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Featured researches published by Xiaodong Ding.


Planta | 2016

GsERF6, an ethylene-responsive factor from Glycine soja, mediates the regulation of plant bicarbonate tolerance in Arabidopsis.

Yang Yu; Ailin Liu; Xiangbo Duan; Sunting Wang; Xiaoli Sun; Huizi Duanmu; Dan Zhu; Chao Chen; Lei Cao; Jialei Xiao; Qiang Li; Zaib_un Nisa; Yanming Zhu; Xiaodong Ding

AbstractMain conclusionThis is an original study focus on ERF gene response to alkaline stress. GsERF6functions as transcription factor and significantly enhanced plant tolerance to bicarbonate (HCO3−) in transgenic Arabidopsis. Alkaline stress is one of the most harmful, but little studied environmental factors, which negatively affects plant growth, development and yield. The cause of alkaline stress is mainly due to the damaging consequence of high concentration of the bicarbonate ion, high-pH, and osmotic shock to plants. The AP2/ERF family genes encode plant-specific transcription factors involved in diverse environmental stresses. However, little is known about their physiological functions, especially in alkaline stress responses. In this study, we functionally characterized a novel ERF subfamily gene, GsERF6 from alkaline-tolerant wild soybean (Glycine soja). In wild soybean, GsERF6 was rapidly induced by NaHCO3 treatment, and its overexpression in Arabidopsis enhanced transgenic plant tolerance to NaHCO3 challenge. Interestingly, GsERF6 transgenic lines also displayed increased tolerance to KHCO3 treatment, but not to high pH stress, implicating that GsERF6 may participate specifically in bicarbonate stress responses. We also found that GsERF6 overexpression up-regulated the transcription levels of bicarbonate-stress-inducible genes such as NADP-ME, H+-Ppase and H+-ATPase, as well as downstream stress-tolerant genes such as RD29A, COR47 and KINI. GsERF6 overexpression and NaHCO3 stress also altered the expression patterns of plant hormone synthesis and hormone-responsive genes. Conjointly, our results suggested that GsERF6 is a positive regulator of plant alkaline stress by increasing bicarbonate ionic resistance specifically, providing a new insight into the regulation of gene expression under alkaline conditions.


Scientific Reports | 2017

GsCHX19 .3, a member of cation/H + exchanger superfamily from wild soybean contributes to high salinity and carbonate alkaline tolerance

Bowei Jia; Mingzhe Sun; Huizi Duanmu; Xiaodong Ding; Beidong Liu; Yanming Zhu; Xiaoli Sun

Cation/H+ exchangers (CHX) are characterized to be involved in plant growth, development and stress responses. Although soybean genome sequencing has been completed, the CHX family hasn’t yet been systematically analyzed, especially in wild soybean. Here, through Hidden Markov Model search against Glycine soja proteome, 34 GsCHXs were identified and phylogenetically clustered into five groups. Members within each group showed high conservation in motif architecture. Interestingly, according to our previous RNA-seq data, only Group IVa members exhibited highly induced expression under carbonate alkaline stress. Among them, GsCHX19.3 displayed the greatest up-regulation in response to carbonate alkaline stress, which was further confirmed by quantitative real-time PCR analysis. We also observed the ubiquitous expression of GsCHX19.3 in different tissues and its localization on plasma membrane. Moreover, we found that GsCHX19.3 expression in AXT4K, a yeast mutant lacking four ion transporters conferred resistance to low K+ at alkali pH, as well as carbonate stress. Consistently, in Arabidopsis, GsCHX19.3 overexpression increased plant tolerance both to high salt and carbonate alkaline stresses. Furthermore, we also confirmed that GsCHX19.3 transgenic lines showed lower Na+ concentration but higher K+/Na+ values under salt-alkaline stress. Taken together, our findings indicated that GsCHX19.3 contributed to high salinity and carbonate alkaline tolerance.


