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Straightforward model construction and analysis of multicomponent biomolecular systems in equilibrium

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Samenvatting

Mathematical modelling of molecular systems can be extremely helpful in elucidating complex phenomena in (bio)chemistry. However, equilibrium conditions in systems consisting of more than two components, such as for molecular glues bound to two proteins, can typically not be analytically determined without assumptions and (semi-)numerical models are not trivial to derive by the non-expert. Here we present a framework for equilibrium models, geared towards molecular glues and other contemporary multicomponent chemical biology challenges. The framework utilizes a general derivation method capable of generating custom mass-balance models for equilibrium conditions of complex molecular systems, based on the simple, reversible biomolecular reactions describing these systems. Several chemical biology concepts are revisited via the framework to demonstrate the simplicity, generality and validity of the approach. The ease of use of the framework and the ability to both analyze systems and gain additional insights in the underlying parameters driving equilibria formation strongly aids the analysis and understanding of biomolecular systems. New directions for research and analysis are brought forward based on the model formation and system and parameter analysis. This conceptual framework severely reduces the time and expertise requirements which currently impede the broad integration of such valuable equilibrium models into molecular glue development and chemical biology research.

Originele taal-2Engels
Pagina's (van-tot)252-260
Aantal pagina's9
TijdschriftRSC Chemical Biology
Volume4
Nummer van het tijdschrift4
Vroegere onlinedatum18 jan. 2023
DOI's
StatusGepubliceerd - 5 apr. 2023

Bibliografische nota

Publisher Copyright:
© 2023 RSC.

Financiering

We thank Marloes Pennings and Kilian Cozijnsen for their feedback as beta-users and Maarten Merkx and Bas Rosier for the fruitful discussions regarding the RAPPID model. This research was funded by the Netherlands Organization for Scientific Research (NWO) through Gravity program 024.001.035, VICI grant 016.150.366 and the European Union's Horizon 2020 research and innovation program under the Marie Skłodowska-Curie grant agreement no 844872.

FinanciersFinanciernummer
European Union’s Horizon Europe research and innovation programme
European Union’s Horizon Europe research and innovation programme
H2020 Marie Skłodowska-Curie Actions844872
Nederlandse Organisatie voor Wetenschappelijk Onderzoek016.150.366, 024.001.035

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