Literature DB >> 33692820

Proximal Hyperspectral Imaging Detects Diurnal and Drought-Induced Changes in Maize Physiology.

Stien Mertens1,2, Lennart Verbraeken1,2, Heike Sprenger1,2, Kirin Demuynck1,2, Katrien Maleux1,2, Bernard Cannoot1,2, Jolien De Block1,2, Steven Maere1,2, Hilde Nelissen1,2, Gustavo Bonaventure3, Steven J Crafts-Brandner4, Jonathan T Vogel4, Wesley Bruce4, Dirk Inzé1,2, Nathalie Wuyts1,2.   

Abstract

Hyperspectral imaging is a promising tool for non-destructive phenotyping of plant physiological traits, which has been transferred from remote to proximal sensing applications, and from manual laboratory setups to automated plant phenotyping platforms. Due to the higher resolution in proximal sensing, illumination variation and plant geometry result in increased non-biological variation in plant spectra that may mask subtle biological differences. Here, a better understanding of spectral measurements for proximal sensing and their application to study drought, developmental and diurnal responses was acquired in a drought case study of maize grown in a greenhouse phenotyping platform with a hyperspectral imaging setup. The use of brightness classification to reduce the illumination-induced non-biological variation is demonstrated, and allowed the detection of diurnal, developmental and early drought-induced changes in maize reflectance and physiology. Diurnal changes in transpiration rate and vapor pressure deficit were significantly correlated with red and red-edge reflectance. Drought-induced changes in effective quantum yield and water potential were accurately predicted using partial least squares regression and the newly developed Water Potential Index 2, respectively. The prediction accuracy of hyperspectral indices and partial least squares regression were similar, as long as a strong relationship between the physiological trait and reflectance was present. This demonstrates that current hyperspectral processing approaches can be used in automated plant phenotyping platforms to monitor physiological traits with a high temporal resolution.
Copyright © 2021 Mertens, Verbraeken, Sprenger, Demuynck, Maleux, Cannoot, De Block, Maere, Nelissen, Bonaventure, Crafts-Brandner, Vogel, Bruce, Inzé and Wuyts.

Entities:  

Keywords:  automated phenotyping platform; drought; hyperspectral; maize; phenotyping; physiology; proximal sensing

Year:  2021        PMID: 33692820      PMCID: PMC7937976          DOI: 10.3389/fpls.2021.640914

Source DB:  PubMed          Journal:  Front Plant Sci        ISSN: 1664-462X            Impact factor:   5.753


  5 in total

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2.  Morphological and Physiological Traits Associated with Yield under Reduced Irrigation in Chilean Coastal Lowland Quinoa.

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4.  Non-destructive measurement of total phenolic compounds in Arabidopsis under various stress conditions.

Authors:  Praveen Kumar Jayapal; Rahul Joshi; Ramaraj Sathasivam; Bao Van Nguyen; Mohammad Akbar Faqeerzada; Sang Un Park; Domnic Sandanam; Byoung-Kwan Cho
Journal:  Front Plant Sci       Date:  2022-09-02       Impact factor: 6.627

5.  The OsERF115/AP2EREBP110 Transcription Factor Is Involved in the Multiple Stress Tolerance to Heat and Drought in Rice Plants.

Authors:  Seong-Im Park; Hyeok Jin Kwon; Mi Hyeon Cho; Ji Sun Song; Beom-Gi Kim; JeongHo Baek; Song Lim Kim; HyeonSo Ji; Taek-Ryoun Kwon; Kyung-Hwan Kim; In Sun Yoon
Journal:  Int J Mol Sci       Date:  2021-07-02       Impact factor: 5.923

  5 in total

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