WRKYgenee encode transcription factors that are Involved In the regulation of various biological processes. These zinc-finger proteins, especially those members mediating stress responses, are uniquely expanded In pla...WRKYgenee encode transcription factors that are Involved In the regulation of various biological processes. These zinc-finger proteins, especially those members mediating stress responses, are uniquely expanded In plants. To facilitate the study of the evolutionary history and functions of this eupergene family, we performed an exhaustive search for WRKY genes using HMMER and a Hidden Markov Model that was specifically trained for rice. This work resulted In a comprehensive list of WRKYgene models In Oryza sativa L. eep. indica and L. eep. Japonica. Mapping of these genes to Individual chromosomes facilitated elimination of the redundant, leading to the Identification of 98 WRKYgenee In Japonica and 102 In indica rice. These genes were further categorized according to the number and structure of their zinc-finger domains. Based on a phylogenetlc tree of the conserved WRKY domains and the graphic display of WRKY loci on corresponding indica and Japonica chromosomes, we Identified possible WRKY gene duplications within, and losses between the two closely related rice subspecies. Also reviewed are the roles of WRKY genes In disease resistance and responses to salicylic acid and Jaemonlc acid, seed development and germination mediated by glbberelllns, other developmental processes Including senescence, and responses to ablotlc stresses and abeclelc acid In rice and other plants. The signaling pathways mediating WRKY gene expreeelon are also discussed.展开更多
Grain size and shape are important determinants of grain weight and yield in rice. Here, we report a new major quantitative trait locus (QTL), qTGW3, that controls grain size and weight in rice. This locus, qTGW3, e...Grain size and shape are important determinants of grain weight and yield in rice. Here, we report a new major quantitative trait locus (QTL), qTGW3, that controls grain size and weight in rice. This locus, qTGW3, encodes OsSK41 (also known as OsGSK5), a member of the GLYCOGEN SYNTHASE KINASE 3/SHAGGY-like family. Rice near-isogenic lines carrying the loss-of-function allele of OsSK41 have increased grain length and weight. We demonstrate that OsSK41 interacts with and phosphorylates AUXIN RESPONSE FACTOR 4 (OsARF4). Co-expression of OsSK41 with OsARF4 increases the accumulation of OsARF4 in rice protoplasts. Loss of function of OsARF4 results in larger rice grains. RNA-sequencing analysis suggests that OsARF4 and OsSK41 repress the expression of a common set of downstream genes, including some auxin-responsive genes, during rice grain development. The loss-of-function form of OsSK41 at qTGW3 represents a rare allele that has not been extensively utilized in rice breeding. Suppression of OsSK41 function by either targeted gene editing or QTL pyramiding enhances rice grain size and weight. Thus, our study reveals the important role of OsSK41 in rice grain development and provides new candidate genes for genetic improvement of grain yield in rice and perhaps in other cereal crops.展开更多
基金Supported by the National Center for Research Resources (NCRR) (P20 RR 016464), a component of the National Institutes of Health (NIH), Its contents are solely the responsibility of the authors and do not necessarily represent the official views of NCRR or NIH. Publication of this paper is supported by the National Natural Science Foundation of China (30624808). Acknowledgements The authors thank two former members of our laboratory namely Drs Zhonglin Zhang and Zhen Xie, for stimulating discussions and their contributions in preparing Figure 4 and compiling information for the biological functions of WRKYgenes. Dr Zhang is currently a postdoctoral fellow in Duke and Dr Xie is a postdoctoral fellow in Harvard.
文摘WRKYgenee encode transcription factors that are Involved In the regulation of various biological processes. These zinc-finger proteins, especially those members mediating stress responses, are uniquely expanded In plants. To facilitate the study of the evolutionary history and functions of this eupergene family, we performed an exhaustive search for WRKY genes using HMMER and a Hidden Markov Model that was specifically trained for rice. This work resulted In a comprehensive list of WRKYgene models In Oryza sativa L. eep. indica and L. eep. Japonica. Mapping of these genes to Individual chromosomes facilitated elimination of the redundant, leading to the Identification of 98 WRKYgenee In Japonica and 102 In indica rice. These genes were further categorized according to the number and structure of their zinc-finger domains. Based on a phylogenetlc tree of the conserved WRKY domains and the graphic display of WRKY loci on corresponding indica and Japonica chromosomes, we Identified possible WRKY gene duplications within, and losses between the two closely related rice subspecies. Also reviewed are the roles of WRKY genes In disease resistance and responses to salicylic acid and Jaemonlc acid, seed development and germination mediated by glbberelllns, other developmental processes Including senescence, and responses to ablotlc stresses and abeclelc acid In rice and other plants. The signaling pathways mediating WRKY gene expreeelon are also discussed.
基金This work was financially supported by grants from the National Key Research and Development Program of China (2016YFD0100902), the National Natural Science Foundation of China (numbers 31400223, 31471461, and 31625004), the Basic Research Program from the Shanghai Municipal Science and Technology Commission (14JC1400800), the Basic Application Research Program from the Shanghai Municipal Agriculture Commission (2014-7-1-2), and the Agricultural Seed Project of Shandong Province.
文摘Grain size and shape are important determinants of grain weight and yield in rice. Here, we report a new major quantitative trait locus (QTL), qTGW3, that controls grain size and weight in rice. This locus, qTGW3, encodes OsSK41 (also known as OsGSK5), a member of the GLYCOGEN SYNTHASE KINASE 3/SHAGGY-like family. Rice near-isogenic lines carrying the loss-of-function allele of OsSK41 have increased grain length and weight. We demonstrate that OsSK41 interacts with and phosphorylates AUXIN RESPONSE FACTOR 4 (OsARF4). Co-expression of OsSK41 with OsARF4 increases the accumulation of OsARF4 in rice protoplasts. Loss of function of OsARF4 results in larger rice grains. RNA-sequencing analysis suggests that OsARF4 and OsSK41 repress the expression of a common set of downstream genes, including some auxin-responsive genes, during rice grain development. The loss-of-function form of OsSK41 at qTGW3 represents a rare allele that has not been extensively utilized in rice breeding. Suppression of OsSK41 function by either targeted gene editing or QTL pyramiding enhances rice grain size and weight. Thus, our study reveals the important role of OsSK41 in rice grain development and provides new candidate genes for genetic improvement of grain yield in rice and perhaps in other cereal crops.