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Akke, M.

Publications and source records attributed to Akke, M..

2 recordsLinked to original sources

Accelerated Measurement of Chemical Exchange Saturation Transfer by Accordion NMR Spectroscopy

Chemical exchange saturation transfer (CEST) has become an indispensable NMR method to characterize slow exchange affecting biomacromolecules, especially for cases involving exchange between a major state and a minor state, the latter of which is often invisible in the spectrum. The CEST method is based on successive irradiation of selective regions of the NMR spectrum using a weak radiofrequency field, B1, while observing the effect on the visible major state when the B1 field saturates the invisible minor state. The need for selective saturation of narrow spectral regions has to date required acquisition of many tens of two-dimensional CEST spectra to sample the entire spectrum with sufficient resolution. Here we present the ACCEST method which measures an entire CEST profile from a single two-dimensional accordion-CEST spectrum plus a reference spectrum. ACCEST is based on the concept of accordion spectroscopy, where in the present implementation the carrier frequency of the weak saturating B1 field is stepped in synchrony with the dwell-time incrementation in the indirect dimension of the two-dimensional spectrum. We benchmarked ACCEST against conventional CEST, resulting in excellent agreement for both backbone 15N and methyl 13C CEST profiles. ACCEST offers substantial time savings that scale linearly with the number of spectra required in the corresponding conventional CEST experiment. Thus, ACCEST can dramatically speed up lengthy serial experiments, such as ligand titrations or temperature-dependent studies, and enable studies of non-equilibrium systems or samples with limited lifetimes.

biophysics↗

Tipping point in α-synuclein-membrane interactions: stable protein-covered vesicles or amyloid aggregation

-synuclein is a neuronal protein implicated in neurotransmitter release. Its function is thought to critically depend on the dynamic equilibrium between free and membrane-bound protein. -synuclein amyloid formation implicated in Parkinsons Disease was also shown to be modulated by lipid membranes. However, it remains elusive whether -synuclein-related pathology is due to loss-of-function or gain-of-toxic-function. To help address this question, we studied the coupling of the equilibrium between free and membrane-bound -synuclein and membrane-induced amyloid formation - phenomena that are usually treated separately. We present a description of the system on a wide range of length scales and timescales for lipid-to-protein ratio conditions where amyloid formation is either accelerated or inhibited by lipid membranes. We find a clear difference between the dynamics and heterogeneity of the protein-covered membrane interface in the two sets of conditions. In aggregation-accelerating conditions, the membrane interface is dynamic and heterogeneous with rapid exchange between free and membrane-bound protein, and disordered protein segments of varying lengths exposed to solution. All these characteristics of the membrane interface are likely to decrease the free energy barrier for amyloid formation. Conversely, the membrane interface is homogeneous and less dynamic in conditions where amyloid formation is inhibited. Importantly, any factors affecting the equilibrium between free and membrane-bound -synuclein may trigger a change from non-aggregating to aggregating conditions. Altogether, our results highlight a strong coupling of the dynamic equilibrium between the free and membrane-bound -synuclein and membrane-modulated amyloid formation and thus of the physiological function of -synuclein and its aberrant aggregation.

biochemistry↗