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1.
Chinese Journal of Biotechnology ; (12): 163-176, 2024.
Article in Chinese | WPRIM | ID: wpr-1008087

ABSTRACT

The WRKYs are a group of plant-specific transcription factors that play important roles in defense responses. In this study, we silenced 2 GmWRKY33B homologous genes using a bean pod mosaic virus (BPMV) vector carrying a single fragment from the conserved region of the GmWRKY33B genes. Silencing GmWRKY33B did not result in morphological changes. However, significantly reduced resistances to Pseudomonas syringae pv. glycinea (Psg) and soybean mosaic virus (SMV) were observed in the GmWRKY33B-silenced plants, indicating a positive role of the GmWRKY33B genes in disease resistance. Kinase assay showed that silencing the GmWRKY33B genes significantly reduced the activation of GmMPK6, but not GmMPK3, in response to flg22 treatment. Reverse transcriptase PCR (RT-PCR) analysis of the genes encoding prenyltransferases (PTs), which are the key enzymes in the biosynthesis of glyceollin, showed that the Psg-induced expression of these genes was significantly reduced in the GmWRKY33B-silenced plants compared with the BPMV-0 empty vector plants, which correlated with the presence of the W-boxes in the promoter regions of these genes. Taken together, our results suggest that GmWRKY33Bs are involved in soybean immunity through regulating the activation of the kinase activity of GmMPK6 as well as through regulating the expression of the key genes encoding the biosynthesis of glyceollins.


Subject(s)
Glycine max/genetics , Disease Resistance/genetics , Biological Assay , Dimethylallyltranstransferase , Gene Silencing
2.
Chinese Journal of Biotechnology ; (12): 2579-2599, 2023.
Article in Chinese | WPRIM | ID: wpr-981217

ABSTRACT

Color is an important indicator for evaluating the ornamental traits of horticultural plants, and plant pigments is a key factor affecting the color phenotype of plants. Plant pigments and their metabolites play important roles in color formation of ornamental organs, regulation of plant growth and development, and response to adversity stress. It has therefore became a hot topic in the field of plant research. Virus-induced gene silencing (VIGS) is a vital genomics tool that specifically reduces host endogenous gene expression utilizing plant homology-dependent defense mechanisms. In addition, VIGS enables characterization of gene function by rapidly inducing the gene-silencing phenotypes in plants. It provides an efficient and feasible alternative for verifying gene function in plant species lacking genetic transformation systems. This paper reviews the current status of the application of VIGS technology in the biosynthesis, degradation and regulatory mechanisms of plant pigments. Moreover, this review discusses the potential and future prospects of VIGS technology in exploring the regulatory mechanisms of plant pigments, with the aim to further our understandings of the metabolic processes and regulatory mechanisms of different plant pigments as well as improving plant color traits.


Subject(s)
Plant Viruses/genetics , Plants/genetics , Gene Silencing , Plant Development , Gene Expression Regulation, Plant , Genetic Vectors
3.
Biol. Res ; 55: 4-4, 2022. ilus, graf
Article in English | LILACS | ID: biblio-1383909

