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Research Articles

Efficacy of periodic cold plasma treatment in a paddy to produce white-core grains in brewer’s rice cultivar Yamadanishiki

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Pages 161-173 | Received 01 Feb 2023, Accepted 13 Apr 2023, Published online: 06 Jun 2023

References

  • Ikegami M, Yoshida S, Nakamura C, et al. Heritability estimates of white-core expression in a sake-brewing rice (Oryza sativa L.) cultivar yamadanishiki based on F2 variance and selection response in the F2 generation. Breed. Res. 2003;5(1):9–15.
  • Horigane AK, Suzuki K, Yoshida M. Moisture distribution in rice grains used for sake brewing analyzed by magnetic resonance imaging. J. Cereal Sci. 2014;60(1):193–201.
  • Yanagiuchi T, Yamamoto H, Miyazaki N, et al. Influence of grain type on suitability of rice for sake brewing. J Biosci Bioengineering. 1997;75(3):169–176.[In Japanese]
  • Okada S, Yamasaki M. Validation of a quantitative trait locus for the white-core expression rate of grain on chromosome 6 in a brewing rice cultivar and development of DNA markers for marker-assisted selection. Breed Sci. 2019;69(3):401–409.
  • Hori M. Radical‑controlled plasma processes. Rev Modern Plasma Phys. 2022;6(36):1–117.
  • Ito M, Oh J-S, Ohta T, et al. Current status and future prospects of agricultural applications using atmospheric-pressure plasma technologies. Plasma Process Polym. 2018;15(2):e1700073.
  • Adamovich I, Baalrud SD, Bogaerts A, et al. The 2017 plasma roadmap: low temperature plasma science and technology. J Phys D Appl Phys. 2017;50(32):323001.
  • Park DP, Davis K, Gilani S, et al. Reactive nitrogen species produced in water by non-equilibrium plasma increase plant growth rate and nutritional yield. Curr Appl Phys. 2013;13(S1):S19–S29.
  • Puač N, Gherardi M, Shiratani M. Plasma agriculture: a rapidly emerging field. Plasma Process Polym. 2018;15(2):e1700174.
  • Yanagawa Y, Kawano H, Kobayashi T, et al. Direct protein introduction into plant cells using a multi-gas plasma jet. Pros One. 2017;12(2):0171942.
  • Stolarik T, Henselova MA, Martinka M, et al. Effect of Low-Temperature plasma on the structure of seeds, growth and metabolism of endogenous phytohormones in pea (Pisum sativum L.). Plasma. Plasma Chem Plasma Process. 2015;35(4):659–676.
  • Jiafeng J, Xin H, Ling L, et al. Effect of cold plasma treatment on seed germination and growth of wheat. Plasma Sci Technol. 2014;16(1):54–58.
  • Koga K, Thapanut S, Amano T, et al. Simple method of improving harvest by nonthermal air plasma irradiation of seeds of Arabidopsis thaliana (L.). Appl Phys Express. 2016;9(1):016201.
  • de Groot GJJB, Hundt A, Murphy AB, et al. Cold plasma treatment for cotton seed germination improvement. Sci Rep. 2018;8(1):14372.
  • Li J, Sakai N, Watanabe M, et al. Study on plasma agent effect of a Direct-Current atmospheric pressure Oxygen-Plasma jet on inactivation of E. coli using bacterial mutants. IEEE Trans Plasma Sci 2013;41(4):935–941.
  • Shimada K, Takashima K, Kimura Y, et al. Humidification effect of air plasma effluent gas on suppressing conidium germination of a plant pathogenic fungus in the liquid phase. Plasma Process Polym. 2020;17(1):e1900004.
  • Pankaj SK, Wan Z, Keener KM. Effects of cold plasma on food quality: a review. Foods. 2018;7(1):4.
  • Kitazaki S, Koga K, Shiratani M, et al. Growth enhancement of radish sprouts induced by low pressure O2 radio frequency discharge plasma irradiation. JPN J Appl Phys. 2012;51(1S):01AE01.
  • Kitazaki S, Sarinont T, Koga K, et al. Plasma induced long-term growth enhancement of Raphanus sativus L. using combinatorial atmospheric air dielectric barrier discharge plasmas. Curr Appl Phys. 2014;14(S2):S149–S153.
  • Hayashi N, Ono R, Shiratani M, et al. Antioxidative activity and growth regulation of brassicaceae induced by oxygen radical irradiation. JPN J Appl Phys. 2015;54(6S2):06GD01.
