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Jochen, B.

Publications and source records attributed to Jochen, B..

2 recordsLinked to original sources

Self-assembly of Grb2 meshworks revealed by Grb2-Gab1497-528 complex structure

The ubiquitously expressed adaptor protein Growth factor receptor bound protein 2 (Grb2) plays an essential role in signal transduction by binding to activated receptor tyrosine kinases through its SH2 domain and to downstream effectors via its N- and C-terminal SH3 domains (nSH3, cSH3). Here we present the first structure of ligand-bound full length Grb2. The crystal structure of Grb2 in complex with a bidentate nSH3-cSH3-binding peptide, derived from the multi-site docking protein Grb2- associated binder-1 (Gab1), provides molecular insight into effector recognition by Grb2 and reveals the assembly of a two-dimensional meshwork, consisting of multimeric filament-like Grb2 chains linked to each other by the bivalent bound Gab1497-528 peptide. Dominant contacts between Grb2 molecules in the multimer are provided by an intermolecular SH2/cSH3 domain interface that is also present in the closed dimer of ligand-free Grb2. We further show that Grb2 is able to self-assemble to form phase-separated condensates in solution. The Grb2 SH2 domain phosphotyrosine binding site is freely accessible in the multimeric assembly, and phase separation is fostered by addition of Gab1497- 528, as expected from the crystal structure. Multimeric assembly is also observed using a Grb2 SH2- cSH3 didomain construct, and suppressed using a Grb2 Tyr60Glu mutant, a mimic of the in vivo phosphorylated Tyr160 central to the SH2/cSH3 interface, demonstrating that an intact SH2/cSH3 interface is needed for Grb2 assembly in solution.

biochemistry↗

How fluorescent tags modify oligomer size distributions of the Alzheimer-peptide Aβ(1-40)

Within the complex aggregation process of A{beta}-peptides into fibrils, oligomeric species, play a central role and reveal fundamental properties of the underlying mechanism of aggregation. In particular, low molecular weight aggregates have attracted increasing interest because of their role in cytotoxicity and neuronal apoptosis, typical of aggregation related diseases. One of the main techniques used to characterize such early stages of aggregation is fluorescence spectroscopy. To this end, A{beta}-peptide chains are functionalized with fluorescent tags, often covalently bound to the disordered N-terminus region of the peptide, with the assumption that functionalization and presence of the fluorophore will not modify the process of self-assembly nor the final fibrillar structure. Up to date, experimental findings reveal size distributions of thermodynamically stable oligomers ranging from very narrow distributions of dimers to octamers, to very broad distributions up to 50-mers. In the present investigation we systematically study the effects of five of the most commonly used fluorophores on the aggregation of A{beta}(1-40)-peptides. Time-resolved and single-molecule fluorescence spectroscopy have been chosen to monitor the oligomer populations at different fibrillation times, TEM, AFM and X-ray diffraction to investigate the structure of mature fibrils. While the structures of the mature fibrils were only slightly affected by the fluorescent tags, the sizes of the detected oligomeric species varied significantly depending on the chosen fluorophore. In particular, we relate the presence of high molecular weight oligomers (as found for the fluorophores HiLyte 647, Atto 647N and Atto 655) to net-attractive, hydrophobic fluorophore-peptide interactions, which are weak in the case of HiLyte 488, and Atto 488. The latter form low molecular weight oligomers only. Our findings reveal the potentially high impact of the properties of fluorophores on transient aggregates which needs to be included in the interpretation of experimental data of oligomers of fluorescently labeled peptides.

biophysics↗