜抗性,表明在所检查的膜中,PLFE平面膜将是研究通道蛋白和跨膜事件的更好基质。 PLFE平面膜在输入交流信号的频率约为1 MHz时,相位角也急剧减小,这可用于开发用于监测流体学中PLFE膜完整性的传感器。由于独立式平面脂质膜的稳定性随着膜的密封性的提高而增加,并且PLFE脂质膜比由二酯脂质制成的脂质膜的密封性更紧密,因此PLFE独立式平面膜有望具有相当的稳定性。所有这些显着特征使PLFE平面膜特别适用于通道蛋白和跨膜事件的模型研究以及高通量药物筛选和人工光合作用。这项工作可以扩展到微流体领域中PDMS薄膜的纳米孔,并最终有助于基于膜的新型芯片实验室应用。

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