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Research Article | Open Access

Unraveling plant phenotype to genotype associations with daily hyperspectral traits in Populus trichocarpa

Marie C. KleinaChristopher YS. Wonga,3J. Grey MonroeaJack Bailey-BaleaThomas N. BuckleyaJin-Gui ChenbMengjun ShubTimothy J. TschaplinskibGerald A. TuskanbTroy S. Magneya,1( )Gail Taylora,2( )
Department of Plant Sciences, University of California Davis, Davis, CA, 95616, USA
Biosciences Division and the Center for Bioenergy Innovation, Oak Ridge National Laboratory, Oak Ridge, TN, 37831, USA

3 Current address: Faculty of Forestry and Environmental Management, University of New Brunswick, Fredericton, NB, Canada.

☆ Notice: This material is based upon work supported by the Center for Bioenergy Innovation (CBI), U.S. Department of Energy, Office of Science, Biological and Environmental Research Program under Award Number ERKP886 and by the Genomics enabled Plant Biology for Determination of Gene Function programme by the Office of Biological and Environmental Research in the DOE Office of Science (DE-SC0020164).

1 Current address: Department of Forest Management, W.A. Franke College of Forestry and Conservation, University of Montana, Missoula, MT.

2 Current address: Department of Genetics, Evolution and Environment, UCL, Gower Street, London WC1E 6AE

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Abstract

Hyperspectral remote sensing is a powerful, high-throughput phenotyping tool that quantifies physiologically and structurally relevant wavelengths across diverse genotypes and over varying temporal scales. In this study, we combined tower-based continuous hyperspectral sensing with genome-wide association studies to analyze 1423 wavebands (400-900 nm) and derivative vegetation indices across 505 genotypes and the genetic architecture of hyperspectral phenotypes over time in Populus trichocarpa Torr. & Gray grown under field conditions. Wavelengths related to chlorophyll and carotenoid absorption spectra exhibited the strongest genetic variation resulting in 98 significant SNP associations. Notably, we found substantial overlap in genetic association between the blue and red spectral regions, indicative of carotenoids and chlorophyll, respectively, and identified more than 10 candidate genes associated with chloroplast function, underpinning photosynthetic activity. Furthermore, fluctuations in associations for vegetative indices, such as the chlorophyll:carotenoid index (CCI), across the growing season reveal a temporally dynamic genetic architecture of physiological traits associated with fall senescence of this temperate tree species. Finally, we also observed correlations (spearman rho = 0.3, p < 1x10−8) between individual wavebands or vegetative indices and growth rate, assessed as the relative change of tree height over the growing season. The growth rate prediction was substantially improved by a regularization multivariate model (spearman rho>0.5, p < 1x10−16), reinforcing the value of hyperspectral measurements for predicting traits linked to tree productivity. These findings highlight the potential of high-throughput, rapid, hyperspectral genome wide association studies GWAS to uncover physiologically meaningful genetic variation and offer promising insights for future acceleration for plant breeding.

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Plant Phenomics
Article number: 100174

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Cite this article:
Klein MC, Wong CY, Monroe JG, et al. Unraveling plant phenotype to genotype associations with daily hyperspectral traits in Populus trichocarpa. Plant Phenomics, 2026, 8(2): 100174. https://doi.org/10.1016/j.plaphe.2026.100174

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Received: 17 September 2025
Revised: 18 January 2026
Accepted: 21 January 2026
Published: 27 March 2026
© 2026 Nanjing Agricultural University.

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).