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Genetics

D-Index
65
Citations
15243
World Ranking
2701
National Ranking
72

Overview

Shiping Wang was affiliated with Huazhong Agricultural University in China. Their research focused primarily on the fields of Agricultural and Biological Sciences as well as Biochemistry, Genetics and Molecular Biology. The work spanned several key subfields, including Plant Science, Molecular Biology, Artificial Intelligence, Genetics, and Pharmacology.

The scientist contributed notably to various main topics of study such as:

  • Plant Molecular Biology Research
  • Plant Gene Expression Analysis
  • Plant-Microbe Interactions and Immunity
  • Plant Pathogenic Bacteria Studies
  • Plant Reproductive Biology
  • Horticultural and Viticultural Research
  • Plant Stress Responses and Tolerance

Shiping Wang published extensively in several prominent scientific venues. Frequent publication venues included:

  • Frontiers in Plant Science
  • Plant Science
  • SSRN Electronic Journal
  • PLANT PHYSIOLOGY
  • Molecular Plant

The following selected papers illustrate the scope and focus of their research:

  • "ARGONAUTE2 Enhances Grain Length and Salt Tolerance by Activating BIG GRAIN3 to Modulate Cytokinin Distribution in Rice," 2020, The Plant Cell
  • "A miRNA-Encoded Small Peptide, vvi-miPEP171d1, Regulates Adventitious Root Formation," 2020, PLANT PHYSIOLOGY
  • "Knock out of transcription factor WRKY53 thickens sclerenchyma cell walls, confers bacterial blight resistance," 2021, PLANT PHYSIOLOGY
  • "An MKP-MAPK protein phosphorylation cascade controls vascular immunity in plants," 2022, Science Advances
  • "The versatile functions of OsALDH2B1 provide a genic basis for growth-defense trade-offs in rice," 2020, Proceedings of the National Academy of Sciences

Throughout their career, Shiping Wang collaborated frequently with several coauthors including Caixi Zhang, Chao Ma, Meng Yuan, Shiren Song, and Wenping Xu.

Best Publications

  • Activation of the Indole-3-Acetic Acid–Amido Synthetase GH3-8 Suppresses Expansin Expression and Promotes Salicylate- and Jasmonate-Independent Basal Immunity in Rice

    Xinhua Ding;Yinglong Cao;Liling Huang;Jing Zhao

  • Xa26, a gene conferring resistance to Xanthomonas oryzae pv. oryzae in rice, encodes an LRR receptor kinase‐like protein

    Xinli Sun;Yinglong Cao;Zhifen Yang;Caiguo Xu

  • OsWRKY13 Mediates Rice Disease Resistance by Regulating Defense-Related Genes in Salicylate- and Jasmonate-Dependent Signaling

    Deyun Qiu;Jun Xiao;Xinhua Ding;Min Xiong

  • Promoter mutations of an essential gene for pollen development result in disease resistance in rice

    Zhaohui Chu;Meng Yuan;Jialing Yao;Xiaojia Ge

  • A GH3 family member, OsGH3-2, modulates auxin and abscisic acid levels and differentially affects drought and cold tolerance in rice

    Hao Du;Nai Wu;Jing Fu;Shiping Wang

  • A Pair of Allelic WRKY Genes Play Opposite Roles in Rice-Bacteria Interactions

    Zeng Tao;Hongbo Liu;Deyun Qiu;Yan Zhou

  • Broad-spectrum and durability: understanding of quantitative disease resistance.

    Yanjun Kou;Shiping Wang

  • Development of enhancer trap lines for functional analysis of the rice genome

    Changyin Wu;Xiangjun Li;Wenya Yuan;Guoxing Chen

  • OsWRKY45 alleles play different roles in abscisic acid signalling and salt stress tolerance but similar roles in drought and cold tolerance in rice

    Zeng Tao;Yanjun Kou;Hongbo Liu;Xianghua Li

  • The Bacterial Pathogen Xanthomonas oryzae Overcomes Rice Defenses by Regulating Host Copper Redistribution

    Meng Yuan;Zhaohui Chu;Xianghua Li;Caiguo Xu

  • uORF-mediated translation allows engineered plant disease resistance without fitness costs

    Guoyong Xu;Meng Yuan;Chaoren Ai;Lijing Liu

  • Manipulating Broad-Spectrum Disease Resistance by Suppressing Pathogen-Induced Auxin Accumulation in Rice

    Jing Fu;Hongbo Liu;Yu Li;Huihui Yu

  • A paralog of the MtN3/saliva family recessively confers race‐specific resistance to Xanthomonas oryzae in rice

    Qinsong Liu;Meng Yuan;Yan Zhou;Xianghua Li

  • A convenient method for simultaneous quantification of multiple phytohormones and metabolites: application in study of rice-bacterium interaction

    Hongbo Liu;Xianghua Li;Jinghua Xiao;Shiping Wang

  • Targeting xa13, a recessive gene for bacterial blight resistance in rice

    Zhaohui Chu;Binying Fu;Hong Yang;Caiguo Xu

  • Rice MtN3/saliva/SWEET family genes and their homologs in cellular organisms.

    Meng Yuan;Shiping Wang

  • Insights into auxin signaling in plant-pathogen interactions.

    Jing Fu;Shiping Wang

  • Promoter elements of rice susceptibility genes are bound and activated by specific TAL effectors from the bacterial blight pathogen, Xanthomonas oryzae pv. oryzae.

    Patrick Römer;Patrick Römer;Sabine Recht;Sabine Recht;Tina Strauß;Tina Strauß;Janett Elsaesser;Janett Elsaesser

  • Xa3 , conferring resistance for rice bacterial blight and encoding a receptor kinase-like protein, is the same as Xa26

    Yi Xiang;Yinglong Cao;Caiguo Xu;Xianghua Li

  • Molecular and functional analyses of COPT/Ctr-type copper transporter-like gene family in rice

    Meng Yuan;Xianghua Li;Jinghua Xiao;Shiping Wang

Frequent Co-Authors

Xianghua Li
Xianghua Li Huazhong Agricultural University
Jinghua Xiao
Jinghua Xiao Huazhong Agricultural University
Caiguo Xu
Caiguo Xu Huazhong Agricultural University
Qifa Zhang
Qifa Zhang Huazhong Agricultural University
Weibo Xie
Weibo Xie Huazhong Agricultural University
Lizhong Xiong
Lizhong Xiong Huazhong Agricultural University
Xingming Lian
Xingming Lian Huazhong Agricultural University
Zhikang Li
Zhikang Li Chinese Academy of Agricultural Sciences
Bin Han
Bin Han Chinese Academy of Sciences
Jeffrey L. Bennetzen
Jeffrey L. Bennetzen University of Georgia

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