Junker Jan Philipp, Ziegler Fabian, Rief Matthias
Physik Department E22, Technische Universität München, James-Franck-Strasse, 85748 München, Germany.
Science. 2009 Jan 30;323(5914):633-7. doi: 10.1126/science.1166191.
Single-molecule force spectroscopy allows superb mechanical control of protein conformation. We used a custom-built low-drift atomic force microscope to observe mechanically induced conformational equilibrium fluctuations of single molecules of the eukaryotic calcium-dependent signal transducer calmodulin (CaM). From this data, the ligand dependence of the full energy landscape can be reconstructed. We find that calcium ions affect the folding kinetics of the individual CaM domains, whereas target peptides stabilize the already folded structure. Single-molecule data of full length CaM reveal that a wasp venom peptide binds noncooperatively to CaM with 2:1 stoichiometry, whereas a target enzyme peptide binds cooperatively with 1:1 stoichiometry. If mechanical load is applied directly to the target peptide, real-time binding/unbinding transitions can be observed.
单分子力谱能够对蛋白质构象进行卓越的力学控制。我们使用定制的低漂移原子力显微镜来观察真核生物钙依赖性信号转导蛋白钙调蛋白(CaM)单分子的机械诱导构象平衡波动。根据这些数据,可以重建整个能量景观的配体依赖性。我们发现钙离子影响单个CaM结构域的折叠动力学,而靶肽则稳定已折叠的结构。全长CaM的单分子数据表明,一种黄蜂毒液肽以2:1的化学计量比非协同结合到CaM上,而一种靶酶肽以1:1的化学计量比协同结合。如果将机械负载直接施加到靶肽上,则可以观察到实时的结合/解离转变。