Результаты поиска по 'Brownian dynamics':
Найдено статей: 4
  1. Khruschev S.S., Abaturova A.M., Diakonova A.N., Ustinin D.M., Zlenko D.V., Fedorov V.A., Kovalenko I.B., Riznichenko G.Yu., Rubin A.B.
    Multi-particle Brownian Dynamics software ProKSim for protein-protein interactions modeling
    Computer Research and Modeling, 2013, v. 5, no. 1, pp. 47-64

    Protein-protein interactions are of central importance for virtually every process in living matter. Modeling the dynamics of protein association is crucial for understanding their functionality. This paper proposes novel simulation software ProKSim (Protein Kinetics Simulator) for modeling of protein interactions by means of the multi-particle Brownian Dynamics. Effect of long-range electrostatic interactions on the process of transient encounter complex formation is numerically estimated. Investigation of transient encounter complex formation was performed for three pairs of proteins: ferredoxin and ferredoxin:NADP+-redustase, plastocyanin and cytochrome f, barnase and barstar.

    Views (last year): 4. Citations: 8 (RSCI).
  2. Ustinin D.M., Kovalenko I.B., Riznichenko G.Yu., Rubin A.B.
    Combination of different simulation techniques in the complex model of photosynthetic membrane
    Computer Research and Modeling, 2013, v. 5, no. 1, pp. 65-81

    Complex geometric organization of subcellular structures such as photosynthetic or mitochondrial membranes determines mechanism of electron and proton transfer processes. We propose new approach in modeling processes, where geometric shape of membranes is accurately taken into account. Different stages of charge transfer process are simulated using different approaches, which are integrated into a combined model. We implemented this model as software which utilizes parallel computations on high-performance clusters and GPUs for better performance.

    Views (last year): 5. Citations: 2 (RSCI).
  3. Abaturova A.M., Kovalenko I.B., Riznichenko G.Yu., Rubin A.B.
    Investigation of complex formation of flavodoxin and photosystem 1 by means of direct multiparticle computer simulation
    Computer Research and Modeling, 2009, v. 1, no. 1, pp. 85-91

    Kinetics of complex formation between components of the photosynthetic electron transport chain — flavodoxin and membrane complex photosystem I has been studied using computer model based on methods of multiparticle simulation and Brownian dynamics. We simulated Brownian motion of several hundreds of flavodoxin molecules, taking into account electrostatic interactions and complex shape of the molecules. Our model could describe experimental nonmonotonic dependence of the association rate constant for flavodoxin and photosystem I. This lets us conclude that electrostatic interactions are sufficient to form such kind of nonmonotonic dependence.

    Views (last year): 4. Citations: 2 (RSCI).
  4. Fedorov V.A., Khruschev S.S., Kovalenko I.B.
    Analysis of Brownian and molecular dynamics trajectories of to reveal the mechanisms of protein-protein interactions
    Computer Research and Modeling, 2023, v. 15, no. 3, pp. 723-738

    The paper proposes a set of fairly simple analysis algorithms that can be used to analyze a wide range of protein-protein interactions. In this work, we jointly use the methods of Brownian and molecular dynamics to describe the process of formation of a complex of plastocyanin and cytochrome f proteins in higher plants. In the diffusion-collision complex, two clusters of structures were revealed, the transition between which is possible with the preservation of the position of the center of mass of the molecules and is accompanied only by a rotation of plastocyanin by 134 degrees. The first and second clusters of structures of collisional complexes differ in that in the first cluster with a positively charged region near the small domain of cytochrome f, only the “lower” plastocyanin region contacts, while in the second cluster, both negatively charged regions. The “upper” negatively charged region of plastocyanin in the first cluster is in contact with the amino acid residue of lysine K122. When the final complex is formed, the plastocyanin molecule rotates by 69 degrees around an axis passing through both areas of electrostatic contact. With this rotation, water is displaced from the regions located near the cofactors of the molecules and formed by hydrophobic amino acid residues. This leads to the appearance of hydrophobic contacts, a decrease in the distance between the cofactors to a distance of less than 1.5 nm, and further stabilization of the complex in a position suitable for electron transfer. Characteristics such as contact matrices, rotation axes during the transition between states, and graphs of changes in the number of contacts during the modeling process make it possible to determine the key amino acid residues involved in the formation of the complex and to reveal the physicochemical mechanisms underlying this process.

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