Comparative transcriptome analysis revealed key factors for differential cadmium transport and retention in roots of two contrasting peanut cultivars

被引:35
作者
Yu, Rugang [1 ]
Ma, Yuanyuan [1 ]
Li, Yue [1 ]
Li, Xin [1 ]
Liu, Caifeng [1 ]
Du, Xueling [1 ]
Shi, Gangrong [1 ]
机构
[1] Huaibei Normal Univ, Coll Life Sci, Huaibei 235000, Anhui, Peoples R China
关键词
Peanut; Root; Cadmium; Transcriptome; Gene expression; TO-SHOOT TRANSLOCATION; CELL-WALL; METAL-TOLERANCE; ABC TRANSPORTER; CD ACCUMULATION; IRON-DEFICIENCY; PLANT; EXPRESSION; ZN; OVEREXPRESSION;
D O I
10.1186/s12864-018-5304-7
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
BackgroundPeanut is the world's fourth largest oilseed crop that exhibits wide cultivar variations in cadmium (Cd) accumulation. To establish the mechanisms of Cd distribution and accumulation in peanut plants, eight cDNA libraries from the roots of two contrasting cultivars, Fenghua 1 (low-Cd cultivar) and Silihong (high-Cd cultivar), were constructed and sequenced by RNA-sequencing. The expression patterns of 16 candidate DEGs were validated by RT-qPCR analysis.ResultsA total of 75,634 genes including 71,349 known genes and 4484 novel genes were identified in eight cDNA libraries, among which 6798 genes were found to be Cd-responsive DEGs and/or DEGs between these two cultivars. Interestingly, 183 DEGs encoding ion transport related proteins and 260 DEGs encoding cell wall related proteins were identified. Among these DEGs, nine metal transporter genes (PDR1, ABCC4 and ABCC15, IRT1, ZIP1, ZIP11, YSL7, DTX43 and MTP4) and nine cell wall related genes (PEs, PGIPs, GTs, XYT12 CYP450s, LACs, 4CL2, C4H and CASP5) showed higher expression in Fenghua 1 than in Silihong.ConclusionsBoth the metal transporters and cell wall modification might be responsible for the difference in Cd accumulation and translocation between Fenghua 1 and Silihong. These findings would be useful for further functional analysis, and reveal the molecular mechanism responsible for genotype difference in Cd accumulation.
引用
收藏
页数:16
相关论文
共 56 条
[31]   Cultivar variation in morphological response of peanut roots to cadmium stress and its relation to cadmium accumulation [J].
Lu, Ziwei ;
Zhang, Zheng ;
Su, Ying ;
Liu, Caifeng ;
Shi, Gangrong .
ECOTOXICOLOGY AND ENVIRONMENTAL SAFETY, 2013, 91 :147-155
[32]   Endodermal cell-cell contact is required for the spatial control of Casparian band development in Arabidopsis thaliana [J].
Martinka, Michal ;
Dolan, Liam ;
Pernas, Monica ;
Abe, Jun ;
Lux, Alexander .
ANNALS OF BOTANY, 2012, 110 (02) :361-371
[33]   Uptake and partitioning of cadmium by cultivars of peanut (Arachis hypogaea L.) [J].
McLaughlin, MJ ;
Bell, MJ ;
Wright, GC ;
Cozens, GD .
PLANT AND SOIL, 2000, 222 (1-2) :51-58
[34]   RETRACTED: Cucumber PDR8/ABCG36 and PDR12/ABCG40 plasma membrane proteins and their up-regulation under abiotic stresses (Retracted article. See vol. 65, pg. 359, 2021) [J].
Migocka, M. ;
Papierniak, A. ;
Rajsz, A. .
BIOLOGIA PLANTARUM, 2017, 61 (01) :115-126
[35]   RETRACTED: Cucumber metal tolerance protein CsMTP9 is a plasma membrane H+-coupled antiporter involved in the Mn2+ and Cd2+ efflux from root cells (Retracted article. See vol. 103, pg. 1256, 2020) [J].
Migocka, Magdalena ;
Papierniak, Anna ;
Kosieradzka, Anna ;
Posyniak, Ewelina ;
Maciaszczyk-Dziubinska, Ewa ;
Biskup, Robert ;
Garbiec, Arnold ;
Marchewka, Tadeusz .
PLANT JOURNAL, 2015, 84 (06) :1045-1058
[36]   RETRACTED: Two metal-tolerance proteins, MTP1 and MTP4, are involved in Zn homeostasis and Cd sequestration in cucumber cells (Retracted Article) [J].
Migocka, Magdalena ;
Kosieradzka, Anna ;
Papierniak, Anna ;
Maciaszczyk-Dziubinska, Ewa ;
Posyniak, Ewelina ;
Garbiec, Arnold ;
Filleur, Sophie .
JOURNAL OF EXPERIMENTAL BOTANY, 2015, 66 (03) :1001-1015
[37]   Transport properties of members of the ZIP family in plants and their role in Zn and Mn homeostasis [J].
Milner, Matthew J. ;
Seamon, Jesse ;
Craft, Eric ;
Kochian, Leon V. .
JOURNAL OF EXPERIMENTAL BOTANY, 2013, 64 (01) :369-381
[38]   Cadmium retention in rice roots is influenced by cadmium availability, chelation and translocation [J].
Nocito, Fabio Francesco ;
Lancilli, Clarissa ;
Dendena, Bianca ;
Lucchini, Giorgio ;
Sacchi, Gian Attilio .
PLANT CELL AND ENVIRONMENT, 2011, 34 (06) :994-1008
[39]  
Popelka JC, 1996, J APPL BOT-ANGEW BOT, V70, P140
[40]   Nramp5 Is a Major Transporter Responsible for Manganese and Cadmium Uptake in Rice [J].
Sasaki, Akimasa ;
Yamaji, Naoki ;
Yokosho, Kengo ;
Ma, Jian Feng .
PLANT CELL, 2012, 24 (05) :2155-2167