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PMID: 26681345 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S.

Fluctuating, warm temperatures decrease the effect of a key floral repressor on flowering time in Arabidopsis thaliana.

The New phytologist ·Vol. 210 ·No. 2 ·2016-04-00 ·Pages 564-76

Burghardt LT, Runcie DE, Wilczek AM, Cooper MD, Roe JL, Welch SM, Schmitt J

Abstract

The genetic basis of growth and development is often studied in constant laboratory environments; however, the environmental conditions that organisms experience in nature are often much more dynamic. We examined how daily temperature fluctuations, average temperature, day length and vernalization influence the flowering time of 59 genotypes of Arabidopsis thaliana with allelic perturbations known to affect flowering time. For a subset of genotypes, we also assessed treatment effects on morphology and growth. We identified 17 genotypes, many of which have high levels of the floral repressor FLOWERING LOCUS C (FLC), that bolted dramatically earlier in fluctuating - as opposed to constant - warm temperatures (mean = 22°C). This acceleration was not caused by transient VERNALIZATION INSENSITIVE 3-mediated vernalization, differential growth rates or exposure to high temperatures, and was not apparent when the average temperature was cool (mean = 12°C). Further, in constant temperatures, contrary to physiological expectations, these genotypes flowered more rapidly in cool than in warm environments. Fluctuating temperatures often reversed these responses, restoring faster bolting in warm conditions. Independently of bolting time, warm fluctuating temperature profiles also caused morphological changes associated with shade avoidance or 'high-temperature' phenotypes. Our results suggest that previous studies have overestimated the effect of the floral repressor FLC on flowering time by using constant temperature laboratory conditions.

Keywords
Arabidopsis thaliana FLOWERING LOCUS C (FLC) FRIGIDA flowering time fluctuating temperature life history phenotypic plasticity shade avoidance
MeSH Terms
Arabidopsis/genetics,growth & development,physiology Arabidopsis Proteins/genetics,metabolism Cold Temperature Environment Flowers/genetics,physiology Genotype Hot Temperature MADS Domain Proteins/genetics,metabolism Photoperiod Repressor Proteins/metabolism Time Factors
Chemicals
Arabidopsis Proteins FLF protein, Arabidopsis MADS Domain Proteins Repressor Proteins
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Burghardt Liana T ORCID
Department of Ecology and Evolutionary Biology, Brown University, Providence, RI, 02912, USA. | Biology Department, Duke University, Durham, NC, 27708, USA.
Runcie Daniel E
Department of Evolution and Ecology, University of California at Davis, Davis, CA, 95616, USA.
Wilczek Amity M
Department of Ecology and Evolutionary Biology, Brown University, Providence, RI, 02912, USA. | Deep Springs College, Big Pine, CA, 93513, USA.
Cooper Martha D
Department of Ecology and Evolutionary Biology, Brown University, Providence, RI, 02912, USA.
Roe Judith L
Department of Biology, University of Maine at Presque Isle, Presque Isle, ME, 04769, USA.
Welch Stephen M
Department of Agronomy, Kansas State University, Manhattan, KS, 66506, USA.
Schmitt Johanna
Department of Ecology and Evolutionary Biology, Brown University, Providence, RI, 02912, USA. | Deep Springs College, Big Pine, CA, 93513, USA.
Article Info
Journal
The New phytologist
Abbr.
New Phytol
ISSN
1469-8137
Published
2016-04-00
Epub
2015-00-17
Pages
564-76
Language
English
Region
England
NLM ID
9882884
Subset
IM
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