• Something wrong with this record ?

Opposite response of maize ZmCCT to photoperiod due to transposon jumping

S. Zhong, H. Liu, Y. Li, Z. Lin

. 2021 ; 134 (9) : 2841-2855. [pub] 20210520

Language English Country Germany

Document type Journal Article

Grant support
2016YFD0100303 National Key Research and Development Program of China

E-resources Online Full text

NLK ProQuest Central from 1997-01-01 to 1 year ago
Medline Complete (EBSCOhost) from 2000-01-01 to 1 year ago
Health & Medicine (ProQuest) from 1997-01-01 to 1 year ago

KEY MESSAGE: The new 4.2-kb transposable insertion in the intron of ZmCCT reversely responded relative to the known 5.1-kb transposable insertion to photoperiods between low- and high-latitude regions. Flowering time is a key trait for cereal adaptation that is controlled by a complex genetic background in maize. The effect of multiple alleles from a quantitative trait locus (QTL) on flowering time remains largely unknown. Here, we fine-mapped a major QTL for flowering time on maize chromosome 10 corresponding to ZmCCT, where a new allele with a 4.2-kilobase (kb) transposable insertion was present in the intron. The known allele with a 5.1-kb transposon insertion in the promoter of ZmCCT enhances flowering in high-latitude regions, but has no effect on flowering time in low-latitude regions in comparison with the null allele lacking this insertion. However, our new allele with a 4.2-kb insertion reduced flowering in the low-latitude region, but produced unchanged flowering time in the high-latitude region relative to the 5.1-kb transposable insertion. Transcription analysis revealed that the new allele with 4.2-kb insertion versus the 5.1-kb insertion repressed and unchanged the transcription of ZmCCT in the low- and high-latitude regions, respectively. Thus, the allele with the 4.2-kb transposable insertion showed a completely opposite response to photoperiods between these two regions. Phylogenetic analysis revealed that the 4.2-kb transposable insertion in the two Northern flint corns originated from tropical maize. RNA-seq analysis and dual-luciferase transient expression assays further identified a conserved gene regulation network of ZmCCT between maize and rice, in which ZmCCT directly repressed the transcription of the florigen gene ZCN8 via ZmEhd1. Our results suggest that transposable elements play an important role in maize adaptation.

