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Linse, J.-B.

Publications and source records attributed to Linse, J.-B..

3 recordsLinked to original sources

Scrutinizing the protein hydration shell from molecular dynamics simulations against consensus small-angle scattering data

Biological macromolecules in solution are surrounded by a hydration shell, whose structure differs from the structure of bulk solvent. In crowded cellular environments, hydration shells constitute a large fraction of the overall solvent. While the importance of the hydration shell for numerous biological functions such as molecular recognition or enzymatic activity is widely acknowledged, it is poorly understood how the hydration shell is regulated by macromolecular shape and surface composition, mostly because a quantitative readout of the overall hydration shell structure has been missing. We show that small-angle scattering (SAS) in solution using X-rays (SAXS) or neutrons (SANS) provide a protein-specific footprint of the protein hydration shell that enables quantitative comparison with molecular dynamics (MD) simulations. By means of explicit-solvent SAS predictions, we derived the effect of the hydration shell contrast relative to bulk on the radii of gyration Rg of five proteins using 18 combinations of protein force field and water model. By comparing computed Rg values from SAXS relative to SANS in D2O with consensus experimental data from a worldwide round-robin study, we found that several but not all force fields yield a hydration shell contrast in remarkable agreement with experimental data. The hydration shell contrast, as captured by Rg values, strongly depends on the protein charge and geometric shape, thus providing a protein-specific footprint of protein-water interactions and a novel observable for scrutinizing atomistic hydration shell models against experimental data.

biophysics↗

Upstream of N-Ras C-terminal cold shock domains mediate poly(A) specificity in a novel RNA recognition mode and bind poly(A) binding protein during translation regulation

RNA binding proteins (RBPs) often engage multiple RNA binding domains (RBDs) to increase target specificity and affinity. However, the complexity of target recognition of multiple RBDs remains largely unexplored. Here we use Upstream of N-Ras (Unr), a multidomain RBP, to demonstrate how multiple RBDs orchestrate target specificity. A crystal structure of the three C-terminal RNA binding cold-shock domains (CSD) of Unr bound to a poly(A) sequence exemplifies how recognition goes beyond the classical {pi}-{pi}-stacking in CSDs. Further structural studies reveal several interaction surfaces between the N-terminal and C-terminal part of Unr with the poly(A)-binding protein (pAbp). This provides first atomistic details towards understanding regulation of translation initiation that is mediated by the interplay of these two proteins with each other and RNA.

molecular biology↗

Structure and dynamics of the quaternary hunchback mRNA translation repression complex

A key regulatory process during Drosophila development is the localized suppression of the hunchback mRNA translation at the posterior, which gives rise to a hunchback gradient governing the formation of the anterior-posterior body axis. The suppression of the RNA is achieved by a concerted action of Brain Tumour (Brat), Pumilio (Pum) and Nanos. Each protein is necessary for proper Drosophila development. The RNA contacts have been elucidated for the proteins individually in several atomic-resolution structures. However, the interplay of all three proteins in the RNA suppression remains a long-standing open question. We characterize the quaternary complex of the RNA-binding domains of Brat, Pum and Nanos with hunchback mRNA by combining NMR spectroscopy, SANS/SAXS, XL/MS with MD simulations and ITC assays. The quaternary hunchback mRNA suppression complex is flexible with the unoccupied nucleotides of the RNA functioning as a flexible linker between the Brat and Pum-Nanos moieties of the complex. Moreover, Brat and Pum with Nanos bind the RNA completely independently. In accordance with previous studies, showing that Brat can suppress hunchback mRNA independently and is distributed uniformly throughout the embryo, this suggests that hunchback mRNA suppression by Brat is functionally separate from the suppression by Pumilio and Nanos.

molecular biology↗