Cargando…

Precision phenotyping across the life cycle to validate and decipher drought-adaptive QTLs of wild emmer wheat (Triticum turgidum ssp. dicoccoides) introduced into elite wheat varieties

Drought events or the combination of drought and heat conditions are expected to become more frequent due to global warming, and wheat yields may fall below their long-term average. One way to increase climate-resilience of modern high-yielding varieties is by their genetic improvement with benefici...

Descripción completa

Detalles Bibliográficos
Autores principales: Lauterberg, Madita, Saranga, Yehoshua, Deblieck, Mathieu, Klukas, Christian, Krugman, Tamar, Perovic, Dragan, Ordon, Frank, Graner, Andreas, Neumann, Kerstin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9598872/
https://www.ncbi.nlm.nih.gov/pubmed/36311121
http://dx.doi.org/10.3389/fpls.2022.965287
_version_ 1784816455535034368
author Lauterberg, Madita
Saranga, Yehoshua
Deblieck, Mathieu
Klukas, Christian
Krugman, Tamar
Perovic, Dragan
Ordon, Frank
Graner, Andreas
Neumann, Kerstin
author_facet Lauterberg, Madita
Saranga, Yehoshua
Deblieck, Mathieu
Klukas, Christian
Krugman, Tamar
Perovic, Dragan
Ordon, Frank
Graner, Andreas
Neumann, Kerstin
author_sort Lauterberg, Madita
collection PubMed
description Drought events or the combination of drought and heat conditions are expected to become more frequent due to global warming, and wheat yields may fall below their long-term average. One way to increase climate-resilience of modern high-yielding varieties is by their genetic improvement with beneficial alleles from crop wild relatives. In the present study, the effect of two beneficial QTLs introgressed from wild emmer wheat and incorporated in the three wheat varieties BarNir, Zahir and Uzan was studied under well-watered conditions and under drought stress using non-destructive High-throughput Phenotyping (HTP) throughout the life cycle in a single pot-experiment. Plants were daily imaged with RGB top and side view cameras and watered automatically. Further, at two time points, the quantum yield of photosystem II was measured with a top view FluorCam. The QTL carrying near isogenic lines (NILs) were compared with their corresponding parents by t-test for all non-invasively obtained traits and for the manually determined agronomic and yield parameters. Data quality of phenotypic traits (repeatability) in the controlled HTP experiment was above 85% throughout the life cycle and at maturity. Drought stress had a strong effect on growth in all wheat genotypes causing biomass reduction from 2% up to 70% at early and late points in the drought period, respectively. At maturity, the drought caused 47–55% decreases in yield-related traits grain weight, straw weight and total biomass and reduced TKW by 10%, while water use efficiency (WUE) increased under drought by 29%. The yield-enhancing effect of the introgressed QTLs under drought conditions that were previously demonstrated under field/screenhouse conditions in Israel, could be mostly confirmed in a greenhouse pot experiment using HTP. Daily precision phenotyping enabled to decipher the mode of action of the QTLs in the different genetic backgrounds throughout the entire wheat life cycle. Daily phenotyping allowed a precise determination of the timing and size of the QTLs effect (s) and further yielded information about which image-derived traits are informative at which developmental stage of wheat during the entire life cycle. Maximum height and estimated biovolume were reached about a week after heading, so experiments that only aim at exploring these traits would not need a longer observation period. To obtain information on different onset and progress of senescence, the CVa curves represented best the ongoing senescence of plants. The QTL on 7A in the BarNir background was found to improve yield under drought by increased biomass growth, a higher photosynthetic performance, a higher WUE and a “stay green effect.”
format Online
Article
Text
id pubmed-9598872
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-95988722022-10-27 Precision phenotyping across the life cycle to validate and decipher drought-adaptive QTLs of wild emmer wheat (Triticum turgidum ssp. dicoccoides) introduced into elite wheat varieties Lauterberg, Madita Saranga, Yehoshua Deblieck, Mathieu Klukas, Christian Krugman, Tamar Perovic, Dragan Ordon, Frank Graner, Andreas Neumann, Kerstin Front Plant Sci Plant Science Drought events or the combination of drought and heat conditions are expected to become more frequent due to global warming, and wheat yields may fall below their long-term average. One way to increase climate-resilience of modern high-yielding varieties is by their genetic improvement with beneficial alleles from crop wild relatives. In the present study, the effect of two beneficial QTLs introgressed from wild emmer wheat and incorporated in the three wheat varieties BarNir, Zahir and Uzan was studied under well-watered conditions and under drought stress using non-destructive High-throughput Phenotyping (HTP) throughout the life cycle in a single pot-experiment. Plants were daily imaged with RGB top and side view cameras and watered automatically. Further, at two time points, the quantum yield of photosystem II was measured with a top view FluorCam. The QTL carrying near