Multi-scale stochastic organization-oriented coarse-graining exemplified on the human mitotic checkpoint
暂无分享,去创建一个
Peter Dittrich | David Parker | Bashar Ibrahim | John Haslegrave | Pietro Speroni di Fenizio | Richard Henze | Jan Huwald | Chunyan Mu | Mate Puljiz | Jonathan E Rowe | Nishanthan Kamaleson | Christopher Good | P. Dittrich | Mate Puljiz | J. Rowe | B. Ibrahim | C. Mu | J. Haslegrave | David Parker | Jan Huwald | Richard Henze | Nishanthan Kamaleson | Christopher Good
[1] Alexander N Gorban,et al. Model reduction in chemical dynamics: slow invariant manifolds, singular perturbations, thermodynamic estimates, and analysis of reaction graph , 2018, Current Opinion in Chemical Engineering.
[2] Andrew W. Murray,et al. The Cell Cycle , 1989 .
[3] Vincent Danos,et al. Internal coarse-graining of molecular systems , 2009, Proceedings of the National Academy of Sciences.
[4] Bashar Ibrahim,et al. Modeling potent pathways for APC/C inhibition: pivotal roles for MCC and BubR1 , 2016, 1611.04781.
[5] Frank Noé,et al. ReaDDy - A Software for Particle-Based Reaction-Diffusion Dynamics in Crowded Cellular Environments , 2013, PloS one.
[6] Ron Henkel,et al. Notions of similarity for systems biology models , 2016, Briefings Bioinform..
[7] Tomas Veloz,et al. Effects of small particle numbers on long-term behaviour in discrete biochemical systems , 2014, Bioinform..
[8] S. Lam,et al. The CSP method for simplifying kinetics , 1994 .
[9] Peter F. Stadler,et al. A Topological Approach to Chemical Organizations a Topological Approach to Chemical Organizations , 2022 .
[10] Alexander N Gorban,et al. Asymptotology of chemical reaction networks , 2009, 0903.5072.
[11] David O. Morgan,et al. The Cell Cycle: Principles of Control , 2014 .
[12] Jonathan E. Rowe,et al. Finite-Horizon Bisimulation Minimisation for Probabilistic Systems , 2016, SPIN.
[13] Nicolas Le Novère,et al. Structure, function, and behaviour of computational models in systems biology , 2013, BMC Systems Biology.
[14] M. Crosby,et al. Cell Cycle: Principles of Control , 2007, The Yale Journal of Biology and Medicine.
[15] P. Dittrich,et al. In-Silico Modeling of the Mitotic Spindle Assembly Checkpoint , 2008, PloS one.
[16] Tamás Turányi,et al. Analysis of Kinetic Reaction Mechanisms , 2014 .
[17] Patrícia M. A. Silva,et al. Spindle Assembly Checkpoint as a Potential Target in Colorectal Cancer: Current Status and Future Perspectives , 2017, Clinical colorectal cancer.
[18] Cosmin Safta,et al. Chemical model reduction under uncertainty , 2017 .
[19] I. Vitale,et al. Molecular Regulation of the Spindle Assembly Checkpoint by Kinases and Phosphatases. , 2017, International review of cell and molecular biology.
[20] Vipul Periwal,et al. System Modeling in Cellular Biology: From Concepts to Nuts and Bolts , 2006 .
[21] Peter Dittrich,et al. On the Relation between Organizations and Limit Sets in Chemical Reaction Systems , 2011, Adv. Complex Syst..
[22] Eric Mjolsness,et al. Model reduction for stochastic CaMKII reaction kinetics in synapses by graph-constrained correlation dynamics. , 2015, Physical biology.
[23] Fridolin Gross,et al. Implications of alternative routes to APC/C inhibition by the mitotic checkpoint complex , 2018, PLoS Comput. Biol..
[24] Éva Tardos,et al. Algorithm design , 2005 .
[25] Jonathan R. Karr,et al. A Whole-Cell Computational Model Predicts Phenotype from Genotype , 2012, Cell.
[26] Bashar Ibrahim,et al. Mathematical analysis and modeling of DNA segregation mechanisms. , 2017, Mathematical biosciences and engineering : MBE.