  • Sarinont T, Amano T, Attri P, et al. Effects of plasma irradiation using various feeding gases on growth of Raphanus sativus L. Arch Biochem Biophys. 2016;605:129–140.
  • Park Y, Oh KS, Oh J, et al. The biological effects of surface dielectric barrier discharge on seed germination and plant growth with barley. Plasma Process Polym. 2018;15(2):e1600056.
  • Adhikari B, Adhikari M, Ghimire B, et al. Cold atmospheric Plasma-Activated water irrigation induces defense hormone and gene expression in tomato seedlings. Sci Rep. 2019;9(1):16080.
  • Takaki K, Takahata J, Watanabe S, et al. Improvements in plant growth rate using underwater discharge. J Phys Conf Ser. 2013;418:012140.
  • Lazukin AV, Serdyukov YA, Moralev IA, et al. Effect of the surface dielectric barrier discharge plasmas on winter rye seeds germination. J Phys Conf Ser. 2019;1147:012124.
  • Khamsen N, Onwimol D, Teerakawanich N, et al. Rice (Oryza sativa L.) seed sterilization and germination enhancement via atmospheric hybrid nonthermal discharge plasma. ACS Appl Mater Interfaces. 2016;8(30):19268–19275.
  • Ling L, Jiafeng J, Jiangang L, et al. Effects of cold plasma treatment on seed germination and seedling growth of soybean. Sci Rep. 2014;4:5851–5859.
  • Mildažienė V, Aleknavičiūtė V, Žūkienė R, et al. Treatment of common sunflower (helianthus annus L.) seeds with radio-frequency electromagnetic field and cold plasma induces changes in seed phytohormone balance, seedling development and leaf protein expression. Sci Rep. 2019;9(1):6437.
  • Zukiene R, Nauciene Z, Januskaitiene I, et al. Dielectric barrier discharge plasma treatment-induced changes in sunflower seed germination, phytohormone balance, and seedling growth. Appl Phys Express. 2019;12(12):126003.
  • Hashizume H, Ohta T, Hori M, et al. Growth control of Saccharomyces cerevisiae through dose of oxygen atoms. Appl Phys Lett. 2015;107(9):093701.
  • Tanaka H, Nakamura K, Mizuno M, et al. Non-thermal atmospheric pressure plasma activates lactate in ringer’s solution for anti-tumor effects. Sci Rep. 2016;6:36282.
  • Tanaka H, Mizuno M, Katsumata Y, et al. Oxidative stress-dependent and -independent death of glioblastoma cells induced by nonthermal plasma-exposed solutions. Sci Rep. 2019;9(1):13657.
  • Tanaka H, Hosoi Y, Ishikawa K, et al. Low temperature plasma irradiation products of sodium lactate solution that induce cell death on U251SP glioblastoma cells were identified. Sci Rep. 2021;11(1):18488.
  • Ito D, Iwata N, Ishikawa K, et al. Cytotoxicity of plasma-irradiated lactate solution produced under atmospheric airtight conditions and generation of the methyl amino group. Appl Phys Express. 2022;15(5):056001.
  • Itoh J, Nonomura K, Ikeda K, et al. Rice plant development: from zygote to spikelet. Plant Cell Physiol. 2005;46(1):23–47.
  • Hashizume H, Kitano H, Mizuno H, et al. Improvement of yield and grain quality by periodic cold plasma treatment with rice plants in a paddy field. Plasma Process Polym. 2021;18(1):e2000181.
  • Hashimoto Z, Mori N, Kawamura M, et al. Genetic diversity and phylogeny of japanese sake-brewing rice as revealed by AFLP and nuclear and chloroplast SSR markers. Theor Appl Genet. 2004;109(8):1586–1596.
  • Okada S, Sasaki M, Yamasaki M. A novel rice QTL qOPW11 associated with panicle weight affects panicle and plant architecture. Rice. 2018;11(1):53.
  • Ishii K, Oba K, Maruyama A, et al. Effect of high temperature at grain filling period in TGC on grain texture of brewers’ rice “yamada-nishiki“. Rep Kyushu Br Crop Sci. Soc Japan. 2008;74:24–26. [In Japanese].
  • Ikegami M, Fujimoto H, Ogawa T, et al. The relationships between temperature conditions and brown rice quality of a brewer’s rice cultivar “yamadanishiki” in Hyogo prefecture. JPN J Crop Sci. 2015;84(3):295–302. [In Japanese].
  • Iwasaki M, Inui H, Matsudaira Y, et al. Nonequilibrium atmospheric pressure plasma with ultrahigh electron density and high performance for glass surface cleaning. Appl Phys Lett. 2008;92(8):081503.
