Microfluidic approaches for the analysis of protein–protein interactions in solution

被引:33
作者
Arter W.E. [1 ,2 ]
Levin A. [1 ]
Krainer G. [1 ]
Knowles T.P.J. [1 ,2 ]
机构
[1] Department of Chemistry, University of Cambridge, Lensfield Road, Cambridge
[2] Cavendish Laboratory, University of Cambridge, JJ Thomson Avenue, Cambridge
基金
欧洲研究理事会; 英国工程与自然科学研究理事会; 欧盟地平线“2020”;
关键词
Approaches; Diffusional sizing; Droplet; Electrophoresis; Microfluidic; Protein–protein interactions;
D O I
10.1007/s12551-020-00679-4
中图分类号
学科分类号
摘要
Exploration and characterisation of the human proteome is a key objective enabling a heightened understanding of biological function, malfunction and pharmaceutical design. Since proteins typically exhibit their behaviour by binding to other proteins, the challenge of probing protein-protein interactions has been the focus of new and improved experimental approaches. Here, we review recently developed microfluidic techniques for the study and quantification of protein–protein interactions. We focus on methodologies that utilise the inherent strength of microfluidics for the control of mass transport on the micron scale, to facilitate surface and membrane-free interrogation and quantification of interacting proteins. Thus, the microfluidic tools described here provide the capability to yield insights on protein–protein interactions under physiological conditions. We first discuss the defining principles of microfluidics, and methods for the analysis of protein–protein interactions that utilise the diffusion-controlled mixing characteristic of fluids at the microscale. We then describe techniques that employ electrophoretic forces to manipulate and fractionate interacting protein systems for their biophysical characterisation, before discussing strategies that use microdroplet compartmentalisation for the analysis of protein interactions. We conclude by highlighting future directions for the field, such as the integration of microfluidic experiments into high-throughput workflows for the investigation of protein interaction networks. © 2020, The Author(s).
引用
收藏
页码:575 / 585
页数:10
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[1]  
Abate A.R., Hung T., Marya P., Agresti J.J., Weitz D.A., High-throughput injection with microfluidics using picoinjectors using picoinjectors, Proc Natl Acad Sci U S A, 107, 45, pp. 19163-19166, (2010)
[2]  
Arosio P., Muller T., Rajah L., Yates E.V., Aprile F.A., Zhang Y., Cohen S.I.A., White D.A., Herling T.W., De Genst E.J., Linse S., Vendruscolo M., Dobson C.M., Knowles T.P.J., Microfluidic diffusion analysis of the sizes and interactions of proteins under native solution conditions, ACS Nano, 10, 1, pp. 333-341, (2016)
[3]  
Arter W.E., Charmet J., Kong J., Saar K.L., Herling T.W., Muller T., Keyser U.F., Knowles T.P.J., Combining affinity selection and specific ion mobility for microchip protein sensing, Anal Chem, 90, 17, pp. 10302-10310, (2018)
[4]  
Bakail M., Ochsenbein F., Targeting protein-protein interactions, a wide open field for drug design, C R Chim, 19, 1-2, pp. 19-27, (2016)
[5]  
Beebe D.J., Mensing G.A., Walker G.M., Physics and applications of microfluidics in biology, Annu Rev Biomed Eng, 4, pp. 261-286, (2002)
[6]  
Bork P., Jensen L.J., Von Mering C., Ramani A.K., Lee I., Marcotte E.M., Protein interaction networks from yeast to human, Curr Opin Struct Biol, 14, 3, pp. 292-299, (2004)
[7]  
Bortolini C., Kartanas T., Copic D., Morales I.C., Zhang Y., Challa P.K., Peter Q., Javorfi T., Hussain R., Dong M., Siligardi G., Knowles T.P.J., Charmet J., Resolving protein mixtures using microfluidic diffusional sizing combined with synchrotron radiation circular dichroism, Lab Chip, 19, 1, pp. 50-58, (2019)
[8]  
Challa P.K., Peter Q., Wright M.A., Zhang Y., Saar K.L., Carozza J.A., Benesch J.L.P., Knowles T.P.J., Real-time intrinsic fluorescence visualization and sizing of proteins and protein complexes in microfluidic devices, Anal Chem, 90, 6, pp. 3849-3855, (2018)
[9]  
Chamieh J., Leclercq L., Martin M., Slaoui S., Jensen H., Ostergaard J., Cottet H., Limits in size of Taylor dispersion analysis: representation of the different hydrodynamic regimes and application to the size-characterization of cubosomes, Anal Chem, 89, 24, pp. 13487-13493, (2017)
[10]  
Chen C., Zhao Y., Wang J., Zhu P., Tian Y., Xu M., Wang L., Huang X., Passive mixing inside microdroplets, Micromachines, 9, 4, (2018)