Logo image
Integrating molecular and physiological approaches to quantify genetic controls for wheat development and improve phenotyping
Journal article   Open access   Peer reviewed

Integrating molecular and physiological approaches to quantify genetic controls for wheat development and improve phenotyping

Hamish Brown, John McCallum, Paul Johnston, Meeghan Pither-Joyce, Richard Macknight, Neil Huth, Derrick Moot, Bangyou Zheng, Zhigan Zhao, James Hunt, …
Journal of experimental botany, erag278
05/06/2026
Handle:
https://hdl.handle.net/10523/51408

Abstract

vernalisation phenology VRN genes final leaf number Flowering time photoperiod Triticum aestivum gene expression
Disentangling genotype × environment (G×E) controls of flowering time requires phenotypes that link molecular regulation, developmental physiology and environment. Here, we integrated time-resolved measurements of apical development, final leaf number (FLN), and expression of the flowering-time genes VRN1, VRN2 and VRN3 across contrasting temperature and photoperiod regimes in six wheat genotypes spanning a wide range of developmental sensitivities. By combining controlled-environment phenotyping with concurrent gene-expression profiling, we show that environmentally driven variation in FLN is coherently explained by shifts in the timing of key apical transitions and associated VRN gene-expression dynamics. These integrated datasets were used to parameterise and interrogate the Cereal Anthesis Molecular Phenology (CAMP) model, enabling direct comparison between observed foliar gene-expression time courses and modelled gene activity. While overall developmental responses were well captured by the model, systematic differences between observed and modelled gene-expression patterns highlight the importance of distinguishing foliar expression from apical regulatory activity, as well as differences in temporal scaling. Building on this framework, we present a phenotyping protocol based on FLN responses to defined temperature and photoperiod treatments that delivers unconfounded developmental phenotypes explicitly linked to underlying genetic regulation.
url
https://doi.org/10.1093/jxb/erag278View
Published (Version of record) Open CC BY V4.0

Metrics

1 Record Views

Details

Logo image