Plant Molecular Biology | 2017

A novel AP2/ERF family transcription factor from Glycine soja, GsERF71, is a DNA binding protein that positively regulates alkaline stress tolerance in Arabidopsis

Yang Yu; Xiangbo Duan; Xiaodong Ding; Chao Chen; Dan Zhu; Kuide Yin; Lei Cao; Xuewei Song; Pinghui Zhu; Qiang Li; Zaib_un Nisa; Jiyang Yu; Jianying Du; Yu Song; Huiqing Li; Beidong Liu; Yanming Zhu

AbstractKey messageHere we first found that GsERF71, an ERF factor from wild soybean could increase plant alkaline stress tolerance by up-regulating H+-ATPase and by modifing the accumulation of Auxin.AbstractAlkaline soils are widely distributed all over the world and greatly limit plant growth and development. In our previous transcriptome analyses, we have identified several ERF (ethylene-responsive factor) genes that responded strongly to bicarbonate stress in the roots of wild soybean G07256 (Glycine soja). In this study, we cloned and functionally characterized one of the genes, GsERF71. When expressed in epidermal cells of onion, GsERF71 localized to the nucleus. It can activate the reporters in yeast cells, and the C-terminus of 170 amino acids is essential for its transactivation activity. Yeast one-hybrid and EMSA assays indicated that GsERF71 specifically binds to the cis-acting elements of the GCC-box, suggesting that GsERF71 may participate in the regulation of transcription of the relevant biotic and abiotic stress-related genes. Furthermore, transgenic Arabidopsis plants overexpressing GsERF71 showed significantly higher tolerance to bicarbonate stress generated by NaHCO3 or KHCO3 than the wild type (WT) plants, i.e., the transgenic plants had greener leaves, longer roots, higher total chlorophyll contents and lower MDA contents. qRT-PCR and rhizosphere acidification assays indicated that the expression level and activity of H+-ATPase (AHA2) were enhanced in the transgenic plants under alkaline stress. Further analysis indicated that the expression of auxin biosynthetic genes and IAA contents were altered to a lower extent in the roots of transgenic plants than WT plants under alkaline stress in a short-term. Together, our data suggest that GsERF71 enhances the tolerance to alkaline stress by up-regulating the expression levels of H+-ATPase and by modifying auxin accumulation in transgenic plants.


Protoplasma | 2018

Genome-wide analysis and expression profiling of PP2C clade D under saline and alkali stresses in wild soybean and Arabidopsis

Chao Chen; Yang Yu; Xiaodong Ding; Beidong Liu; Huizi Duanmu; Dan Zhu; Xiaoli Sun; Lei Cao; Zaib-un-Nisa; Qiang Li; Yanming Zhu

Protein phosphatase 2Cs (PP2Cs) belong to the largest protein phosphatase family in plants. Some members have been described as being negative modulators of plant growth and development, as well as responses to hormones and environmental stimuli. However, little is known about the members of PP2C clade D, which may be involved in the regulation of signaling pathways, especially in response to saline and alkali stresses. Here, we identified 13 PP2C orthologs from the wild soybean (Glycine soja) genome. We examined the sequence characteristics, chromosome locations and duplications, gene structures, and promoter cis-elements of the PP2C clade D genes in Arabidopsis and wild soybean. Our results showed that GsPP2C clade D (GsAPD) genes exhibit more gene duplications than AtPP2C clade D genes. Plant hormone and abiotic stress-responsive elements were identified in the promoter regions of most PP2C genes. Moreover, we investigated their expression patterns in roots, stems, and leaves. Quantitative real-time PCR analyses revealed that the expression levels of representative GsPP2C and AtPP2C clade D genes were significantly influenced by alkali and salt stresses, suggesting that these genes might be associated with or directly involved in the relevant stress signaling pathways. Our results established a foundation for further functional characterization of PP2C clade D genes in the future.


Physiologia Plantarum | 2018

GsSLAH3, a Glycine soja slow type anion channel homolog, positively modulates plant bicarbonate stress tolerance

Xiangbo Duan; Yang Yu; Huizi Duanmu; Chao Chen; Xiaoli Sun; Lei Cao; Qiang Li; Xiaodong Ding; Beidong Liu; Yanming Zhu

Alkaline stress is a major form of abiotic stress that severely inhibits plant growth and development, thus restricting crop productivity. However, little is known about how plants respond to alkali. In this study, a slow-type anion channel homolog 3 gene, GsSLAH3, was isolated and functionally characterized. Bioinformatics analysis showed that the GsSLAH3 protein contains 10 transmembrane helices. Consistently, GsSLAH3 was found to locate on plasma membrane by transient expression in onion epidermal cells. In wild soybeans, GsSLAH3 expression was induced by NaHCO3 treatment, suggesting its involvement in plant response to alkaline stress. Ectopic expression of GsSLAH3 in yeast increased sensitivity to alkali treatment. Dramatically, overexpression of GsSLAH3 in Arabidopsis thaliana enhanced alkaline tolerance during the germination, seedling and adult stages. More interestingly, we found that transgenic lines also improved plant tolerance to KHCO3 rather than high pH treatment. A nitrate content analysis of Arabidopsis shoots showed that GsSLAH3 overexpressing lines accumulated more NO3- than wild-type. In summary, our data suggest that GsSLAH3 is a positive alkali responsive gene that increases bicarbonate resistance specifically.


