Literature DB >> 23695821

Tracing a key player in the regulation of plant architecture: the columnar growth habit of apple trees (Malus × domestica).

Romina Petersen1, Clemens Krost.   

Abstract

Plant architecture is regulated by a complex interplay of some key players (often transcription factors), phytohormones and other signaling molecules such as microRNAs. The columnar growth habit of apple trees is a unique form of plant architecture characterized by thick and upright stems showing a compaction of internodes and carrying short fruit spurs instead of lateral branches. The molecular basis for columnar growth is a single dominant allele of the gene Columnar, whose identity, function and gene product are unknown. As a result of marker analyses, this gene has recently been fine-mapped to chromosome 10 at 18.51-19.09 Mb [according to the annotation of the apple genome by Velasco (2010)], a region containing a cluster of quantitative trait loci associated with plant architecture, but no homologs to the well-known key regulators of plant architecture. Columnar apple trees have a higher auxin/cytokinin ratio and lower levels of gibberellins and abscisic acid than normal apple trees. Transcriptome analyses corroborate these results and additionally show differences in cell membrane and cell wall function. It can be expected that within the next year or two, an integration of these different research methodologies will reveal the identity of the Columnar gene. Besides enabling breeders to efficiently create new apple (and maybe related pear, peach, cherry, etc.) cultivars which combine desirable characteristics of commercial cultivars with the advantageous columnar growth habit using gene technology, this will also provide new insights into an elevated level of plant growth regulation.

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Year:  2013        PMID: 23695821     DOI: 10.1007/s00425-013-1898-9

Source DB:  PubMed          Journal:  Planta        ISSN: 0032-0935            Impact factor:   4.116


  173 in total

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3.  Similar mechanisms might be triggered by alternative external stimuli that induce dormancy release in grape buds.

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Journal:  Planta       Date:  2008-03-07       Impact factor: 4.116

4.  Evolution of floral meristem identity genes. Analysis of Lolium temulentum genes related to APETALA1 and LEAFY of Arabidopsis.

Authors:  G F Gocal; R W King; C A Blundell; O M Schwartz; C H Andersen; D Weigel
Journal:  Plant Physiol       Date:  2001-04       Impact factor: 8.340

5.  Four TFL1/CEN-like genes on distinct linkage groups show different expression patterns to regulate vegetative and reproductive development in apple (Malus x domestica Borkh.).

Authors:  Naozumi Mimida; Nobuhiro Kotoda; Takanori Ueda; Megumi Igarashi; Yoshimichi Hatsuyama; Hiroshi Iwanami; Shigeki Moriya; Kazuyuki Abe
Journal:  Plant Cell Physiol       Date:  2009-01-22       Impact factor: 4.927

6.  Strigolactone signaling is required for auxin-dependent stimulation of secondary growth in plants.

Authors:  Javier Agusti; Silvia Herold; Martina Schwarz; Pablo Sanchez; Karin Ljung; Elizabeth A Dun; Philip B Brewer; Christine A Beveridge; Tobias Sieberer; Eva M Sehr; Thomas Greb
Journal:  Proc Natl Acad Sci U S A       Date:  2011-11-28       Impact factor: 11.205

7.  Expressional regulation of PpDAM5 and PpDAM6, peach (Prunus persica) dormancy-associated MADS-box genes, by low temperature and dormancy-breaking reagent treatment.

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Journal:  J Exp Bot       Date:  2011-03-04       Impact factor: 6.992

8.  Gibberellin deficiency and response mutations suppress the stem elongation phenotype of phytochrome-deficient mutants of Arabidopsis.

Authors:  J Peng; N P Harberd
Journal:  Plant Physiol       Date:  1997-04       Impact factor: 8.340

9.  The Arabidopsis MAX pathway controls shoot branching by regulating auxin transport.

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Journal:  Curr Biol       Date:  2006-03-21       Impact factor: 10.834

10.  AUX/LAX family of auxin influx carriers-an overview.

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Journal:  Front Plant Sci       Date:  2012-10-18       Impact factor: 5.753

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  16 in total

1.  Transcriptome profiles reveal that gibberellin-related genes regulate weeping traits in crape myrtle.

Authors:  Suzhen Li; Tangchun Zheng; Xiaokang Zhuo; Zhuojiao Li; Lulu Li; Ping Li; Like Qiu; Huitang Pan; Jia Wang; Tangren Cheng; Qixiang Zhang
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2.  Insertion of a solo LTR retrotransposon associates with spur mutations in 'Red Delicious' apple (Malus × domestica).

