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Item type:Publication, Physiological and metabolic modifications in response to nanocarbon in callus of Indica rice cultivar(2020-01-01) ;Sutjaritvorakul, ThanawatChutipaijit, SuteeNanocarbon has been shown to be implicated in the response of plants to an assortment of positive or negative impacts. In the present research, the effects of nanocarbon on cell growth and secondary metabolite production on rice callus were studied. Different concentrations of nanocarbon (0-1000 mgl<sup>−1</sup>) were added into callus induction media to investigate the effects on the growth of callus, and secondary metabolite production in indica rice callus (Oryza sativa L. cv. Pathumthani1). The growth of callus was measured in terms of the size and weight of callus, and secondary metabolite production was determined based on the levels of total phenolic compounds and flavonoid production. The results showed that the callus induction, the callus growth and the secondary metabolite production in rice callus after treatment with nanocarbon were significantly different when compared to control (without treatment with nanocarbon). The rice callus treated with low (100 and 200 mgl<sup>-1</sup>) and moderate (400 and 600 mgl<sup>-1</sup>) level of nanocarbon displayed an enhancement in callus growth, total phenolic compounds and flavonoid production. However, the induction of callus, cell growth, and secondary metabolite production were decreased when rice callus was treated with high concentrations of nanocarbon (800 and 1000 mgl<sup>-1</sup>). The results of this research showed that the nanocarbon application of 400-600 mgl<sup>-1</sup> had potential to induce the cell growth and secondary metabolite production. This research suggests further investigation in using different concentrations of nanocarbon on other plant species for potential pharmaceutical application. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Improvement of Plant Regeneration Frequency from Carbon Sources in Aromatic Rice (Oryza sativa L.)(2018-09-01) ;Chutipaijit, SuteeSutjaritvorakul, ThanawatThe objective of this research is to investigate carbon sources for optimum callus induction and plant regeneration frequencies. The effect of carbon sources on callus induction and plant regeneration from mature seeds of aromatic rice (Oryza sativa L.) cultivar Khao Dawk Mali 105 (KDML105) was studied in this experiment. For callus induction, the different types of carbon sources along with 30 g L<sup>−1</sup> of sucrose or maltose were evaluated. NSI and NMI medium were used for callus induction in three replicates (sucrose and maltose as carbon sources, respectively). The calli derived from NMI medium showed the higher percentage of callus induction, fresh weight, dry weights, callus size, green spots and regeneration frequency than calli derived from NSI medium. For plant regeneration, the 3-week-old calli were transferred to the regeneration medium which was different in carbon sources (NSR, NMR, NSMR0.5, NMMR0.5, NSMR1, NMMR1, NSMR1.5, NMMR1.5, NSMR2, NMMR2, NSMR2.5 and NMMR2.5 medium) and tested to investigate the effect of carbon sources in three replicates. The percentage of regeneration (60.71%) and the ratio of the number of seedlings to the number of regenerated calli (3.02) obtained from NMR medium showed the highest values. The percentage of callus induction and morphological performance (weight and size) were correlated with plant regeneration frequency. The results showed that using maltose as a carbon source gave a better result than using sucrose as a carbon source for callus induction and plant regeneration in aromatic rice cultivar KDML105. The regenerated plants were successfully rooted and well grown in greenhouse conditions. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Comparative study of total phenolic compounds, flavonoids and antioxidant capacities in pigmented and non-pigmented rice of indica rice varieties(2018-06-01) ;Chutipaijit, SuteeSutjaritvorakul, ThanawatThe total phenolic compounds and flavonoid contents of grains as well as the antioxidant capacities were determined in 15 rice varieties. A high-performance liquid chromatography method was modified for the determination of the flavonoid subgroups in rice grains. The results showed the total phenolic compounds, flavonoid contents, and antioxidant capacities of pigmented rice were higher than in non-pigmented rice. The amounts of flavanone groups ranging from 0.04 to 0.40 mg Naringenin g<sup>−1</sup>, while flavones groups ranging from 0.08 to 0.57 mg Apigenin g<sup>−1</sup>, flavonol groups ranging from 0.16 to 1.20 mg Quercetin g<sup>−1</sup> and anthocyanin groups ranging from 44.43 to 69.83 mg Cyanidin chloride g<sup>−1</sup> were found in pigmented rice. The total phenolic compounds and total flavonoid contents of grains were significantly correlated with their antioxidant capacities. The results indicated that pigmented rice appeared as a good source of phenolic and flavonoid compounds and had beneficial nutritive values or antioxidant substances. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, In vitro plant growth promotion by ZnO nanomaterials in indica rice seedlings (Oryza sativa L.)(2018-01-01) ;Chutipaijit, Sutee ;Whalley, Anthony J.S.Sutjaritvorakul, ThanawatThis research focuses on zinc oxide nanomaterials (nano-ZnO) applied to agricultural fields. Plants were exposed to nanomaterials and responded differently in tolerance to the various concentrations and types of nanomaterials. Two cultivars (SP1 and SP90) of indica rice (Oryza sativa L.) seedlings were grown at 0-1,000 mg.L<sup>-1</sup> nano-ZnO and their morphological and physiological response was determined. Rice seedlings were harvested 5, 7, 10 and 14 days after treatments. Results demonstrated a significant increase in biomass, growth tolerance index (GTI), chlorophyll contents and antioxidant enzyme activities of the treated plant at 100 mg.L<sup>-1</sup> nano-ZnO but these parameters decreased with increasing nano-ZnO concentration in the treated plants at 300-1,000 mg.L<sup>-1</sup> nano-ZnO when compared to control plants (0 mg.L<sup>-1</sup> nano-ZnO). The high accumulations of biomass, GTI and chlorophyll contents were related to production of antioxidant enzyme activities (catalase and peroxidase) in plant cells when plants were exposed to a low dose of nano-ZnO. Further investigations will determine the effect of nano-ZnO on the plant productivity. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Application of nanomaterials in plant regeneration of rice (Oryza sativa L.)(2017-01-01) ;Chutipaijit, SuteeSutjaritvorakul, ThanawatIn recent years, the application of nanomaterials has been investigated by various studies, especially in their biological and agricultural features. This research aimed to evaluate the influence of zinc oxide (ZnO) and titanium dioxide (TiO<inf>2</inf>) nanoparticles on the quality of the plant regeneration in rice (Oryza sativa L. cv. RD49). Mature seed explants were used for callus induction and plant regeneration cultured on the medium supplemented with different concentrations of ZnO or TiO<inf>2</inf> nanoparticles. The high percentage of the callus induction was achieved on the medium supplemented with 5 mg.L<sup>-1</sup> ZnO nanoparticles or 20 mg.L<sup>-1</sup> TiO<inf>2</inf> nanoparticles when compared with control treatment (without nanoparticles). Various concentrations of TiO<inf>2</inf> nanoparticles were also found to increase the percentage of the plant regeneration more than ZnO nanoparticles. The highest percentage of plant regeneration was observed on the medium containing the concentration of 20 mg.L<sup>-1</sup> TiO<inf>2</inf> nanoparticles. The in vitro rooting of regenerated shoots was hardened and successfully transplanted to the field after 30 days of transplantation. The results suggested that ZnO and TiO<inf>2</inf> nanomaterials may have potential applications in the in vitro plant regeneration.