ABSTRACT

BACKGROUND: The internal NAD(P)H dehydrogenase (NDA) gene family was a member of the NAD(P)H dehydrogenase (ND) gene family, mainly involved in the non-phosphorylated respiratory pathways in mitochondria and played crucial roles in response to abiotic stress. METHODS: The whole genome identification, structure analysis and expression pattern of NDA gene family were conducted to analyze the NDA gene family. RESULTS: There were 51, 52, 26, and 24 NDA genes identified in G. hirsutum, G. barbadense, G. arboreum and G. raimondii, respectively. According to the structural characteristics of genes and traits of phylogenetic tree, we divided the NDA gene family into 8 clades. Gene structure analysis showed that the NDA gene family was relatively conservative. The four Gossypium species had good collinearity, and segmental duplication played an important role in the evolution of the NDA gene family. Analysis of cis-elements showed that most GhNDA genes contained cis-elements related to light response and plant hormones (ABA, MeJA and GA). The analysis of the expression patterns of GhNDA genes under different alkaline stress showed that GhNDA genes were actively involved in the response to alkaline stress, possibly through different molecular mechanisms. By analyzing the existing RNA-Seq data after alkaline stress, it was found that an NDA family gene GhNDA32 was expressed, and then theGhNDA32 was silenced by virus-induced gene silencing (VIGS). By observing the phenotype, we found that the wilting degree of silenced plants was much higher than that of the control plant after alkaline treatment, suggesting that GhNDA32 gene was involved in the response to alkaline stress. CONCLUSIONS: In this study, GhNDAs participated in response to alkaline stress, especially NaHCO3 stress. It was of great significance for the future research on the molecular mechanism of NDA gene family in responding to abiotic stresses.


Subject(s)
Gene Expression Regulation, Plant , Gossypium/genetics , Phylogeny , Plant Proteins/genetics , Plant Proteins/metabolism , Stress, Physiological/genetics , Molecular Structure , Multigene Family/genetics , Genome, Plant
4.
Biol. Res ; 52: 56-56, 2019. ilus, graf
Article in English | LILACS | ID: biblio-1505776

ABSTRACT

BACKGROUND: ADP-glucose pyrophosphorylase (AGPase), the key enzyme in plant starch biosynthesis, is a heterotetramer composed of two identical large subunits and two identical small subunits. AGPase has plastidial and cytosolic isoforms in higher plants, whereas it is mainly detected in the cytosol of grain endosperms in cereal crops. Our previous results have shown that the expression of the TaAGPL1 gene, encoding the cytosolic large subunit of wheat AGPase, temporally coincides with the rate of starch accumulation and that its overexpression dramatically increases wheat AGPase activity and the rate of starch accumulation, suggesting an important role. METHODS: In this study, we performed yeast one-hybrid screening using the promoter of the TaAGPL1 gene as bait and a wheat grain cDNA library as prey to screen out the upstream regulators of TaAGPL1 gene. And the barley stripe mosaic virus-induced gene-silencing (BSMV-VIGS) method was used to verify the functional characterization of the identified regulators in starch biosynthesis. RESULTS: Disulfide isomerase 1-2 protein (TaPDIL1-2) was screened out, and its binding to the TaAGPL1-1D promoter was further verified using another yeast one-hybrid screen. Transiently silenced wheat plants of the TaPDIL1-2 gene were obtained by using BSMV-VIGS method under field conditions. In grains of BSMV-VIGS-TaPDIL1-2-silenced wheat plants, the TaAGPL1 gene transcription levels, grain starch contents, and 1000-kernel weight also significantly increased. CONCLUSIONS: As important chaperones involved in oxidative protein folding, PDIL proteins have been reported to form hetero-dimers with some transcription factors, and thus, our results suggested that TaPDIL1-2 protein could indirectly and negatively regulate the expression of the TaAGPL1 gene and function in starch biosynthesis.


Subject(s)
Plant Proteins/metabolism , Triticum/metabolism , Bread , Genes, Plant/genetics , Gene Expression Regulation, Plant/genetics , Glucose-1-Phosphate Adenylyltransferase/metabolism , Plant Proteins/genetics , Transcription Factors , Triticum/genetics , Glucose-1-Phosphate Adenylyltransferase/genetics
5.
Acta biol. colomb ; 15(2): 203-218, ago. 2010.
Article in Spanish | LILACS | ID: lil-635018