  • Inui H, Takeda K, Kondo H, et al. Measurement of hydrogen radical density and its impact on reduction of copper oxide in Atmospheric-Pressure remote plasma using H2 and Ar mixture gases. Appl Phys Express. 2010;3(12):126101.
  • Takeda K, Ishikawa K, Tanaka H, et al. Spatial distributions of O, N, NO, OH and vacuum ultraviolet light along gas flow direction in an AC-excited atmospheric pressure Ar plasma jet generated in open air. J Phys D Appl Phys. 2017;50(19):195202.
  • Hussien A, Tavakol E, Horner DS, et al. Genetics of tillering in rice and barley. Plant Genome. 2014;7(1):1–20.
  • Maruyama K, Urano K, Yoshiwara K, et al. Integrated analysis of the effects of cold and dehydration on rice metabolites, phytohormones, and gene transcripts. Plant Physiol. 2014;164(4):1759–1771.
  • Tripathi AK, Pareek A, Sopory SK, et al. Narrowing down the targets for yield improvement in rice under normal and abiotic stress conditions via expression profiling of yield-related genes. Rice. 2012;5(1):37.
  • Suriyasak C, Hatanaka K, Tanaka H, et al. Alterations of DNA methylation caused by cold plasma treatment restore delayed germination of Heat-Stressed rice (Oryza sativa L.) seeds. ACS Agric Sci Technol. 2021;1(1):5–10.
  • Mai CD, Phung NT, To HT, et al. Genes controlling root development in rice. Rice. 2014;7(1):30–31.
  • Xiao G, Qin H, Zhou J, et al. OsERF2 controls rice root growth and hormone responses through tuning expression of key genes involved in hormone signaling and sucrose metabolism. Plant Mol Biol. 2016;90(3):293–302.
  • Nagato K, Ebata M. Studies on white-core rice kernel: i. On the occurrence of white core. JPN J Crop Sci. 1958;27(1):49–51. [In Japanese]
  • Okada S, Onogi A, Iijima K, et al. Identification of QTLs for rice grain size using a novel set of chromosomal segment substitution lines derived from yamadanishiki in the genetic background of koshihikari. Breed Sci. 2018;68(2):210–218.
  • Okada S, Suehiro M, Ebana K, et al. Genetic dissection of grain traits in yamadanishiki, an excellent sake‑brewing rice cultivar. Theor Appl Genet. 2017;130(12):2567–2585.
  • Okada S, Iijima K, Hori K, et al. Genetic and epistatic effects for grain quality and yield of three grain-size QTLs identified in brewing rice (Oryza sativa L.). Mol Breeding. 2020;40(9):88.
  • Ishimaru T, Horigane AK, Ida M, et al. Formation of grain chalkiness and changes in water distribution in developing rice caryopses grown under high-temperature stress. J Cereal Sci. 2009;50(2):166–174.
  • Tabata M, Hirabayashi H, Takeuchi Y, et al. Mapping of quantitative trait loci for the occurrence of White-Back kernels associated with high temperatures during the ripening period of rice (Oryza sativa L.). Breed Sci. 2007;57(1):47–52.
  • Suriyasak C, Harano K, Tanamachi K, et al. Reactive oxygen species induced by heat stress during grain filling of rice (Oryza sativa L.) are involved in occurrence of grain chalkiness. J Plant Physiol. 2017;216:52–57.
  • Tanaka N, Fujita N, Nishi A, et al. The structure of starch can be manipulated by changing the expression levels of starch branching enzyme IIb in rice endosperm. Plant Biotechnol J. 2004;2(6):507–516.
  • Ohdan T, Sawada T, Nakamura Y. Effects of temperature on starch branching enzyme properties of rice. J Appl Glycosci. 2010;58(1):19–26.
  • Asatsuma S, Sawada C, Kitajima A, et al. α-Amylase affects starch accumulation in rice grains. J Appl Glycosci. 2006;53(3):187–192.
  • Hakata M, Kuroda M, Miyashita T, et al. Suppression of α-amylase genes improves quality of rice grain ripened under high temperature. Plant Biotechnol J. 2012;10(9):1110–1117.
  • Tanaka H, Matsumura S, Ishikawa K, et al. Enhancement of ethanol production and cell growth in budding yeast by direct irradiation of low-temperature plasma. JPN J Appl Phys. 2022;61(SA):SA1007.

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