Special Issue:
SPECIAL TOPIC — Soft matter and biological physics
|
SPECIAL TOPIC—Soft matter and biological physics |
Prev
Next
|
|
|
Protein-membrane interactions investigated with surface-induced fluorescence attenuation |
Li Ma(马丽)1,2, Ying Li(李颖)1, Ming Li(李明)1, Shuxin Hu(胡书新)1 |
1. Key Laboratory of Soft Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China;
2. University of Chinese Academy of Sciences, Beijing 100049, China |
|
|
Abstract Research on protein-membrane interactions has been undeveloped due to the lack of proper techniques to detect the position of proteins at membranes because membranes are usually only about 4-nm thick. We have recently developed a new method named surface-induced fluorescence attenuation (SIFA) to track both vertical and lateral kinetics of a single labelling dye in supported lipid bilayers. It takes advantage of strong interaction between a light-emitting dye and a partially reflecting surface. By applying the technique to membrane proteins being fluorescently labelled at different residues, here we show that SIFA can measure not only the insertion depth of a dye inside a lipid bilayer, but also the position of a dye in solution near the surface. SIFA can therefore be used to study membrane proteins of various types.
|
Received: 10 September 2017
Revised: 18 October 2017
Accepted manuscript online:
|
PACS:
|
87.15.kt
|
(Protein-membrane interactions)
|
|
87.16.dp
|
(Transport, including channels, pores, and lateral diffusion)
|
|
87.80.Nj
|
(Single-molecule techniques)
|
|
Fund: Project supported by the National Natural Science Foundation of China (Grant No. 11574382) and the Key Research Program of Frontier Sciences, Chinese Academy of Sciences (Grant No. QYZDJ-SSW-SYS014). |
Corresponding Authors:
Shuxin Hu
E-mail: hushuxin@iphy.ac.cn
|
Cite this article:
Li Ma(马丽), Ying Li(李颖), Ming Li(李明), Shuxin Hu(胡书新) Protein-membrane interactions investigated with surface-induced fluorescence attenuation 2017 Chin. Phys. B 26 128708
|
[1] |
Stephen H W and William C W 1999 Ann. Rev. Biophys. Biomol. Struct. 28 319
|
[2] |
Peter L H, Xun L and Xie S X 1998 Science 282 1877
|
[3] |
Liming Y and Xie S X 1998 J. Phys. Chem. B 102 10399
|
[4] |
Armendariz K P, Huckabay H A, Livanec P W and Dunn R C 2012 The Analyst 137 1402
|
[5] |
Taekjip Ha 2001 Methods 25 78
|
[6] |
Narain K, Alexey C, Ingo G, Anna M C, Olaf S and Jörg E 2014 ChemPhysChem 15 705
|
[7] |
He S J, Song B, Li D, Zhu C F, Qi W P, Wen Y Q, Wang L H, Song S P, Fang H P and Fan C H 2010 Adv. Funct. Mater. 20 453
|
[8] |
Lu C H, Yang H H, Zhu C L, Chen X and Chen G N 2009 Angew. Chem. Int. Ed. 48 4785
|
[9] |
Dong H F, Gao W C, Yan F, Ji H X and Ju H X 2010 Anal. Chem. 82 5511
|
[10] |
Li Y, Qian Z, Ma L, Hu S, Nong D, Xu C, Ye F, Lu Y, Wei G and Li M 2016 Nat. Commun. 7 12906
|
[11] |
Hong B J, An Z, Compton O C and Nguyen S T 2012 Small 8 2469
|
[12] |
Ding Y H, Zhang P, Zhuo Q, Ren H M, Yang Z M and Jiang Y 2011 Nanotechnology 22 215601
|
[13] |
Demchenko A P, Mely Y, Duportail G and Klymchenko A S 2009 Biophys. J. 96 3461
|
[14] |
Nguyen A H, Nguyen V T, Kamio Y and Higuchi H 2006 Biochemistry 45 2570
|
[15] |
Kleinschmidt J H and Tamm L K 1999 Biochemistry 38 4996
|
[16] |
Hummers W S and Offeman R E. 1958 JACS 80 1339
|
[17] |
Hu S X, Li X H, Jia Q J, Mai Z H, Li M 2005 J. Chem. Phys. 122 12
|
[18] |
Enderlein J 1999 Chem. Phys. 247 1
|
[19] |
Enderlein J 2000 Biophys. J. 78 2151
|
[20] |
Chizhik A I, Gregor I, Ernst B and Enderlein J 2013 ChemPhysChem 14 505
|
[21] |
Pattammattel A, Puglia M, Chakraborty S, Deshapriya I K, Dutta P K and Kumar C V 2013 Langmuir 29 15643
|
[22] |
Ithurbide A, Frateur I, Galtayries A and Marcus P 2007 Electrochimica Acta 53 1336
|
[23] |
Ramos R, Silva J P, Rodrigues A C, Costa R, Guardao L, Schmitt F, Soares R, Vilanova M, Domingues L and Gama M 2011 Peptides 32 1469
|
[24] |
Hutt K J 2015 Reproduction 149 R81
|
[25] |
Billen L P, Shamas-Din A and Andrews D W 2008 Oncogene 27 Suppl. 1 S93
|
[26] |
Wang Y and Tjandra N 2013 J. Biological Chem. 288 35840
|
[27] |
Walensky L D, Pitter K, Morash J, Oh K J, Barbuto S, Fisher J, Smith E, Verdine G L and Korsmeyer S J 2006 Molecular Cell 24 199
|
[28] |
Wei M C, Lindsten T, Mootha V K, Weiler S, Gross A, Ashiya M, Thompson C B, and Korsmeyer S J 2000 Genes. Dev. 14 2060
|
[29] |
Wang G, Mishra B, Epand R F and Epand R M 2014 Biochimica et biophysica acta 1838 2160
|
[30] |
Xhindoli D, Pacor S, Guida F, Antcheva N and Tossi A 2014 The Biochemical Journal 457 263
|
[31] |
Lee C C, Sun Y, Qian S and Huang H W 2011 Biophys. J. 100 1688
|
[32] |
Xhindoli D, Morgera F, Zinth U, Rizzo R, Pacor S and Tossi A 2015 The Biochemical Journal 465 443
|
No Suggested Reading articles found! |
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|
Cited |
|
|
|
|
Altmetric
|
blogs
Facebook pages
Wikipedia page
Google+ users
|
Online attention
Altmetric calculates a score based on the online attention an article receives. Each coloured thread in the circle represents a different type of online attention. The number in the centre is the Altmetric score. Social media and mainstream news media are the main sources that calculate the score. Reference managers such as Mendeley are also tracked but do not contribute to the score. Older articles often score higher because they have had more time to get noticed. To account for this, Altmetric has included the context data for other articles of a similar age.
View more on Altmetrics
|
|
|