Literature DB >> 18753282

Genetic variation for lettuce seed thermoinhibition is associated with temperature-sensitive expression of abscisic Acid, gibberellin, and ethylene biosynthesis, metabolism, and response genes.

Jason Argyris1, Peetambar Dahal, Eiji Hayashi, David W Still, Kent J Bradford.   

Abstract

Lettuce (Lactuca sativa 'Salinas') seeds fail to germinate when imbibed at temperatures above 25 degrees C to 30 degrees C (termed thermoinhibition). However, seeds of an accession of Lactuca serriola (UC96US23) do not exhibit thermoinhibition up to 37 degrees C in the light. Comparative genetics, physiology, and gene expression were analyzed in these genotypes to determine the mechanisms governing the regulation of seed germination by temperature. Germination of the two genotypes was differentially sensitive to abscisic acid (ABA) and gibberellin (GA) at elevated temperatures. Quantitative trait loci associated with these phenotypes colocated with a major quantitative trait locus (Htg6.1) from UC96US23 conferring germination thermotolerance. ABA contents were elevated in Salinas seeds that exhibited thermoinhibition, consistent with the ability of fluridone (an ABA biosynthesis inhibitor) to improve germination at high temperatures. Expression of many genes involved in ABA, GA, and ethylene biosynthesis, metabolism, and response was differentially affected by high temperature and light in the two genotypes. In general, ABA-related genes were more highly expressed when germination was inhibited, and GA- and ethylene-related genes were more highly expressed when germination was permitted. In particular, LsNCED4, a gene encoding an enzyme in the ABA biosynthetic pathway, was up-regulated by high temperature only in Salinas seeds and also colocated with Htg6.1. The temperature sensitivity of expression of LsNCED4 may determine the upper temperature limit for lettuce seed germination and may indirectly influence other regulatory pathways via interconnected effects of increased ABA biosynthesis.

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Year:  2008        PMID: 18753282      PMCID: PMC2556833          DOI: 10.1104/pp.108.125807

Source DB:  PubMed          Journal:  Plant Physiol        ISSN: 0032-0889            Impact factor:   8.340


  77 in total

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2.  A new role for phytochromes in temperature-dependent germination.

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4.  Changes in the light sensitivity of buried Polygonum aviculare seeds in relation to cold-induced dormancy loss: development of a predictive model.

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5.  Seed germination of GA-insensitive sleepy1 mutants does not require RGL2 protein disappearance in Arabidopsis.

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Journal:  Plant Cell       Date:  2007-03-23       Impact factor: 11.277

6.  The embryo MADS domain protein AGAMOUS-Like 15 directly regulates expression of a gene encoding an enzyme involved in gibberellin metabolism.

Authors:  Huai Wang; Leonardo V Caruso; A Bruce Downie; Sharyn E Perry
Journal:  Plant Cell       Date:  2004-04-14       Impact factor: 11.277

7.  Abscisic acid in the thermoinhibition of lettuce seed germination and enhancement of its catabolism by gibberellin.

Authors:  Takeru Gonai; Shusuke Kawahara; Makoto Tougou; Shigeru Satoh; Teruyoshi Hashiba; Nobuhiro Hirai; Hiroshi Kawaide; Yuji Kamiya; Toshihito Yoshioka
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8.  Coordinated regulation of Arabidopsis thaliana development by light and gibberellins.

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Journal:  Nature       Date:  2008-01-24       Impact factor: 49.962

9.  Regulation of dormancy in barley by blue light and after-ripening: effects on abscisic acid and gibberellin metabolism.

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Journal:  Plant Physiol       Date:  2008-04-11       Impact factor: 8.340

10.  Seed dormancy release in Arabidopsis Cvi by dry after-ripening, low temperature, nitrate and light shows common quantitative patterns of gene expression directed by environmentally specific sensing.

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1.  QTL analysis of seed germination and pre-emergence growth at extreme temperatures in Medicago truncatula.

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2.  Characterizing Ipomopsis rubra (Polemoniaceae) germination under various thermal scenarios with non-parametric and semi-parametric statistical methods.

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Review 3.  What has natural variation taught us about plant development, physiology, and adaptation?

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4.  Proteomic analysis of lettuce seed germination and thermoinhibition by sampling of individual seeds at germination and removal of storage proteins by polyethylene glycol fractionation.

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Journal:  Plant Physiol       Date:  2015-03-03       Impact factor: 8.340

5.  ABA-insensitive3, ABA-insensitive5, and DELLAs Interact to activate the expression of SOMNUS and other high-temperature-inducible genes in imbibed seeds in Arabidopsis.

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6.  The genetic basis of water-use efficiency and yield in lettuce.

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7.  Genetic Variation for Thermotolerance in Lettuce Seed Germination Is Associated with Temperature-Sensitive Regulation of ETHYLENE RESPONSE FACTOR1 (ERF1).

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8.  Quantitative trait loci associated with longevity of lettuce seeds under conventional and controlled deterioration storage conditions.

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9.  Selection of candidate reference genes for real-time PCR studies in lettuce under abiotic stresses.

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10.  A genetic locus and gene expression patterns associated with the priming effect on lettuce seed germination at elevated temperatures.

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Journal:  Plant Mol Biol       Date:  2010-01-03       Impact factor: 4.076

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