Eva Deinum
Affiliations: | 2008-2013 | FOM Institute AMOLF, Amsterdam, Noord-Holland, Netherlands |
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Sign in to add mentorBela M. Mulder | grad student | 2008-2013 | Wageningen University | |
(Thesis: Simple models for complex questions on plant development) |
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Publications
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Robertson C, Xue H, Saltini M, et al. (2025) Spiral phyllotaxis predicts left-right asymmetric growth and style deflection in mirror-image flowers of Cyanella alba. Nature Communications. 16: 3695 |
Jacobs B, Saltini M, Molenaar J, et al. (2025) Microtubule flexibility, microtubule-based nucleation and ROP pattern co-alignment enhance protoxylem microtubule patterning. Quantitative Plant Biology. 6: e2 |
Deinum EE. (2024) The systems and interactions underpinning complex cell wall patterning. Biochemical Society Transactions. 52: 2385-2398 |
Saltini M, Barrett SCH, Deinum EE. (2024) Evolution from mixed to fixed handedness in mirror-image flowers: insights from adaptive dynamics. Evolution; International Journal of Organic Evolution |
Saltini M, Deinum EE. (2024) Microtubule simulations in plant biology: A field coming to maturity. Current Opinion in Plant Biology. 81: 102596 |
Deinum EE, Jacobs B. (2023) ROP Patterning: Linking Mathematical Models and Molecular Diversity. Journal of Experimental Botany |
Jacobs B, Schneider R, Molenaar J, et al. (2022) Microtubule nucleation complex behavior is critical for cortical array homogeneity xylem wall patterning. Proceedings of the National Academy of Sciences of the United States of America. 119: e2203900119 |
Schneider R, Klooster KV, Picard KL, et al. (2021) Long-term single-cell imaging and simulations of microtubules reveal principles behind wall patterning during proto-xylem development. Nature Communications. 12: 669 |
Jacobs B, Molenaar J, Deinum EE. (2020) Robust banded protoxylem pattern formation through microtubule-based directional ROP diffusion restriction. Journal of Theoretical Biology. 110351 |
Deinum EE, Mulder BM, Benitez Alfonso Y. (2019) From plasmodesma geometry to effective symplasmic permeability through biophysical modelling. Elife. 8 |