isogenic lines (NILs) were compared with their corresponding parents by t-test for all non-invasively obtained traits and for the manually determined agronomic and yield parameters. Data quality of phenotypic traits (repeatability) in the controlled HTP experiment was above 85% throughout the life cycle and at maturity. Drought stress had a strong effect on growth in all wheat genotypes causing biomass reduction from 2% up to 70% at early and late points in the drought period, respectively. At maturity, the drought caused 47–55% decreases in yield-related traits grain weight, straw weight and total biomass and reduced TKW by 10%, while water use efficiency (WUE) increased under drought by 29%. The yield-enhancing effect of the introgressed QTLs under drought conditions that were previously demonstrated under field/screenhouse conditions in Israel, could be mostly confirmed in a greenhouse pot experiment using HTP. Daily precision phenotyping enabled to decipher the mode of action of the QTLs in the different genetic backgrounds throughout the entire wheat life cycle. Daily phenotyping allowed a precise determination of the timing and size of the QTLs effect (s) and further yielded information about which image-derived traits are informative at which developmental stage of wheat during the entire life cycle. Maximum height and estimated biovolume were reached about a week after heading, so experiments that only aim at exploring these traits would not need a longer observation period. To obtain information on different onset and progress of senescence, the CVa curves represented best the ongoing senescence of plants. The QTL on 7A in the BarNir background was found to improve yield under drought by increased biomass growth, a higher photosynthetic performance, a higher WUE and a “stay green effect.” Frontiers Media S.A. 2022-10-12 /pmc/articles/PMC9598872/ /pubmed/36311121 http://dx.doi.org/10.3389/fpls.2022.965287 Text en Copyright © 2022 Lauterberg, Saranga, Deblieck, Klukas, Krugman, Perovic, Ordon, Graner and Neumann. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
Lauterberg, Madita
Saranga, Yehoshua
Deblieck, Mathieu
Klukas, Christian
Krugman, Tamar
Perovic, Dragan
Ordon, Frank
Graner, Andreas
Neumann, Kerstin
Precision phenotyping across the life cycle to validate and decipher drought-adaptive QTLs of wild emmer wheat (Triticum turgidum ssp. dicoccoides) introduced into elite wheat varieties
title Precision phenotyping across the life cycle to validate and decipher drought-adaptive QTLs of wild emmer wheat (Triticum turgidum ssp. dicoccoides) introduced into elite wheat varieties
title_full Precision phenotyping across the life cycle to validate and decipher drought-adaptive QTLs of wild emmer wheat (Triticum turgidum ssp. dicoccoides) introduced into elite wheat varieties
title_fullStr Precision phenotyping across the life cycle to validate and decipher drought-adaptive QTLs of wild emmer wheat (Triticum turgidum ssp. dicoccoides) introduced into elite wheat varieties
title_full_unstemmed Precision phenotyping across the life cycle to validate and decipher drought-adaptive QTLs of wild emmer wheat (Triticum turgidum ssp. dicoccoides) introduced into elite wheat varieties
title_short Precision phenotyping across the life cycle to validate and decipher drought-adaptive QTLs of wild emmer wheat (Triticum turgidum ssp. dicoccoides) introduced into elite wheat varieties
title_sort precision phenotyping across the life cycle to validate and decipher drought-adaptive qtls of wild emmer wheat (triticum turgidum ssp. dicoccoides) introduced into elite wheat varieties
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9598872/
https://www.ncbi.nlm.nih.gov/pubmed/36311121
http://dx.doi.org/10.3389/fpls.2022.965287
work_keys_str_mv AT lauterbergmadita precisionphenotypingacrossthelifecycletovalidateanddecipherdroughtadaptiveqtlsofwildemmerwheattriticumturgidumsspdicoccoidesintroducedintoelitewheatvarieties
AT sarangayehoshua precisionphenotypingacrossthelifecycletovalidateanddecipherdroughtadaptiveqtlsofwildemmerwheattriticumturgidumsspdicoccoidesintroducedintoelitewheatvarieties
AT deblieckmathieu precisionphenotypingacrossthelifecycletovalidateanddecipherdroughtadaptiveqtlsofwildemmerwheattriticumturgidumsspdicoccoidesintroducedintoelitewheatvarieties
AT klukaschristian precisionphenotypingacrossthelifecycletovalidateanddecipherdroughtadaptiveqtlsofwildemmerwheattriticumturgidumsspdicoccoidesintroducedintoelitewheatvarieties
AT krugmantamar precisionphenotypingacrossthelifecycletovalidateanddecipherdroughtadaptiveqtlsofwildemmerwheattriticumturgidumsspdicoccoidesintroducedintoelitewheatvarieties
AT perovicdragan precisionphenotypingacrossthelifecycletovalidateanddecipherdroughtadaptiveqtlsofwildemmerwheattriticumturgidumsspdicoccoidesintroducedintoelitewheatvarieties
AT ordonfrank precisionphenotypingacrossthelifecycletovalidateanddecipherdroughtadaptiveqtlsofwildemmerwheattriticumturgidumsspdicoccoidesintroducedintoelitewheatvarieties
AT granerandreas precisionphenotypingacrossthelifecycletovalidateanddecipherdroughtadaptiveqtlsofwildemmerwheattriticumturgidumsspdicoccoidesintroducedintoelitewheatvarieties
AT neumannkerstin precisionphenotypingacrossthelifecycletovalidateanddecipherdroughtadaptiveqtlsofwildemmerwheattriticumturgidumsspdicoccoidesintroducedintoelitewheatvarieties