Aschenbrenner Daniela, Pippig Diana A, Klamecka Kamila, Limmer Katja, Leonhardt Heinrich, Gaub Hermann E
Lehrstuhl für Angewandte Physik and Center for Nanoscience (CeNS), Ludwig-Maximilians-; Munich Center for Integrated Protein Science (CIPSM), Butenandtstr. 5-13, 81377 Munich, Germany.
Lehrstuhl für Angewandte Physik and Center for Nanoscience (CeNS), Ludwig-Maximilians-
PLoS One. 2014 Dec 29;9(12):e115049. doi: 10.1371/journal.pone.0115049. eCollection 2014.
Quantitative proteome research is greatly promoted by high-resolution parallel format assays. A characterization of protein complexes based on binding forces offers an unparalleled dynamic range and allows for the effective discrimination of non-specific interactions. Here we present a DNA-based Molecular Force Assay to quantify protein-protein interactions, namely the bond between different variants of GFP and GFP-binding nanobodies. We present different strategies to adjust the maximum sensitivity window of the assay by influencing the binding strength of the DNA reference duplexes. The binding of the nanobody Enhancer to the different GFP constructs is compared at high sensitivity of the assay. Whereas the binding strength to wild type and enhanced GFP are equal within experimental error, stronger binding to superfolder GFP is observed. This difference in binding strength is attributed to alterations in the amino acids that form contacts according to the crystal structure of the initial wild type GFP-Enhancer complex. Moreover, we outline the potential for large-scale parallelization of the assay.
高分辨率平行格式分析极大地推动了定量蛋白质组研究。基于结合力对蛋白质复合物进行表征可提供无与伦比的动态范围,并能有效区分非特异性相互作用。在此,我们展示一种基于DNA的分子力分析方法,用于量化蛋白质-蛋白质相互作用,即绿色荧光蛋白(GFP)不同变体与GFP结合纳米抗体之间的结合。我们提出了不同策略,通过影响DNA参考双链体的结合强度来调整分析的最大灵敏度窗口。在分析的高灵敏度下,比较了纳米抗体增强子与不同GFP构建体的结合情况。虽然在实验误差范围内,与野生型和增强型GFP的结合强度相等,但观察到与超级折叠GFP的结合更强。这种结合强度的差异归因于根据初始野生型GFP-增强子复合物的晶体结构形成接触的氨基酸的改变。此外,我们概述了该分析大规模平行化的潜力。