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The molecular chaperone Hsp90 facilitates the folding and activation of a wide array of structurally and functionally diverse client proteins. Hsp90 presents a central node of protein homeostasis and is frequently involved in the development of many human diseases. Although Hsp90 is a promising target for disease treatment, the mechanism by which Hsp90 facilitates client recognition and maturation is poorly understood.
The shape of the homodimeric protein resembles a molecular clamp that opens and closes in response to binding and hydrolysis of ATP. Structural studies reveal a network of distinct local conformational rearrangements that coordinate the slow transition into the hydrolysis-active, closed state configuration (time order of minutes). However, the kinetics of local conformational changes remain elusive because spectroscopic tools that can detect them have been missing so far.
Fluorescence quenching of extrinsic fluorophores by the natural amino acid Tryptophan is based on a photoinduced electron transfer (PET) reaction, which requires sub-nanometer contact between fluorophore and Tryptophan. This quenching mechanism has been developed into a 1-nm spectroscopic tool for the detection of rapid protein folding dynamics. Within the scope of this doctoral thesis, PET-reporter systems were designed to investigate the kinetics of local conformational motions that are part of the mechanistic core of the Hsp90 chaperone cycle. ATP-triggered kinetics of closure of the ATP-lid as well as swapping of the N-terminal ß-strand across subunits and association of the N-terminal and middle-domain were estimated in solution. Bulk experiments revealed that local motions occur on similar timescales and are in good agreement with the ATP-hydrolysis rate. Functional mutations demonstrated that local motions act cooperatively. Furthermore, the lid was shown to close via a two-step process consisting of a rapid lid-reconfiguration in direct response to ATP-binding, followed by slow closure of the lid. The co-chaperone Aha1 seems to act early in the chaperone cycle by remodelling of the lid and by stabilization of apo Hsp90 in a NM-domain pre-associated conformation.
A two-colour single-molecule PET microscopy method was developed to observe local motions at remote positions simultaneously and in real-time. Thus, directionality within the network of local conformational changes could be revealed. In a first attempt, the feasibility of detecting PET-complexes on the single-molecule surface was tested on Hsp90 constructs that report on only one motion (one-colour single-molecule PET microscopy). PET-quenched complexes could be distinguished from photobleached fluorophores through oxidation by molecular oxygen, resulting in fluorescence recovery. In two-colour experiments, a dimmed state was identified for PET-quenched complexes, but not for all of the used PET-reporter systems. Results suggest that local motions occur simultaneously within the time-resolution of the experiment (0.3 sec). Furthermore, bi-exponential kinetics of transition into the closed clamp configuration indicate a more complex mechanism of clamp-closure than of clamp-opening, which could be well described by a mono-exponential function.
In the last two decades, coherent multidimensional femtosecond spectroscopy has become a powerful and versatile tool to investigate chemical dynamics of a broad variety of quantum systems. The combination of transient information, equivalent to pumpprobe spectroscopy, with information about coupling between energetic states and the system environment allows an extensive insight into atomic and molecular properties. Many experimental 2D setups employ the coherence-detected approach, where nonlinear system responses are emitted as coherent electric _elds which are detected after spatial separation from the excitation pulses. As an alternative to this experimentally demanding approach, population-based 2D spectroscopy has been established. Here, the coherent information is encoded in the phases of a collinear excitation-pulse train and extracted from incoherent signals like uorescence via phase cycling. In principle, the use of uorescence as observable can boost the sensitivity down to the single-molecule level. The aim of this work was the realization of a pulse-shaper assisted fully collinear uorescence-detected 2D setup and the conducting of proof-of-principle experiments in the liquid phase. This inherently phase-stable and compact setup has been presented in chapter 3, with the utilized pulse shaper granting amplitude and phase modulation on a shot-to-shot basis. Two di_erent types of white-light sources have been applied and evaluated with regard to their respective advantages for 2D uorescence spectroscopy. A variety of artifact sources that can occur with the present setup have been discussed, and correction schemes and instructions for avoiding these artifacts have been provided. In chapter 4, the setup has been demonstrated by employing a four-pulse sequence on cresyl violet in ethanol. A detailed data-acquisition and data-analysis procedure has been presented, where phase cycling is used for extraction of the nonlinear contributions. Depending on the phase-cycling scheme, it is possible to recover all nonlinear contributions in a single measurement. Well-known quantum-beating behavior of cresyl violet during the population time could be reproduced. Due to measuring in a rotating-frame environment and 1 kHz shot-to-shot pulse incrementation, it was possible to obtain a 2D spectrum for one population time in 6 s. Via error evaluation it has been shown that 10_ averaging (1 min) is su_cient to obtain a root-mean-square error of < 0:05 compared to 400_ averaging, proving that the utilized acquisition scheme is well suited. The realization of the _rst experimental uorescence-detected 2Q 2D experiment and the _rst experimental access to the theoretically predicted 1Q-2Q contribution