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1.
Chinese Journal of Biotechnology ; (12): 603-613, 2023.
Article in Chinese | WPRIM | ID: wpr-970394

ABSTRACT

ACC oxidase (ACO) is one of the key enzymes that catalyze the synthesis of ethylene. Ethylene is involved in salt stress response in plants, and salt stress seriously affects the yield of peanut. In this study, AhACO genes were cloned and their functions were investigated with the aim to explore the biological function of AhACOs in salt stress response, and to provide genetic resources for the breeding of salt-tolerant varieties of peanut. AhACO1 and AhACO2 were amplified from the cDNA of salt-tolerant peanut mutant M29, respectively, and cloned into the plant expression vector pCAMBIA super1300. The recombinant plasmid was transformed into Huayu22 by pollen tube injection mediated by Agrobacterium tumefaciens. After harvest, the small slice cotyledon was separated from the kernel, and the positive seeds were screened by PCR. The expression of AhACO genes was analyzed by qRT-PCR, and the ethylene release was detected by capillary column gas chromatography. Transgenic seeds were sowed and then irrigated with NaCl solution, and the phenotypic changes of 21-day-seedings were recorded. The results showed that the growth of transgenic plants were better than that of the control group Huayu 22 upon salt stress, and the relative content of chlorophyll SPAD value and net photosynthetic rate (Pn) of transgenic peanuts were higher than those of the control group. In addition, the ethylene production of AhACO1 and AhACO2 transgenic plants were 2.79 and 1.87 times higher than that of control peanut, respectively. These results showed that AhACO1 and AhACO2 could significantly improve the salt stress tolerance of transgenic peanut.


Subject(s)
Salt Tolerance/genetics , Arachis/genetics , Plant Breeding , Ethylenes/metabolism , Plants, Genetically Modified/genetics , Gene Expression Regulation, Plant , Plant Proteins/genetics
2.
Biocell ; 33(3): 141-148, Dec. 2009. graf, tab
Article in English | LILACS | ID: lil-595018

ABSTRACT

Two independent parameters, epicotyl height (cm) and number of induced buds were studied on Pinus pinaster explants to analyse the effects of three phytohormones (6-benzylaminopurine, jasmonic acid, ethylene) which were combined or not in 11 different treatments. Epicotyle length diminished significantly in relation to the control medium (medium without exogen phytohormones) in presence of jasmonic acid, 6-benzylaminopurine or Ethephon (which is converted to ethylene in plants) in any of treatments. Concentrations of 100 microM of jasmonic acid and Ethephon had a greater inhibitory effect than the treatments with 10 microM. In addition to that, jasmonic acid was a stronger inhibitor than Ethephon in any of the tried combinations. There were no significant differences between the control treatment and the treatment s with only 10 microM of jasmonic acid or Ethephon. However, 10 microM 6-benzylaminopurine induced bud formation. The different combinations of 6-benzylaminopurine with jasmonic acid and Ethephon showed that concentrations of 10 to 100 microM did not affect the number of induced buds. Jasmonic acid had an inhibitory effect which Ethephon only showed when combined with 100 microM of jasmonic acid and 10 microM of 6-benzylaminopurine. Three response groups were defined by cluster analysis: group 1 produced the greatest mean number of buds (4 to 5) and a mean epicotyl growth of 1 to 1.5 cm; group 2 produced 2 to 4 buds and a mean growth of 0.5 to 1.2 cm; group 3 produced only one bud and a mean epicotyl length of 1.2 to 2 cm.


Subject(s)
Cyclopentanes/pharmacology , Organophosphorus Compounds/pharmacology , Benzyl Compounds/pharmacology , Ethylenes/pharmacology , Ethylenes/metabolism , Purines/pharmacology , Plant Components, Aerial/growth & development , Plant Components, Aerial , Pinus/growth & development , Pinus , Plant Growth Regulators/pharmacology
3.
J Biosci ; 2006 Jun; 31(2): 255-63
Article in English | IMSEAR | ID: sea-111322

ABSTRACT

GbERF belongs to the ERF (ethylene responsive factor) family of transcription factors and regulates the GCC-box containing pathogen-related (PR) genes in the ethylene signal transduction pathway. To study the function of GbERF in the process of biotic stress, transgenic tobacco plants expressing GbERF were generated. Overexpression of GbERF did not change transgenic plant's phenotype and endogenous ethylene level. However, the expression profile of some ethylene-inducible GCC-box and non-GCC-box containing genes was altered, such as PR1b, PR2, PR3, PR4, Osmotin, CHN50, ACC oxidase and ACC synthase genes. These data indicate that the cotton GbERF could act as a transcriptional activator or repressor to regulate the differential expression of ethylene-inducible genes via GCC and non-GCC cis-elements. Moreover, the constitutive expression of GbERF in transgenic tobacco enhanced the plant's resistance to Pseudomonas syringae pv tabaci infection. In conclusion, GbERF mediates the expression of a wide array of PR and ethylene-responsive genes and plays an important role in the plant's response to biotic stress.


Subject(s)
Base Sequence , Ethylenes/metabolism , Gene Expression Regulation, Plant , Nuclear Proteins/genetics , Phenotype , Plant Proteins/genetics , Plants, Genetically Modified , Pseudomonas syringae/pathogenicity , Seeds/growth & development , Signal Transduction/physiology , Nicotiana/genetics , Transcription Factors/genetics , Transformation, Genetic
4.
J Biosci ; 2000 Sep; 25(3): 291-9
Article in English | IMSEAR | ID: sea-110710

ABSTRACT

Under optimal conditions of growth, senescence, a terminal phase of development, sets in after a certain physiological age. It is a dynamic and closely regulated developmental process which involves an array of changes at both physiological and biochemical levels including gene expression. A large number of biotic and abiotic factors accelerate the process. Convincing evidence suggests the involvement of polyamines (PAs) and ethylene in this process. Although the biosynthetic pathways of both PAs and ethylene are interrelated, S-adenosylmethionine (SAM) being a common precursor, their physiological functions are distinct and at times antagonistic, particularly during leaf and flower senescence and also during fruit ripening. This provides an effective means for regulation of their biosynthesis and also to understand the mechanism by which the balance between the two can be established for manipulating the senescence process. The present article deals with current advances in the knowledge of the interrelationship between ethylene and PAs during senescence which may open up new vistas of investigation for the future.


Subject(s)
Adenosylmethionine Decarboxylase/physiology , Arginine/metabolism , Cellular Senescence , Ethylenes/metabolism , Gene Expression Regulation, Plant , Homeostasis , Methionine/metabolism , Models, Biological , Ornithine Decarboxylase/physiology , Plant Growth Regulators/physiology , Plant Physiological Phenomena , Plant Proteins/physiology , Plants/growth & development , Polyamines/metabolism , S-Adenosylmethionine/physiology
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