Molecular characterization of TaSTOP1 homoeologues and their response to aluminium and proton (H+) toxicity in bread wheat (Triticum aestivum L.)

被引:52
作者
Garcia-Oliveira, Ana Luisa [1 ,2 ]
Benito, Cesar [2 ]
Prieto, Pilar [3 ]
Menezes, Regina de Andrade [4 ]
Rodrigues-Pousada, Claudina [4 ]
Guedes-Pinto, Henrique [1 ]
Martins-Lopes, Paula [1 ]
机构
[1] UTAD, CGB, IBB, P-5001801 Vila Real, Portugal
[2] Univ Complutense Madrid, Fac Biol, Dept Genet, E-28040 Madrid, Spain
[3] CSIC, IAS, Dept Mejora Genet Vegetal, Cordoba 14080, Spain
[4] Univ Nova Lisboa, Inst Tecnol Quim & Biol, Oeiras, Portugal
关键词
Aluminium; TaSTOP1; Triticum aestivum L; In situ hybridization; Transcription factor; Transactivation; Homoeologue; pH; REGULATES MULTIPLE GENES; QUANTITATIVE TRAIT LOCI; TRANSCRIPTION FACTORS; ABC TRANSPORTER; SACCHAROMYCES-CEREVISIAE; ACTIVATED CITRATE; LOW-TEMPERATURE; COMMON WHEAT; ROOT-GROWTH; TOLERANCE;
D O I
10.1186/1471-2229-13-134
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Background: Aluminium (Al) toxicity is considered to be one of the major constraints affecting crop productivity on acid soils. Being a trait governed by multiple genes, the identification and characterization of novel transcription factors (TFs) regulating the expression of entire response networks is a very promising approach. Therefore, the aim of the present study was to clone, localize, and characterize the TaSTOP1 gene, which belongs to the zinc finger family (Cys2His2 type) transcription factor, at molecular level in bread wheat. Results: TaSTOP1 loci were cloned and localized on the long arm of homoeologous group 3 chromosomes [3AL (TaSTOP1-A), 3BL (TaSTOP1-B) and 3DL (TaSTOP1-D)] in bread wheat. TaSTOP1 showed four potential zinc finger domains and the homoeologue TaSTOP1-A exhibited transactivation activity in yeast. Expression profiling of TaSTOP1 transcripts identified the predominance of homoeologue TaSTOP1-A followed by TaSTOP1-D over TaSTOP1-B in root and only predominance of TaSTOP1-A in shoot tissues of two diverse bread wheat genotypes. Al and proton (H+) stress appeared to slightly modulate the transcript of TaSTOP1 homoeologues expression in both genotypes of bread wheat. Conclusions: Physical localization of TaSTOP1 results indicated the presence of a single copy of TaSTOP1 on homoeologous group 3 chromosomes in bread wheat. The three homoeologues of TaSTOP1 have similar genomic structures, but showed biased transcript expression and different response to Al and proton (H+) toxicity. These results indicate that TaSTOP1 homoeologues may differentially contribute under Al or proton (H+) toxicity in bread wheat. Moreover, it seems that TaSTOP1-A transactivation potential is constitutive and may not depend on the presence/absence of Al at least in yeast. Finally, the localization of TaSTOP1 on long arm of homoeologous group 3 chromosomes and the previously reported major loci associated with Al resistance at chromosome 3BL, through QTL and genome wide association mapping studies suggests that TaSTOP1 could be a potential candidate gene for genomic assisted breeding for Al tolerance in bread wheat.
引用
收藏
页数:13
相关论文
共 66 条
[1]   CHROMOSOME LOCATION OF GENES-CONTROLLING ALUMINUM TOLERANCE IN WHEAT, RYE, AND TRITICALE [J].
ANIOL, A ;
GUSTAFSON, JP .
CANADIAN JOURNAL OF GENETICS AND CYTOLOGY, 1984, 26 (06) :701-705
[2]   The S-cerevisiae Yap1 and Yap2 transcription factors share a common cadmium-sensing domain [J].
Azevedo, Dulce ;
Nascimento, Liliana ;
Labarre, Jean ;
Toledano, Michel B. ;
Rodrigues-Pousada, Claudina .
FEBS LETTERS, 2007, 581 (02) :187-195
[3]   Fast root growth responses, root exudates, and internal detoxification as clues to the mechanisms of aluminium toxicity and resistance: a review [J].
Barcelo, J ;
Poschenrieder, C .
ENVIRONMENTAL AND EXPERIMENTAL BOTANY, 2002, 48 (01) :75-92
[4]   Homoeologous gene silencing in hexaploid wheat [J].
Bottley, A. ;
Xia, G. M. ;
Koebner, R. M. D. .
PLANT JOURNAL, 2006, 47 (06) :897-906
[5]   In-situ comparative mapping (ISCM) of Glu-1 loci in Triticum and Hordeum [J].
Cabrera, A ;
Martín, A ;
Barro, F .
CHROMOSOME RESEARCH, 2002, 10 (01) :49-54
[6]   Quantitative trait loci for aluminum resistance in Chinese wheat landrace FSW [J].
Cai, Shibin ;
Bai, Gui-Hua ;
Zhang, Dadong .
THEORETICAL AND APPLIED GENETICS, 2008, 117 (01) :49-56
[7]   Regulating the regulators: The future prospects for transcription-factor-based agricultural biotechnology products [J].
Century, Karen ;
Reuber, T. Lynne ;
Ratcliffe, Oliver J. .
PLANT PHYSIOLOGY, 2008, 147 (01) :20-29
[8]   Transcriptional and physiological changes of alfalfa in response to aluminium stress [J].
Chen, Q. ;
Zhang, X. D. ;
Wang, S. S. ;
Wang, Q. F. ;
Wang, G. Q. ;
Nian, H. J. ;
Li, K. Z. ;
Yu, Y. X. ;
Chen, L. M. .
JOURNAL OF AGRICULTURAL SCIENCE, 2011, 149 :737-751
[9]   The characterisation and mapping of a family of LMW-gliadin genes: effects on dough properties and bread volume [J].
Clarke, BC ;
Phongkham, T ;
Gianibelli, MC ;
Beasley, H ;
Bekes, F .
THEORETICAL AND APPLIED GENETICS, 2003, 106 (04) :629-635
[10]   An ALMT1 gene cluster controlling aluminum tolerance at the Alt4 locus of rye (Secale cereale L.) [J].
Collins, N. C. ;
Shirley, N. J. ;
Saeed, M. ;
Pallotta, M. ;
Gustafson, J. P. .
GENETICS, 2008, 179 (01) :669-682