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Ahnenforschung unter sozialen Amöben : die morphologische Taxonomie muss umgeschrieben werden
(2007)
Seit fast 150 Jahren forschen Wissenschaftler aus aller Welt über den faszinierenden Wechsel zwischen Einzelligkeit und Vielzelligkeit im Lebenszyklus der »zellulären Schleimpilze«. Diese Forschung war bisher so erfolgreich, dass einem Vertreter der zellulären Schleimpilze, Dictyostelium discoideum, vom US-amerikanischen Gesundheitsministerium National Institutes of Health (NIH) ganz offiziell der Status eines Modellorganismus für biomedizinische Forschung verliehen wurde. Obwohl wir inzwischen glauben, viel über die »sozialen Amöben«, die sich bei Nahrungsmangel von Einzellern zu einem vielzelligen Verband zusammenlagern, gelernt zu haben, basiert unser Wissen doch fast ausschließlich auf Arbeiten mit der einen Art D. discoideum. Man kennt allerdings heute mehr als 100 Arten sozialer Amöben. Alle bilden multizelluläre Fruchtkörper aus, die aus Stielen und Sporenpaketen bestehen. Bisher ging man davon aus, dass die Spezies mit azellulären Stielen in ihren Fruchtkörpern phylogenetische Vorläufer der Vertreter mit zellulären Stielen sind, und dass die Vertreter mit verzweigten Fruchtkörpern näher mit sich selbst als mit den anderen sozialen Amöben verwandt sind. Diese Hypothesen wurden nun durch aktuelle molekulargenetische Analysen widerlegt.
Background Identification and evaluation of surface binding-pockets and occluded cavities are initial steps in protein structure-based drug design. Characterizing the active site's shape as well as the distribution of surrounding residues plays an important role for a variety of applications such as automated ligand docking or in situ modeling. Comparing the shape similarity of binding site geometries of related proteins provides further insights into the mechanisms of ligand binding. Results We present PocketPicker, an automated grid-based technique for the prediction of protein binding pockets that specifies the shape of a potential binding-site with regard to its buriedness. The method was applied to a representative set of protein-ligand complexes and their corresponding apo-protein structures to evaluate the quality of binding-site predictions. The performance of the pocket detection routine was compared to results achieved with the existing methods CAST, LIGSITE, LIGSITEcs, PASS and SURFNET. Success rates PocketPicker were comparable to those of LIGSITEcs and outperformed the other tools. We introduce a descriptor that translates the arrangement of grid points delineating a detected binding-site into a correlation vector. We show that this shape descriptor is suited for comparative analyses of similar binding-site geometry by examining induced-fit phenomena in aldose reductase. This new method uses information derived from calculations of the buriedness of potential binding-sites. Conclusions The pocket prediction routine of PocketPicker is a useful tool for identification of potential protein binding-pockets. It produces a convenient representation of binding-site shapes including an intuitive description of their accessibility. The shape-descriptor for automated classification of binding-site geometries can be used as an additional tool complementing elaborate manual inspections.
Background The connection of the variable part of the heavy chain (VH) and and the variable part of the light chain (VL) by a peptide linker to form a consecutive polypeptide chain (single chain antibody, scFv) was a breakthrough for the functional production of antibody fragments in Escherichia coli. Being double the size of fragment variable (Fv) fragments and requiring assembly of two independent polypeptide chains, functional Fab fragments are usually produced with significantly lower yields in E. coli. An antibody design combining stability and assay compatibility of the fragment antigen binding (Fab) with high level bacterial expression of single chain Fv fragments would be desirable. The desired antibody fragment should be both suitable for expression as soluble antibody in E. coli and antibody phage display. Results Here, we demonstrate that the introduction of a polypeptide linker between the fragment difficult (Fd) and the light chain (LC), resulting in the formation of a single chain Fab fragment (scFab), can lead to improved production of functional molecules. We tested the impact of various linker designs and modifications of the constant regions on both phage display efficiency and the yield of soluble antibody fragments. A scFab variant without cysteins (scFabdeltaC) connecting the constant part 1 of the heavy chain (CH1) and the constant part of the light chain (CL) were best suited for phage display and production of soluble antibody fragments. Beside the expression system E.coli, the new antibody format was also expressed in Pichia pastoris. Monovalent and divalent fragments (DiFabodies) as well as multimers were characterised. Conclusion A new antibody design offers the generation of bivalent Fab derivates for antibody phage display and production of soluble antibody fragments. This antibody format is of particular value for high throughput proteome binder generation projects, due to the avidity effect and the possible use of common standard sera for detection.