微尺度热泳
热泳
微尺度化学
生物分子
化学
小分子
化学物理
生物物理学
麦克赫里
纳米技术
分子
合作性
分子动力学
生物系统
材料科学
计算化学
纳米颗粒
绿色荧光蛋白
生物化学
有机化学
纳米流体
数学教育
数学
基因
生物
作者
Susanne A. I. Seidel,Patricia M. Dijkman,Wendy Lea,Geert van den Bogaart,Moran Jerabek‐Willemsen,Ana Lazic,Jeremiah S. Joseph,P. Srinivasan,Philipp Baaske,Anton Simeonov,Ilia Katritch,Fernando A. Melo,John E. Ladbury,Gideon Schreiber,Anthony Watts,Dieter Braun,Stefan Duhr
出处
期刊:Methods
[Elsevier BV]
日期:2012-12-24
卷期号:59 (3): 301-315
被引量:615
标识
DOI:10.1016/j.ymeth.2012.12.005
摘要
Microscale thermophoresis (MST) allows for quantitative analysis of protein interactions in free solution and with low sample consumption. The technique is based on thermophoresis, the directed motion of molecules in temperature gradients. Thermophoresis is highly sensitive to all types of binding-induced changes of molecular properties, be it in size, charge, hydration shell or conformation. In an all-optical approach, an infrared laser is used for local heating, and molecule mobility in the temperature gradient is analyzed via fluorescence. In standard MST one binding partner is fluorescently labeled. However, MST can also be performed label-free by exploiting intrinsic protein UV-fluorescence. Despite the high molecular weight ratio, the interaction of small molecules and peptides with proteins is readily accessible by MST. Furthermore, MST assays are highly adaptable to fit to the diverse requirements of different biomolecules, such as membrane proteins to be stabilized in solution. The type of buffer and additives can be chosen freely. Measuring is even possible in complex bioliquids like cell lysate allowing close to in vivo conditions without sample purification. Binding modes that are quantifiable via MST include dimerization, cooperativity and competition. Thus, its flexibility in assay design qualifies MST for analysis of biomolecular interactions in complex experimental settings, which we herein demonstrate by addressing typically challenging types of binding events from various fields of life science.
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