Quantum chemical studies of mechanisms for metalloenzymes MRA Blomberg, T Borowski, F Himo, RZ Liao, PEM Siegbahn Chemical reviews 114 (7), 3601-3658, 2014 | 559 | 2014 |
Modeling enzymatic reactions involving transition metals PEM Siegbahn, T Borowski Accounts of chemical research 39 (10), 729-738, 2006 | 355 | 2006 |
Crystal structures of histone demethylase JMJD2A reveal basis for substrate specificity SS Ng, KL Kavanagh, MA McDonough, D Butler, ES Pilka, BMR Lienard, ... Nature 448 (7149), 87-91, 2007 | 350 | 2007 |
Mechanism of Dioxygen Activation in 2‐Oxoglutarate‐Dependent Enzymes: A Hybrid DFT Study T Borowski, A Bassan, PEM Siegbahn Chemistry–A European Journal 10 (4), 1031-1041, 2004 | 168 | 2004 |
Quantum mechanics/molecular mechanics modeling of enzymatic processes: Caveats and breakthroughs MG Quesne, T Borowski, SP de Visser Chemistry–A European Journal 22 (8), 2562-2581, 2016 | 145 | 2016 |
Mechanism of selective halogenation by SyrB2: a computational study T Borowski, H Noack, M Radon, K Zych, PEM Siegbahn Journal of the American Chemical Society 132 (37), 12887-12898, 2010 | 111 | 2010 |
4-Hydroxyphenylpyruvate dioxygenase: a hybrid density functional study of the catalytic reaction mechanism T Borowski, A Bassan, PEM Siegbahn Biochemistry 43 (38), 12331-12342, 2004 | 106 | 2004 |
Mechanism for catechol ring cleavage by non-heme iron intradiol dioxygenases: a hybrid DFT study T Borowski, PEM Siegbahn Journal of the American Chemical Society 128 (39), 12941-12953, 2006 | 99 | 2006 |
Reaction mechanism of apocarotenoid oxygenase (ACO): a DFT study T Borowski, MRA Blomberg, PEM Siegbahn Chemistry–A European Journal 14 (7), 2264-2276, 2008 | 96 | 2008 |
Time-dependent DFT study on electronic states of vanadium and molybdenum oxide molecules E Brocławik, T Borowski Chemical physics letters 339 (5-6), 433-437, 2001 | 94 | 2001 |
Bacterial steroid hydroxylases: enzyme classes, their functions and comparison of their catalytic mechanisms M Szaleniec, AM Wojtkiewicz, R Bernhardt, T Borowski, M Donova Applied Microbiology and Biotechnology 102, 8153-8171, 2018 | 89 | 2018 |
Quantum chemical studies of dioxygen activation by mononuclear non-heme iron enzymes with the 2-His-1-carboxylate facial triad A Bassan, T Borowski, PEM Siegbahn Dalton Transactions, 3153-3162, 2004 | 80 | 2004 |
Catalytic reaction mechanism of homogentisate dioxygenase: A hybrid DFT study T Borowski, V Georgiev, PEM Siegbahn Journal of the American Chemical Society 127 (49), 17303-17314, 2005 | 76 | 2005 |
Mechanism of O2 Activation by α-Ketoglutarate Dependent Oxygenases Revisited. A Quantum Chemical Study A Wojcik, M Radon, T Borowski The Journal of Physical Chemistry A 120 (8), 1261-1274, 2016 | 73 | 2016 |
Theoretical studies of enzyme mechanisms involving high-valent iron intermediates A Bassan, MRA Blomberg, T Borowski, PEM Siegbahn Journal of inorganic biochemistry 100 (4), 727-743, 2006 | 63 | 2006 |
Ab Inito Modeling of Ethylbenzene Dehydrogenase Reaction Mechanism M Szaleniec, T Borowski, K Schühle, M Witko, J Heider Journal of the American Chemical Society 132 (17), 6014-6024, 2010 | 60 | 2010 |
A comparison of the reaction mechanisms of iron-and manganese-containing 2, 3-HPCD: an important spin transition for manganese V Georgiev, T Borowski, MRA Blomberg, PEM Siegbahn JBIC Journal of Biological Inorganic Chemistry 13, 929-940, 2008 | 58 | 2008 |
Ethylene biosynthesis by 1‐aminocyclopropane‐1‐carboxylic acid oxidase: a DFT study A Bassan, T Borowski, CJ Schofield, PEM Siegbahn Chemistry–A European Journal 12 (34), 8835-8846, 2006 | 55 | 2006 |
Catalytic reaction mechanism of lipoxygenase. A density functional theory study T Borowski, E Brocławik The Journal of Physical Chemistry B 107 (19), 4639-4646, 2003 | 50 | 2003 |
Oxoferryl species in mononuclear non-heme iron enzymes: Biosynthesis, properties and reactivity from a theoretical perspective M Lundberg, T Borowski Coordination chemistry reviews 257 (1), 277-289, 2013 | 49 | 2013 |