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The Turing Heritage for Plant Biology: All Spots and Stripes?

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Specialty Biology
Date 2025 Feb 13
PMID 39944475
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Abstract

In 'The chemical basis of morphogenesis' (1952), Alan Turing introduced an idea that revolutionised our thinking about pattern formation. He proposed that diffusion could lead to the spontaneous formation of regular patterns. Here, we discuss the impact of Turing's idea on plant science using three well-established examples at different scales: ROP patterning inside single cells, epidermal patterning across several cells and whole vegetation patterns. Also at intermediate levels, e.g., organ spacing, plants look surprisingly regular. But not all regular patterns are Turing patterns, careful observation and prediction of the patterning process-not just the final pattern-is critical to distinguish between mechanisms.

References
1.
Gierer A, Meinhardt H . A theory of biological pattern formation. Kybernetik. 1972; 12(1):30-9. DOI: 10.1007/BF00289234. View

2.
Jonsson H, Heisler M, Shapiro B, Meyerowitz E, Mjolsness E . An auxin-driven polarized transport model for phyllotaxis. Proc Natl Acad Sci U S A. 2006; 103(5):1633-8. PMC: 1326488. DOI: 10.1073/pnas.0509839103. View

3.
Muller S . Update: on selected ROP cell polarity mechanisms in plant cell morphogenesis. Plant Physiol. 2023; 193(1):26-41. DOI: 10.1093/plphys/kiad229. View

4.
Jacobs B, Molenaar J, Deinum E . Small GTPase patterning: How to stabilise cluster coexistence. PLoS One. 2019; 14(3):e0213188. PMC: 6405054. DOI: 10.1371/journal.pone.0213188. View

5.
Sanchez-Corrales Y, Hartley M, van Rooij J, Maree A, Grieneisen V . Morphometrics of complex cell shapes: lobe contribution elliptic Fourier analysis (LOCO-EFA). Development. 2018; 145(6). PMC: 5897594. DOI: 10.1242/dev.156778. View