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1.
Plant Biotechnol J ; 15(7): 850-864, 2017 Jul.
Artigo em Inglês | MEDLINE | ID: mdl-27998028

RESUMO

A major challenge of modern agricultural biotechnology is the optimization of plant architecture for enhanced productivity, stress tolerance and water use efficiency (WUE). To optimize plant height and tillering that directly link to grain yield in cereals and are known to be tightly regulated by gibberellins (GAs), we attenuated the endogenous levels of GAs in rice via its degradation. GA 2-oxidase (GA2ox) is a key enzyme that inactivates endogenous GAs and their precursors. We identified three conserved domains in a unique class of C20 GA2ox, GA2ox6, which is known to regulate the architecture and function of rice plants. We mutated nine specific amino acids in these conserved domains and observed a gradient of effects on plant height. Ectopic expression of some of these GA2ox6 mutants moderately lowered GA levels and reprogrammed transcriptional networks, leading to reduced plant height, more productive tillers, expanded root system, higher WUE and photosynthesis rate, and elevated abiotic and biotic stress tolerance in transgenic rice. Combinations of these beneficial traits conferred not only drought and disease tolerance but also increased grain yield by 10-30% in field trials. Our studies hold the promise of manipulating GA levels to substantially improve plant architecture, stress tolerance and grain yield in rice and possibly in other major crops.


Assuntos
Regulação da Expressão Gênica de Plantas , N-Acetilgalactosaminiltransferases/genética , Oryza/enzimologia , Oryza/genética , Proteínas de Plantas/genética , Plantas Geneticamente Modificadas/genética , Expressão Ectópica do Gene/genética , Expressão Ectópica do Gene/fisiologia , Regulação da Expressão Gênica de Plantas/genética , Giberelinas/metabolismo , Mutação/genética , N-Acetilgalactosaminiltransferases/metabolismo , Fotossíntese/genética , Fotossíntese/fisiologia , Proteínas de Plantas/metabolismo , Plantas Geneticamente Modificadas/metabolismo
2.
Plant Cell Environ ; 39(5): 998-1013, 2016 May.
Artigo em Inglês | MEDLINE | ID: mdl-26301381

RESUMO

Rice is an important crop and major model plant for monocot functional genomics studies. With the establishment of various genetic resources for rice genomics, the next challenge is to systematically assign functions to predicted genes in the rice genome. Compared with the robustness of genome sequencing and bioinformatics techniques, progress in understanding the function of rice genes has lagged, hampering the utilization of rice genes for cereal crop improvement. The use of transfer DNA (T-DNA) insertional mutagenesis offers the advantage of uniform distribution throughout the rice genome, but preferentially in gene-rich regions, resulting in direct gene knockout or activation of genes within 20-30 kb up- and downstream of the T-DNA insertion site and high gene tagging efficiency. Here, we summarize the recent progress in functional genomics using the T-DNA-tagged rice mutant population. We also discuss important features of T-DNA activation- and knockout-tagging and promoter-trapping of the rice genome in relation to mutant and candidate gene characterizations and how to more efficiently utilize rice mutant populations and datasets for high-throughput functional genomics and phenomics studies by forward and reverse genetics approaches. These studies may facilitate the translation of rice functional genomics research to improvements of rice and other cereal crops.


Assuntos
Genômica/métodos , Oryza/genética , Pesquisa , Técnicas de Inativação de Genes , Mutação/genética , Genética Reversa
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