ABSTRACT

La yuca (Manihot esculenta) constituye la base de la alimentación para mas de 1.000 millones de personas en el mundo considerándose por esta razón un cultivo primordial para la seguridad alimentaria. La bacteriosis vascular ocasionada por la bacteria gram negativa Xanthomonas axonopodis pv. manihotis (Xam) es uno de los factores más limitantes para la producción en este cultivo. Un gen de resistencia candidato de yuca a la bacteriosis vascular, denominado RXam1, ha sido previamente identificado. En este trabajo se empleó la estrategia de silenciamiento génico mediado por el geminivirus ACMV (del inglés African Cassava Mosaic Virus) para validar la función del gen RXam1. Como control positivo se utilizó el gen su, cuyo silenciamiento produce blanqueamiento en las hojas. Plantas de la variedad SG10735 fueron bombardeadas con las construc-ciones ACMV-A-SU + ACMV-B y ACMV-A-RXam1 + ACMV-B. La eficiencia de silenciamiento empleando el gen su fue baja, observándose un fenotipo de blanqueamiento en solo una de siete plantas. En las plantas posiblemente silenciadas en el gen RXam1, no se logró identificar siRNAs correspondientes a este gen, aunque si se observó una leve disminución en la expresión de RXam1 en una de las plantas evaluadas. Las curvas de crecimiento para la cepa Xam CIO136 en plantas de yuca inoculadas mostraron una leve pero no significativa diferencia en la susceptibilidad de las plantas silenciadas con respecto a las no silenciadas.


Cassava (Manihot esculenta) is a major source of food for more than 1000 million people in the world and constitutes an important staple crop. Cassava bacterial blight, caused by the gram negative bacterium Xanthomonas axonopodis pv. manihotis, is one of the most important constraints for this crop. A candidate resistance gene against cassava bacterial blight, named RXam1, has been identified previously. In this work, we employed the gene silencing approach using the African Cassava Mosaic Virus (ACMV) to validate the function of the RXam1 gene. We used as positive control the su gen, which produce photoblanching in leaves when is silenced. Plants from the SG10735 variety were bombardment with the ACMV-A-SU+ACMV-B y ACMV-A-RXam1+ACMV-B constructions. The silencing efficiency employing the su gene was low, only one of seven plants showed photoblanching. In the putative silenced plants for the RXam1 gene, no presence of siRNAs corresponding to RXam1 was observed; although a low diminution of the RXam1 gene expression was obtained. The growth curves for the Xam strain CIO136 in cassava plants inoculated showing a little but no significance difference in the susceptibility in the silenced plants compared to not silenced.

6.
Electron. j. biotechnol ; 10(2): 178-190, Apr. 15, 2007. ilus, graf
Article in English | LILACS | ID: lil-499183

ABSTRACT

Gene silencing, also called RNA interference (RNAi) is a specific mechanism of RNA degradation involved in gene regulation, development and defense in eukaryotic organisms. It became an important subject in the teaching programs of molecular biology, genetics and biotechnology courses in the last years. The aim of this work is to provide simple and inexpensive assays to understand and teach gene silencing using plants as model systems. The use of transient and permanent transgenic plants for expressing reporter genes, like those derived from jellyfish green fluorescent protein (gfp) encoding gene, provides a nice, colorful and conclusive image of gene silencing. Three experimental approaches to evidence RNA silencing are depicted. In the first approach gene silencing is demonstrated after transient expression of reporter genes in non-transgenic plants. In the second, silencing is triggered against a reporter gene stably integrated into a transgenic plant. The third approach involves the triggering of RNA silencing against endogenous genes using viral vectors. In addition we illustrate systemic gene silencing showing how the silencing signal is spread over a plant and finally it is also demonstrated the suppression of gene silencing. The first group of experiments is recommended to be tough on undergraduate courses, the following two sections are recommended for graduate courses. Hopefully, it will help students to understand this important phenomenon and to unravel the importance of gene silencing as a key gene regulation mechanism and as a molecular and biotechnological tool.


Subject(s)
RNA, Plant/genetics , Gene Silencing , RNA Interference , Teaching , Biotechnology/education , Green Fluorescent Proteins , Models, Genetic , Plants, Genetically Modified/genetics , Viral Interference
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