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Taberman, H.

Publications and source records attributed to Taberman, H..

2 recordsLinked to original sources

Orthorhombic coronavirus main protease crystals provide a higher success rate in fragment screening

In more and more drug discovery projects, crystallographic fragment screening (CFS) is employed as an early screening method. Here, we demonstrate that choosing the right crystal form has a profound influence on the hit rates and hence success and speed of downstream lead generation. Two CFS campaigns with the same fragment library and an almost identical experimental setup were carried out against the two crystal forms of the SARS-CoV-2 main protease.While both crystal forms exhibit similar diffraction properties, the observed hit rates in the two campaigns were vastly different. For the monoclinic crystals a hit rate of 3% was determined, while a hit rate of 16% was observed for the orthorhombic crystals. These findings align with the more open molecular packing in the orthorhombic crystals where the solvent channels leading to the active sites are about twice larger than in the monoclinic crystal form. Our results highlight the critical importance of the crystal system in a crystallographic fragment-screening campaign and identify this parameter as one of the most important ones to be optimized during preparation of a campaign.

biochemistry↗

Engineering a minimal SilkCatcher/Tag pair compatible with SpyCatcher/Tag pair for the production of native-sized spider silk

Protein/peptide pairs, called Catcher/Tag pairs, are applied for biological isopeptide-bond mediated Click-reactions. Covalent protein ligation using Catcher/Tag pairs has turned out to be a valuable tool in biotechnology and biomedicines. It is essential to increase the current toolbox of Catcher/Tag pairs to expand the range of applications further, e.g., for multiple-fragment ligation that requires several orthogonal ligases. We report here engineering of novel Catcher/Tag pairs for protein ligation, aided by a new crystal structure of a minimal CnaB domain from Lactobacillus plantarum. We engineer several split variants, characterize in detail one of them, named SilkCatcher/Tag pair, and show that the newly engineered SilkCatcher/Tag pair is orthogonal and compatible with the widely used SpyCatcher/Tag pair. Finally, we demonstrate the use of the new SilkCatcher/Tag pair in the production of native-sized highly repetitive spider-silk-like proteins with >90% purity, which is not possible with the traditional recombinant production.

biochemistry↗