Molecular Engineering of Robustness and Resilience in Enzymatic Reaction Networks
Author(s) -
Albert S. Y. Wong,
Aleksandr A. Pogodaev,
Ilia N. Vialshin,
Britta Helwig,
Wilhelm T. S. Huck
Publication year - 2017
Publication title -
journal of the american chemical society
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 7.115
H-Index - 612
eISSN - 1520-5126
pISSN - 0002-7863
DOI - 10.1021/jacs.7b00632
Subject(s) - chemistry , bistability , robustness (evolution) , biological network , biochemical engineering , resilience (materials science) , function (biology) , chemical reaction , nanotechnology , biological system , computational biology , physics , biochemistry , materials science , quantum mechanics , evolutionary biology , biology , engineering , gene , thermodynamics
Living systems rely on complex networks of chemical reactions to control the concentrations of molecules in space and time. Despite the enormous complexity in biological networks, it is possible to identify network motifs that lead to functional outputs such as bistability or oscillations. One of the greatest challenges in chemistry is the creation of such functionality from chemical reactions. A key limitation is our lack of understanding of how molecular structure impacts on the dynamics of chemical reaction networks, preventing the design of networks that are robust (i.e., function in a large parameter space) and resilient (i.e., reach their out-of-equilibrium function rapidly). Here we demonstrate that reaction rates of individual reactions in the network can control the dynamics by which the system reaches limit cycle oscillations, thereby gaining information on the key parameters that govern the dynamics of these networks. We envision that these principles will be incorporated into the design of network motifs, enabling chemists to develop "molecular software" to create functional behavior in chemical systems.
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