Literature DB >> 16850314

QTL analysis of cadmium and zinc accumulation in the heavy metal hyperaccumulator Thlaspi caerulescens.

A X Deniau1, B Pieper, W M Ten Bookum, P Lindhout, M G M Aarts, H Schat.   

Abstract

Thlaspi caerulescens (Tc; 2n = 14) is a natural Zn, Cd and Ni hyperaccumulator species belonging to the Brassicaceae family. It shares 88% DNA identity in the coding regions with Arabidopsis thaliana (At) (Rigola et al. 2006). Although the physiology of heavy metal (hyper)accumulation has been intensively studied, the molecular genetics are still largely unexplored. We address this topic by constructing a genetic map based on AFLP markers and expressed sequence tags (ESTs). To establish a genetic map, an F(2) population of 129 individuals was generated from a cross between a plant from a Pb/Cd/Zn-contaminated site near La Calamine, Belgium, and a plant from a comparable site near Ganges (GA), France. These two accessions show different degrees of Zn and, particularly, Cd accumulation. We analyzed 181 AFLP markers (of which 4 co-dominant) and 13 co-dominant EST sequences-based markers and mapped them to seven linkage groups (LGs), presumably corresponding to the seven chromosomes of T. caerulescens. The total length of the genetic map is 496 cM with an average density of one marker every 2.5 cM. This map was used for Quantitative Trait Locus (QTL) mapping in the F(2). For Zn as well as Cd concentration in root we mapped two QTLs. Three QTLs and one QTL were mapped for Zn and Cd concentration in shoot, respectively. These QTLs explain 23.8-60.4% of the total variance of the traits measured. We found only one common locus (LG6) for Zn and Cd (concentration in root) and one common locus for shoot and root concentrations of Zn (LG1) and of Cd (LG3). For all QTLs, the GA allele increased the trait value except for two QTLs for Zn accumulation in shoot (LG1 and LG4) and one for Zn concentration in root (LG1).

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Year:  2006        PMID: 16850314     DOI: 10.1007/s00122-006-0350-y

Source DB:  PubMed          Journal:  Theor Appl Genet        ISSN: 0040-5752            Impact factor:   5.699


  19 in total

1.  Molecular systematics of the Brassicaceae: evidence from coding plastidic matK and nuclear Chs sequences.

Authors:  M Koch; B Haubold; T Mitchell-Olds
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Review 2.  Naturally occurring variation in Arabidopsis: an underexploited resource for plant genetics.

Authors:  C Alonso-Blanco; M Koornneef
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3.  High density molecular linkage maps of the tomato and potato genomes.

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Journal:  Genetics       Date:  1992-12       Impact factor: 4.562

4.  Zinc tolerance and hyperaccumulation in F1 and F2 offspring from intra and interecotype crosses of Thlaspi caerulescens.

Authors:  H Frérot; C Lefèbvre; C Petit; C Collin; A Dos Santos; J Escarré
Journal:  New Phytol       Date:  2005-01       Impact factor: 10.151

5.  RFLP-based genetic maps of wheat homoeologous group 7 chromosomes.

Authors:  S Chao; P J Sharp; A J Worland; E J Warham; R M Koebner; M D Gale
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6.  AFLP: a new technique for DNA fingerprinting.

Authors:  P Vos; R Hogers; M Bleeker; M Reijans; T van de Lee; M Hornes; A Frijters; J Pot; J Peleman; M Kuiper
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Journal:  Evolution       Date:  1989-01       Impact factor: 3.694

8.  Use of locus-specific AFLP markers to construct a high-density molecular map in barley.

Authors:  X Qi; P Stam; P Lindhout
Journal:  Theor Appl Genet       Date:  1998-03       Impact factor: 5.699

9.  The molecular physiology of heavy metal transport in the Zn/Cd hyperaccumulator Thlaspi caerulescens.

Authors:  N S Pence; P B Larsen; S D Ebbs; D L Letham; M M Lasat; D F Garvin; D Eide; L V Kochian
Journal:  Proc Natl Acad Sci U S A       Date:  2000-04-25       Impact factor: 11.205

10.  Construction of a genetic linkage map of Thlaspi caerulescens and quantitative trait loci analysis of zinc accumulation.

Authors:  Ana G L Assunção; Bjorn Pieper; Jaap Vromans; Pim Lindhout; Mark G M Aarts; Henk Schat
Journal:  New Phytol       Date:  2006       Impact factor: 10.151

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  22 in total

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2.  Enhancement of cadmium tolerance and accumulation by introducing Perilla frutescens (L.) Britt var. frutescens genes in Nicotiana tabacum L. plants.

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3.  Differentiation of metallicolous and non-metallicolous Salix caprea populations based on phenotypic characteristics and nuclear microsatellite (SSR) markers.

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4.  Generation of expressed sequence tags under cadmium stress for gene discovery and development of molecular markers in chickpea.

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5.  Codominant scoring of AFLP in association panels.

Authors:  Gerrit Gort; Fred A van Eeuwijk
Journal:  Theor Appl Genet       Date:  2010-03-17       Impact factor: 5.699

6.  Mapping and validation of simple sequence repeat markers linked to a major gene controlling seed cadmium accumulation in soybean [Glycine max (L.) Merr].

Authors:  Souframanien Jegadeesan; Kangfu Yu; Vaino Poysa; Eugene Gawalko; Malcolm J Morrison; Chun Shi; Elroy Cober
Journal:  Theor Appl Genet       Date:  2010-03-12       Impact factor: 5.699

7.  A major quantitative trait locus for cadmium tolerance in Arabidopsis halleri colocalizes with HMA4, a gene encoding a heavy metal ATPase.

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8.  Histidine promotes the loading of nickel and zinc, but not of cadmium, into the xylem in Noccaea caerulescens.

Authors:  Anna D Kozhevnikova; Ilya V Seregin; Rudo Verweij; Henk Schat
Journal:  Plant Signal Behav       Date:  2014

Review 9.  Investigating heavy-metal hyperaccumulation using Thlaspi caerulescens as a model system.

Authors:  Matthew J Milner; Leon V Kochian
Journal:  Ann Bot       Date:  2008-04-25       Impact factor: 4.357

10.  Proteomics of Thlaspi caerulescens accessions and an inter-accession cross segregating for zinc accumulation.

Authors:  Marjo Tuomainen; Arja Tervahauta; Viivi Hassinen; Henk Schat; Kaisa M Koistinen; Satu Lehesranta; Kimmo Rantalainen; Jukka Häyrinen; Seppo Auriola; Mikko Anttonen; Sirpa Kärenlampi
Journal:  J Exp Bot       Date:  2010-01-04       Impact factor: 6.992

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