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M Hodoscek

Publications and source records attributed to M Hodoscek.

4 recordsLinked to original sources

Catalytic mechanism of aldose reductase studied by the combined potentials of quantum mechanics and molecular mechanics.

The catalytic reduction of D-glyceraldehyde to glycerol by aldose reductase has been investigated with the combined potentials of quantum mechanics (QM) and molecular mechanics (MM) to resolve the question of whether Tyr48 or His110 serves as the proton donor during catalysis. Site directed mutagenesis studies favor Tyr48 as the proton donor while the presence of a water channel linking the N delta 1 of His110 to the bulk solvent suggests that His110 is the proton donor. Utilizing the combined potentials of QM and MM, the binding mode of substrate D-glyceraldehyde was investigated by optimizing the local geometry of Asp43, Lys77, Tyr48, His110 and NADPH at the active site of aldose reductase. Reaction pathways for the reduction of D-glyceraldehyde to glycerol were then constructed by treating both Tyr48 and His110 as proton donors. Comparison of energetics obtained from the reaction pathways suggests His110 to be the proton donor. Based on these findings, a reduction mechanism of D-glyceraldehyde to glycerol is described.

Aldehyde Reductase↗

Dopaminergic pharmacophore of ergoline and its analogues. A molecular electrostatic potential study.

Spatial correspondence between apomorphine, a prototype dopaminergic (DA) drug, and ergoline and some of its (partial) analogues were derived by matching their molecular electrostatic potential (MEP) patterns surrounding the aromatic moieties with respect to the coincident aliphatic N atoms. The MEP patterns were calculated from ab initio wave functions of model molecules. The congruent superimpositions of the molecular frameworks obtained between apomorphine and DA active ergoline analogues might corroborate the hypothesis that they bind with the same receptor sites when activating certain subtypes of the DA receptor.

Apomorphine↗

Computational chemistry on commodity-type computers.

A number of inexpensive computers were benchmarked with the ab initio program Gaussian 94, using both small standard test jobs and larger density functional (DFT) calculations. Several varieties of Pentium (x86) and Alpha CPU based systems were tested. Most of them were running under the open source code operating system Linux. They were compared with several workstations and supercomputers. The most powerful of today's commodity-type processors surpassed current supercomputers in speed. The choice of compilers and compilation options was often found to have a larger influence on job CPU times than details of the hardware. Especially on the x86 type machines, the jobs always ran faster the less memory (RAM) they were given. The fastest machine on a per-CPU basis was an Alpha/Linux system. For the DFT calculation, it was close to twice as fast as a Cray J90 supercomputer.

Chemistry↗