Temperature-Controlled Assembly and Characterization of a Droplet Interface Bilayer

被引:1
|
作者
Ringley, Jessie D. [1 ]
Sarles, Stephen Andrew [1 ]
机构
[1] Univ Tennessee, Dept Mech Aerosp & Biomed Engn, Knoxville, TN 37996 USA
来源
JOVE-JOURNAL OF VISUALIZED EXPERIMENTS | 2021年 / 170期
基金
美国国家科学基金会;
关键词
AQUEOUS DROPLETS; PERMEABILITY; MEMBRANES; CAPACITANCE; KINETICS; TENSIONS; CONTACT; RELEASE;
D O I
10.3791/62362
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The droplet interface bilayer (DIB) method for assembling lipid bilayers (i.e., DIBs) between lipid-coated aqueous droplets in oil offers key benefits versus other methods: DIBs are stable and often long-lasting, bilayer area can be reversibly tuned, leaflet asymmetry is readily controlled via droplet compositions, and tissue-like networks of bilayers can be obtained by adjoining many droplets. Forming DIBs requires spontaneous assembly of lipids into high density lipid monolayers at the surfaces of the droplets. While this occurs readily at room temperature for common synthetic lipids, a sufficient monolayer or stable bilayer fails to form at similar conditions for lipids with melting points above room temperature, including some cellular lipid extracts. This behavior has likely limited the compositions-and perhaps the biological relevance -of DIBs in model membrane studies. To address this problem, an experimental protocol is presented to carefully heat the oil reservoir hosting DIB droplets and characterize the effects of temperature on the lipid membrane. Specifically, this protocol shows how to use a thermally conductive aluminum fixture and resistive heating elements controlled by a feedback loop to prescribe elevated temperatures, which improves monolayer assembly and bilayer formation for a wider set of lipid types. Structural characteristics of the membrane, as well as the thermotropic phase transitions of the lipids comprising the bilayer, are quantified by measuring the changes in electrical capacitance of the DIB. Together, this procedure can aid in evaluating biophysical phenomena in model membranes over various temperatures, including determining an effective melting temperature (TM) for multi-component lipid mixtures. This capability will thus allow for closer replication of natural phase transitions in model membranes and encourage the formation and use of model membranes from a wider swath of membrane constituents, including those that better capture the heterogeneity of their cellular counterparts.
引用
收藏
页数:24
相关论文
共 50 条
  • [21] Dual Signal-Responsive Liposomes for Temperature-Controlled Cytoplasmic Delivery
    Kaiden, Tomohiro
    Yuba, Eiji
    Harada, Atsushi
    Sakanishi, Yuichi
    Kono, Kenji
    BIOCONJUGATE CHEMISTRY, 2011, 22 (10) : 1909 - 1915
  • [22] POSSIBILITIES OF 2 NONISOTHERMAL PROCEDURES (TEMPERATURE-CONTROLLED OR RATE-CONTROLLED) FOR KINETIC-STUDIES
    MALEK, J
    SESTAK, J
    ROUQUEROL, F
    ROUQUEROL, J
    CRIADO, JM
    ORTEGA, A
    JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 1992, 38 (1-2) : 71 - 87
  • [23] Quantitative analysis of cell-free synthesized membrane proteins at the stabilized droplet interface bilayer
    Elfaramawy, Maie A.
    Fujii, Satoshi
    Uyeda, Atsuko
    Osaki, Toshihisa
    Takeuchi, Shoji
    Kato, Yasuhiko
    Watanabe, Hajime
    Matsuura, Tomoaki
    CHEMICAL COMMUNICATIONS, 2018, 54 (86) : 12226 - 12229
  • [24] Performance of nanotube-based electrodes from temperature-controlled electrophoretic deposition
    Moore, Joshua J. E.
    Kang, Jin Hee
    Jayaram, Shesha H.
    Wen, John Z.
    JOURNAL OF APPLIED ELECTROCHEMISTRY, 2012, 42 (07) : 501 - 508
  • [25] Autonomous capillary microfluidic devices with constant flow rate and temperature-controlled valving
    Li, Lanhui
    Westerbeek, Eiko Y.
    Vollenbroek, Jeroen C.
    de Beer, Sissi
    Shui, Lingling
    Odijk, Mathieu
    Eijkel, Jan C. T.
    SOFT MATTER, 2021, 17 (33) : 7781 - 7791
  • [26] Stabilization of the high-temperature and high-pressure cubic phase of ZnO by temperature-controlled milling
    Tiwary, C. S.
    Vishnu, D.
    Kole, A. K.
    Brahmanandam, J.
    Mahapatra, D. R.
    Kumbhakar, P.
    Chattopadhyay, K.
    JOURNAL OF MATERIALS SCIENCE, 2016, 51 (01) : 126 - 137
  • [27] Evaporation-induced monolayer compression improves droplet interface bilayer formation using unsaturated lipids
    Venkatesan, Guru A.
    Taylor, Graham J.
    Basham, Colin M.
    Brady, Nathan G.
    Collier, C. Patrick
    Sarles, Stephen A.
    BIOMICROFLUIDICS, 2018, 12 (02):
  • [28] Structural Characterization of an Archaeal Lipid Bilayer as a Function of Hydration and Temperature
    Salvador-Castell, Marta
    Deme, Bruno
    Oger, Philippe
    Peters, Judith
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2020, 21 (05)
  • [29] The use of virtual ground to control transmembrane voltages and measure bilayer currents in serial arrays of droplet interface bilayers
    Sarles, Stephen A.
    SMART MATERIALS AND STRUCTURES, 2013, 22 (09)
  • [30] Temperature-Controlled Encapsulation and Release of an Active Enzyme in the Cavity of a Self-Assembled DNA Nanocage
    Juul, Sissel
    Iacovelli, Federico
    Falconi, Mattia
    Kragh, Sofie L.
    Christensen, Brian
    Frohlich, Rikke
    Franch, Oskar
    Kristoffersen, Emil L.
    Stougaard, Magnus
    Leong, Kam W.
    Ho, Yi-Ping
    Sorensen, Esben S.
    Birkedal, Victoria
    Desideri, Alessandro
    Knudsen, Birgitta R.
    ACS NANO, 2013, 7 (11) : 9724 - 9734