Authors:  Mengxue Han; Qibao Sun; Junyong Zhou; Huarong Qiu; Jing Guo; Lijuan Lu; Wenlei Mu; Jun Sun
Journal:  Plant Cell Rep       Date:  2017-06-02       Impact factor: 4.570

3.  Identification and Validation of SNP Markers Linked to Dwarf Traits Using SLAF-Seq Technology in Lagerstroemia.

Authors:  Yuanjun Ye; Ming Cai; Yiqian Ju; Yao Jiao; Lu Feng; Huitang Pan; Tangren Cheng; Qixiang Zhang
Journal:  PLoS One       Date:  2016-07-12       Impact factor: 3.240

4.  miRNA and Degradome Sequencing Reveal miRNA and Their Target Genes That May Mediate Shoot Growth in Spur Type Mutant "Yanfu 6".

Authors:  Chunhui Song; Dong Zhang; Liwei Zheng; Jie Zhang; Baojuan Zhang; Wenwen Luo; Youmei Li; Guangfang Li; Juanjuan Ma; Mingyu Han
Journal:  Front Plant Sci       Date:  2017-03-30       Impact factor: 5.753

5.  Genome-Wide Discovery of DNA Polymorphisms in Mei (Prunus mume Sieb. et Zucc.), an Ornamental Woody Plant, with Contrasting Tree Architecture and their Functional Relevance for Weeping Trait.

Authors:  Jie Zhang; Kai Zhao; Dan Hou; Junhuo Cai; Qixiang Zhang; Tangren Cheng; Huitang Pan; Weiru Yang
Journal:  Plant Mol Biol Report       Date:  2016-08-08       Impact factor: 1.595

6.  Alteration of TAC1 expression in Prunus species leads to pleiotropic shoot phenotypes.

Authors:  Courtney A Hollender; Jessica M Waite; Amy Tabb; Doug Raines; Srinivasan Chinnithambi; Chris Dardick
Journal:  Hortic Res       Date:  2018-05-01       Impact factor: 6.793

7.  Identification of the PmWEEP locus controlling weeping traits in Prunus mume through an integrated genome-wide association study and quantitative trait locus mapping.

Authors:  Xiaokang Zhuo; Tangchun Zheng; Suzhen Li; Zhiyong Zhang; Man Zhang; Yichi Zhang; Sagheer Ahmad; Lidan Sun; Jia Wang; Tangren Cheng; Qixiang Zhang
Journal:  Hortic Res       Date:  2021-06-01       Impact factor: 6.793

8.  Columnar apple primary roots share some features of the columnar-specific gene expression profile of aerial plant parts as evidenced by RNA-Seq analysis.

Authors:  Romina Petersen; Haris Djozgic; Benjamin Rieger; Steffen Rapp; Erwin Robert Schmidt
Journal:  BMC Plant Biol       Date:  2015-02-04       Impact factor: 4.215

Review 9.  Shaping plant architecture.

Authors:  Thomas Teichmann; Merlin Muhr
Journal:  Front Plant Sci       Date:  2015-04-09       Impact factor: 5.753

10.  Transcriptomic Analysis Using Olive Varieties and Breeding Progenies Identifies Candidate Genes Involved in Plant Architecture.

Authors:  Juan J González-Plaza; Inmaculada Ortiz-Martín; Antonio Muñoz-Mérida; Carmen García-López; José F Sánchez-Sevilla; Francisco Luque; Oswaldo Trelles; Eduardo R Bejarano; Raúl De La Rosa; Victoriano Valpuesta; Carmen R Beuzón
Journal:  Front Plant Sci       Date:  2016-03-02       Impact factor: 5.753

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