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中国生物工程杂志

China Biotechnology
China Biotechnology  2013, Vol. 33 Issue (9): 31-37    DOI:
    
Subcellular Localization and Functional Studying of SCBP60g in Arabidopsis
WAN Yong-qing1, LI Rui-li1,2, ZOU Bo1, WAN Dong-li1,3, WANG Rui-gang1, LI Guo-jing 1
1. College of Life Sciences, Inner Mongolia Agricultural University, Hohhot 010018 China;
2. Ulanqab Centers for Diseases Controland Prevention, Ulanqab 012000, China;
3. Grassland Research Institute, Chinese Academy of Agricultural Sciences, Hohhot 010010, China
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Abstract  The GFP fused SCBP60g constructs and SCBP60g complementation constructs were made by Gateway cloning technology, and the transgenic plants were obtained. Subcellular localization SCBP60g was observed by confocal laser-scanning microscope, and the function of plant defense against pathogens was examined by in planta bacterial growth assay. In addition, SCBP60g overexpression vector was constructed and the sensitivity to ABA of the transgenic plants was also examined. The results showed:SCBP60g protein localized in the nuclei; SCBP60g failed to restore the sensitivity of cbp60g-1 mutant to Pseudomonas syringae; overexpression of SCBP60g did not affect the response of Arabidopsis to ABA. These results indicated that SCBP60g was not involved in Arabidopsis thaliana response to pathogens and ABA.

Key wordsArabidopsis thaliana      Calmodulin binding protein      Subcellular localization      Diseace resistance      ABA     
Received: 25 June 2013      Published: 25 September 2013
ZTFLH:  Q291  
Cite this article:

WAN Yong-qing, LI Rui-li, ZOU Bo, WAN Dong-li, WANG Rui-gang, LI Guo-jing. Subcellular Localization and Functional Studying of SCBP60g in Arabidopsis. China Biotechnology, 2013, 33(9): 31-37.

URL:

https://manu60.magtech.com.cn/biotech/     OR     https://manu60.magtech.com.cn/biotech/Y2013/V33/I9/31

[1] Yang T, Poovaiah B W. Calcium/calmodulin-mediated signal network in plants. Trends Plant Sci, 2003, 8(10):505-512.
[2] Hetherington A M, Brownlee C. The generation of Ca2+ signals in plants. Annual Review of Plant Biology, 2004, 55:401-427.
[3] Luan S, Kudla J, Rodriguez-Concepcion M, et al. Calmodulins and calcineurin B-like proteins: calcium sensors for specific signal response coupling in plants. Plant Cell, 2002, 14 Suppl:S389-400.
[4] Popescu S C, Popescu G V, Bachan S, et al. Differential binding of calmodulin-related proteins to their targets revealed through high-density Arabidopsis protein microarrays. Proc Natl Acad Sci U S A, 2007, 104(11):4730-4735.
[5] Snedden W A, Fromm H. Calmodulin as a versatile calcium signal transducer in plants. New Phytologist, 2001, 151:35-66.
[6] Reddy V S, Ali G S, Reddy A S. Genes encoding calmodulin-binding proteins in the Arabidopsis genome. J Biol Chem, 2002, 277(12):9840-9852.
[7] Bouche N, Yellin A, Snedden W A, et al. Plant-specific calmodulin-binding proteins. Annu Rev Plant Biol, 2005, 56(1):435-466.
[8] Wang L, Tsuda K, Truman W, et al. CBP60g and SARD1 play partially redundant, critical roles in salicylic acid signaling. Plant J, 2011, 67(6):1029-1041.
[9] Zhang Y, Xu S, Ding P, et al. Control of salicylic acid synthesis and systemic acquired resistance by two members of a plant-specific family of transcription factors. Proc Natl Acad Sci U S A, 2010, 107(42):18220-18225.
[10] Wang L, Tsuda K, Sato M, et al. Arabidopsis CaM binding protein CBP60g contributes to MAMP-induced SA accumulation and is involved in disease resistance against Pseudomonas syringae. PLoS Pathog, 2009, 5(2):e1000301.
[11] Truman W, Glazebrook J. Co-expression analysis identifies putative targets for CBP60g and SARD1 regulation. BMC Plant Biol, 2012, 12:216.
[12] Wan D L, Li R L, Zou B, et al. Calmodulin-binding protein CBP60g is a positive regulator of both disease resistance and drought tolerance in Arabidopsis. Plant Cell Rep, 2012, 31(7):1269-1281.
[13] 万东莉, 李瑞丽, 邹博,等. 拟南芥钙调素结合蛋白基因启动子的克隆及表达. 西北植物学报, 2012, 32(1):17-22. Wan D L, Li R L, Zou B, et al. Cloning and expression pattern analysis of a promoter of calmodulin binding protein gene in Arabidopsis. Acta Botanica Boreali-Occidentalia Sinica, 2012, 32(1):17-22.
[14] 万东莉. CBP60g正调控拟南芥对丁香假单胞菌、脱落酸和干旱的响应. 内蒙古农业大学, 2012. Wan D L. CBP60g Positively Regulates the Responses of Arabidopsis thaliana to Pseudomonas syringae, Abscisic Acid and Drought. Inner Mongolia Agricultural University. 2012.
[15] Ge X, Li G J, Wang S B, et al. AtNUDT7, a negative regulator of basal immunity in Arabidopsis, modulates two distinct defense response pathways and is involved in maintaining redox homeostasis. Plant Physiol, 2007, 145(1):204-215.
[16] Clough S J, Bent A F. Floral dip: a simplified method for Agrobacterium-mediated transformation of Arabidopsis thaliana. Plant J, 1998, 16(6):735-743.
[17] Curtis M D, Grossniklaus U. A gateway cloning vector set for high-throughput functional analysis of genes in planta. Plant Physiol, 2003, 133(2):462-469.
[18] 李瑞丽. 拟南芥SCBP60g蛋白的表达模式及其功能研究. 内蒙古农业大学, 2012. Li R L. Expression Pattern and Function Analysis of Arabidopsis SCBP60g. Inner Mongolia Agricultural University. 2012.
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