[27] Dima Grigoriev,et al. Tropicalization and tropical equilibration of chemical reactions , 2012, 1303.3963.
[28] Peter Dittrich,et al. Stochastic effects in a compartmental model for mitotic checkpoint regulation , 2007, J. Integr. Bioinform..
[29] Peter Dittrich,et al. Mad2 binding is not sufficient for complete Cdc20 sequestering in mitotic transition control (an in silico study). , 2008, Biophysical chemistry.
[30] Peter Dittrich,et al. Chemical Organisation Theory , 2007, Bulletin of mathematical biology.
[31] Peter Dittrich,et al. A Dynamical Model for Activating and Silencing the Mitotic Checkpoint , 2017, Scientific Reports.
[32] Peter Dittrich,et al. In silico study of kinetochore control, amplification, and inhibition effects in MCC assembly , 2009, Biosyst..
[33] Mate Puljiz. On coarse graining and other fine problems , 2017 .
[34] Tomas Veloz,et al. Cycles and the Qualitative Evolution of Chemical Systems , 2012, PloS one.
[35] Peter Dittrich,et al. Artificial Chemistry ’ s Global Dynamic . Movements in the Lattice of Organisation , 2022 .
[36] Bashar Ibrahim,et al. A Mathematical Framework for Kinetochore-Driven Activation Feedback in the Mitotic Checkpoint , 2017, Bulletin of mathematical biology.
[37] Pietro Speroni di Fenizio,et al. Chemical Organisation Theory , 2005, Bulletin of mathematical biology.
[38] Alden H. Wright,et al. State Aggregation and Population Dynamics in Linear Systems , 2005, Artificial Life.
[39] E. Salmon,et al. The spindle-assembly checkpoint in space and time , 2007, Nature Reviews Molecular Cell Biology.
[40] Martin Nilsson Jacobi,et al. Hierarchical Organization in Smooth Dynamical Systems , 2005, Artificial Life.
[41] Peter Dittrich,et al. Organisation-Oriented Coarse Graining and Refinement of Stochastic Reaction Networks , 2018, IEEE/ACM Transactions on Computational Biology and Bioinformatics.
[42] Alden H. Wright,et al. Differentiable coarse graining , 2006, Theor. Comput. Sci..
[43] Peter Dittrich,et al. Formal Quantitative Analysis of Reaction Networks Using Chemical Organisation Theory , 2016, CMSB.
[44] Nikolaos Kazantzis,et al. Model reduction and coarse-graining approaches for multiscale phenomena , 2006 .
[45] John J. Tyson,et al. Molecular mechanisms creating bistable switches at cell cycle transitions , 2013, Open Biology.
[46] Bashar Ibrahim,et al. In silico spatial simulations reveal that MCC formation and excess BubR1 are required for tight inhibition of the anaphase-promoting complex. , 2015, Molecular bioSystems.
[47] Bashar Ibrahim,et al. Active Transport Can Greatly Enhance Cdc20:Mad2 Formation , 2014, International journal of molecular sciences.
[48] Bashar Ibrahim,et al. Toward a systems-level view of mitotic checkpoints. , 2015, Progress in biophysics and molecular biology.
[49] Leo W. Buss,et al. “The arrival of the fittest”: Toward a theory of biological organization , 1994 .
[50] Marta Z. Kwiatkowska,et al. PRISM 4.0: Verification of Probabilistic Real-Time Systems , 2011, CAV.
[51] Karen Willcox,et al. A Survey of Projection-Based Model Reduction Methods for Parametric Dynamical Systems , 2015, SIAM Rev..
[52] Luca Cardelli,et al. Morphisms of reaction networks that couple structure to function , 2014, BMC Systems Biology.
[53] Eshel Ben-Jacob,et al. Evaluating putative mechanisms of the mitotic spindle checkpoint. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[54] Takeharu Nagai,et al. Two Bistable Switches Govern M Phase Entry , 2016, Current Biology.
[55] Peter Dittrich,et al. Chemical Organizations at Different Spatial Scales , 2007, ECAL.