References provided by Crossref.org

000      
00000naa a2200000 a 4500
001      
bmc22003865
003      
CZ-PrNML
005      
20220127145801.0
007      
ta
008      
220113s2021 gw f 000 0|eng||
009      
AR
024    7_
$a 10.1007/s00122-021-03862-7 $2 doi
035    __
$a (PubMed)34018020
040    __
$a ABA008 $b cze $d ABA008 $e AACR2
041    0_
$a eng
044    __
$a gw
100    1_
$a Zhong, Shuyang $u National Maize Improvement Center, Center for Crop Functional Genomics and Molecular Breeding, Joint Laboratory for International Cooperation in Crop Molecular Breeding, Ministry of Education, Beijing Key Laboratory of Crop Genetic Improvement, Laboratory of Crop Heterosis and Utilization, China Agricultural University, Beijing, 100193, China
245    10
$a Opposite response of maize ZmCCT to photoperiod due to transposon jumping / $c S. Zhong, H. Liu, Y. Li, Z. Lin
520    9_
$a KEY MESSAGE: The new 4.2-kb transposable insertion in the intron of ZmCCT reversely responded relative to the known 5.1-kb transposable insertion to photoperiods between low- and high-latitude regions. Flowering time is a key trait for cereal adaptation that is controlled by a complex genetic background in maize. The effect of multiple alleles from a quantitative trait locus (QTL) on flowering time remains largely unknown. Here, we fine-mapped a major QTL for flowering time on maize chromosome 10 corresponding to ZmCCT, where a new allele with a 4.2-kilobase (kb) transposable insertion was present in the intron. The known allele with a 5.1-kb transposon insertion in the promoter of ZmCCT enhances flowering in high-latitude regions, but has no effect on flowering time in low-latitude regions in comparison with the null allele lacking this insertion. However, our new allele with a 4.2-kb insertion reduced flowering in the low-latitude region, but produced unchanged flowering time in the high-latitude region relative to the 5.1-kb transposable insertion. Transcription analysis revealed that the new allele with 4.2-kb insertion versus the 5.1-kb insertion repressed and unchanged the transcription of ZmCCT in the low- and high-latitude regions, respectively. Thus, the allele with the 4.2-kb transposable insertion showed a completely opposite response to photoperiods between these two regions. Phylogenetic analysis revealed that the 4.2-kb transposable insertion in the two Northern flint corns originated from tropical maize. RNA-seq analysis and dual-luciferase transient expression assays further identified a conserved gene regulation network of ZmCCT between maize and rice, in which ZmCCT directly repressed the transcription of the florigen gene ZCN8 via ZmEhd1. Our results suggest that transposable elements play an important role in maize adaptation.
650    _2
$a fyziologická adaptace $7 D000222
650    _2
$a mapování chromozomů $x metody $7 D002874
650    _2
$a chromozomy rostlin $x genetika $7 D032461
650    12
$a transpozibilní elementy DNA $7 D004251
650    _2
$a květy $x genetika $x růst a vývoj $x účinky záření $7 D035264
650    12
$a regulace genové exprese u rostlin $7 D018506
650    _2
$a fenotyp $7 D010641
650    12
$a fotoperioda $7 D017440
650    _2
$a rostlinné proteiny $x genetika $x metabolismus $7 D010940
650    _2
$a promotorové oblasti (genetika) $7 D011401
650    _2
$a lokus kvantitativního znaku $7 D040641
650    _2
$a kukuřice setá $x genetika $x růst a vývoj $x účinky záření $7 D003313
655    _2
$a časopisecké články $7 D016428
700    1_
$a Liu, Hangqin $u National Maize Improvement Center, Center for Crop Functional Genomics and Molecular Breeding, Joint Laboratory for International Cooperation in Crop Molecular Breeding, Ministry of Education, Beijing Key Laboratory of Crop Genetic Improvement, Laboratory of Crop Heterosis and Utilization, China Agricultural University, Beijing, 100193, China
700    1_
$a Li, Yan $u National Maize Improvement Center, Center for Crop Functional Genomics and Molecular Breeding, Joint Laboratory for International Cooperation in Crop Molecular Breeding, Ministry of Education, Beijing Key Laboratory of Crop Genetic Improvement, Laboratory of Crop Heterosis and Utilization, China Agricultural University, Beijing, 100193, China
700    1_
$a Lin, Zhongwei $u National Maize Improvement Center, Center for Crop Functional Genomics and Molecular Breeding, Joint Laboratory for International Cooperation in Crop Molecular Breeding, Ministry of Education, Beijing Key Laboratory of Crop Genetic Improvement, Laboratory of Crop Heterosis and Utilization, China Agricultural University, Beijing, 100193, China. zlin@cau.edu.cn
773    0_
$w MED00004497 $t TAG. Theoretical and applied genetics. Theoretische und angewandte Genetik $x 1432-2242 $g Roč. 134, č. 9 (2021), s. 2841-2855
856    41
$u https://pubmed.ncbi.nlm.nih.gov/34018020 $y Pubmed
910    __
$a ABA008 $b sig $c sign $y p $z 0
990    __
$a 20220113 $b ABA008
991    __
$a 20220127145757 $b ABA008
999    __
$a ok $b bmc $g 1751357 $s 1155014
BAS    __
$a 3
BAS    __
$a PreBMC
BMC    __
$a 2021 $b 134 $c 9 $d 2841-2855 $e 20210520 $i 1432-2242 $m Theoretical and Applied Genetics $n Theor Appl Genet $x MED00004497
GRA    __
$a 2016YFD0100303 $p National Key Research and Development Program of China
LZP    __
$a Pubmed-20220113

Find record

Citation metrics

Loading data ...

Archiving options

Loading data ...