Plant Cell and Environment | 2018

Identification of novel interactors and potential phosphorylation substrates of GsSnRK1 from wild soybean (Glycine soja): The interactors and substrates of GsSnRK1

Yu Song; Hang Zhang; Hongguang You; Yuanming Liu; Chao Chen; Xu Feng; Xingyu Yu; Shengyang Wu; Libo Wang; Shihua Zhong; Qiang Li; Yanming Zhu; Xiaodong Ding

The plant sucrose nonfermenting kinase 1 (SnRK1) kinases play the central roles in the processes of energy balance, hormone perception, stress resistance, metabolism, growth, and development. However, the functions of these kinases are still elusive. In this study, we used GsSnRK1 of wild soybean as bait to perform library-scale screens by the means of yeast two-hybrid to identify its interacting proteins. The putative interactions were verified by yeast retransformation and β-galactosidase assays, and the selected interactions were further confirmed in planta by bimolecular fluorescence complementation and biochemical Co-IP assays. Protein phosphorylation analyses were carried out by phos-tag assay and anti-phospho-(Ser/Thr) substrate antibodies. Finally, we obtained 24 GsSnRK1 interactors and several putative substrates that can be categorized into SnRK1 regulatory β subunit, protein modification, biotic and abiotic stress-related, hormone perception and signalling, gene expression regulation, water and nitrogen transport, metabolism, and unknown proteins. Intriguingly, we first discovered that GsSnRK1 interacted with and phosphorylated the components of soybean nodulation and symbiotic nitrogen fixation. The interactions and potential functions of GsSnRK1 and its associated proteins were extensively discussed and analysed. This work provides plausible clues to elucidate the novel functions of SnRK1 in response to variable environmental, metabolic, and physiological requirements.


Archive | 2016

Additional file 2: Figure S3. of A novel Glycine soja homeodomain-leucine zipper (HD-Zip) I gene, Gshdz4, positively regulates bicarbonate tolerance and responds to osmotic stress in Arabidopsis

Lei Cao; Yang Yu; Huizi Duanmu; Chao Chen; Xiangbo Duan; Pinghui Zhu; Ranran Chen; Qiang Li; Yanming Zhu; Xiaodong Ding

No difference in growth between the overexpression lines and WT plants in the normal condition. (TIF 3134 kb)


BMC Plant Biology | 2016

A novel Glycine soja homeodomain-leucine zipper (HD-Zip) I gene, Gshdz4 , positively regulates bicarbonate tolerance and responds to osmotic stress in Arabidopsis

Lei Cao; Yang Yu; Huizi Duanmu; Chao Chen; Xiangbo Duan; Pinghui Zhu; Ranran Chen; Qiang Li; Yanming Zhu; Xiaodong Ding


Plant Molecular Biology | 2017

The Glycine soja NAC transcription factor GsNAC019 mediates the regulation of plant alkaline tolerance and ABA sensitivity

Lei Cao; Yang Yu; Xiaodong Ding; Dan Zhu; Fan Yang; Beidong Liu; Xiaoli Sun; Xiangbo Duan; Kuide Yin; Yanming Zhu


Plant Cell Tissue and Organ Culture | 2017

GsJ11, identified by genome-wide analysis, facilitates alkaline tolerance in transgenic plants

Xuewei Song; Huizi Duanmu; Yang Yu; Chao Chen; Xiaoli Sun; Pinghui Zhu; Ranran Chen; Xiangbo Duan; Huiqing Li; Lei Cao; Zaib_un Nisa; Qiang Li; Yanming Zhu; Xiaodong Ding

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Yanming Zhu

Northeast Agricultural University

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Chao Chen

Northeast Agricultural University

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Lei Cao

Northeast Agricultural University

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Qiang Li

Northeast Agricultural University

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Yang Yu

Northeast Agricultural University

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Huizi Duanmu

Northeast Agricultural University

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Xiangbo Duan

Northeast Agricultural University

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Xiaoli Sun

Northeast Agricultural University

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Beidong Liu

University of Gothenburg

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Dan Zhu

Qingdao Agricultural University

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