Ilie, A.; Agudo Torres, R.; Roiban, G.-D.; Reetz, M. T. P450-catalyzed regio- and stereoselective oxidative hydroxylation of disubstituted cyclohexanes: creation of three centers of chirality in a single CH-activation event. Tetrahedron2015, 71, 470–475.
Acevedo-Rocha, C. G.; Agudo Torres, R.; Reetz, M. T. Directed evolution of stereoselective enzymes based on genetic selection as opposed to screening systems. Journal of Biotechnology2014, 191, 3–10.
Roiban, G.-D.; Agudo Torres, R.; Reetz, M. T. Cytochrome P450 Catalyzed Oxidative Hydroxylation of Achiral Organic Compounds with Simultaneous Creation of Two Chirality Centers in a Single C-H Activation Step. Angewandte Chemie International Edition2014, 53, 8659–8663.
Parra, L. P.; Agudo Torres, R.; Reetz, M. T. Directed Evolution by Using Iterative Saturation Mutagenesis Based on Multiresidue Sites. ChemBioChem: A European Journal of Chemical Biology2013, 14, 2301–2309.
Roiban, G.-D.; Agudo Torres, R.; Reetz, M. T. Stereo- and regioselectivity in the P450-catalyzed oxidative tandem difunctionalization of 1-methylcyclohexene. Tetrahedron2013, 69, 5306–5311.
Agudo Torres, R.; Roiban, G.-D.; Reetz, M. T. Induced Axial Chirality in Biocatalytic Asymmetric Ketone Reduction. Journal of the American Chemical Society2013, 135, 1665–1668.
Agudo Torres, R.; Reetz, M. T. Designer cells for stereocomplementary de novo enzymatic cascade reactions based on laboratory evolution. Chemical Communications2013, 49, 10914–10916.
Agudo Torres, R.; Roiban, G.-D.; Reetz, M. T. Achieving Regio- and Enantioselectivity of P450-Catalyzed Oxidative CH Activation of Small Functionalized Molecules by Structure-Guided Directed Evolution. ChemBioChem: A European Journal of Chemical Biology2012, 13, 1465–1473.
TU Dortmund und Pantazis-Gruppe weisen in Kollaborationsprojekt eine neue Klasse von organischer Verbindung mit neutralem, einfach gebundenen Kohlenstoffatom nach
Dr. Dimitrios Pantazis, Gruppenleiter am MPI für Kohlenforschung in der Abteilung für molekulare Theorie und Spektroskopie, ist zum Vizepräsidenten der QBIC Society gewählt worden.
Mit Hilfe von Multiskalen-Simulationsmethoden und modernsten quantenchemischen Berechnungen untersuchten Dr. Dimitrios Pantazis und seine Gruppe, wie die Energie des Sonnenlichts in den Elektronenfluss umgewandelt wird, der chemische Reaktionen antreibt.