研究报告

不同种植模式对水稻籽粒淀粉含量及淀粉关键酶活性的影响

展开
  • 1.宁夏大学 农学院, 银川 750021
    2.宁夏农林科学院 农作物研究所, 银川 750021
    3.宁夏中卫市农业技术推广与培训中心, 宁夏 中卫 755000
    4.宁夏回族自治区原种场, 宁夏 贺兰 750200

收稿日期: 2023-09-18

  修回日期: 2024-02-01

  网络出版日期: 2024-05-13

基金资助

宁夏农林科学院科技创新引导项目(NKYJ-20-06);宁夏农林科学院对外合作项目(DW-X-2018001);宁夏回族自治区水稻育种专项(2018NYYZ03002);2020年宁夏回族自治区青年拔尖人才培养工程资助项目

Effects of Planting Patterns on Starch Content and Activities of Key Starch Enzymes in Rice Grains

Expand
  • 1. College of Agriculture, Ningxia University, Yinchuan 750021, China
    2. Ningxia Academy of Agriculture and Forestry Research Institute, Yinchuan 750021, China
    3. Ningxia Zhongwei Agricultural Technology Popularization and Training Center, Zhongwei 755000, China
    4. Ningxia Hui Autonomous Region Original Seed Farm, Helan 750200, China

Received date: 2023-09-18

  Revised date: 2024-02-01

  Online published: 2024-05-13

摘要

【目的】研究不同种植方式对水稻籽粒淀粉形成及关键酶活性的影响,为宁夏水稻直播栽培技术提供参考。【方法】2020-2021年在宁夏回族自治区原种场,选取富源四号(FY4)、宁粳28号(NJ28)、宁粳43号(NJ43)和宁粳50号(NJ50)为试验材料,设置保墒旱直播(Z1)、旱播后上水(Z2)以及插秧(Z3)三种种植方式,采用裂区设计,研究不同种植方式对水稻产量、淀粉含量及关键酶活性的影响。【结果】不同种植方式下,直播稻具有更高的直链淀粉和总淀粉含量,插秧稻具有更高的支链淀粉含量,总淀粉含量表现为Z2>Z1>Z3,支链淀粉含量表现为Z3>Z2>Z1。2021年Z1种植方式下 NJ28直链淀粉含量最高达到21.90%,Z3种植方式下 NJ28支链淀粉含量最高达到51.64%。籽粒淀粉合成积累主要与淀粉合成关键酶活性有关,与Z3相比,Z1和Z2显著降低了AGP和GBSS活性;插秧显著提高了FY4和NJ43的UGP和SBE活性,直播显著提高了NJ28和NJ50的UGP和SBE活性;不同种植方式下,Z1对SSS活性的提高更显著。在Z3种植方式下,NJ43的AGP活性最大值为28.53 U/(g·min),较Z2和Z1提高了4.1%和8.4%,NJ28的GBSS活性最大值为10.36 U/(g·min),较Z2和Z1处理提高了11.2%和13.5%。在Z1种植方式下,NJ50的SSS活性最大值为20.05 U/(g·min)。与插秧稻相比,直播稻千粒重和结实率显著高于插秧稻,但直播稻穗长和穗粒数显著降低,使得插秧稻产量均显著高于直播稻。2020年Z3种植方式下NJ50 产量高达898 kg/666.7m2,较Z1和Z2高了30.7%和39.4%。【结论】与插秧种植相比直播方式下水稻产量降低,但直播处理显著提高千粒重以及结实率,同时直播方式可以提高水稻籽粒淀粉形成关键酶的活性,增加直链淀粉含量,使得水稻籽粒总淀粉含量增加。

本文引用格式

周甜, 吴少华, 康建宏, 吴宏亮, 杨生龙, 王星强, 李昱, 黄玉峰 . 不同种植模式对水稻籽粒淀粉含量及淀粉关键酶活性的影响[J]. 中国水稻科学, 2024 , 38(3) : 303 -315 . DOI: 10.16819/j.1001-7216.2024.230908

Abstract

【Objective】 The objective of this study was to investigate the effects of different planting methods on starch formation and key enzyme activities in rice grains, aiming to provide insights for improving direct seeding techniques for rice cultivation in Ningxia Hui Autonomous Region.【Methods】 The experiment was conducted at the original seed farm of Ningxia Hui Autonomous Region from 2020 to 2021. Fuyuan 4 (FY4), Ningjing 28 (NJ28), Ningjing 43 (NJ43), and Ningjing 50 (NJ50) were selected as experimental materials. Soil moisture conservation, dry direct seeding (Z1), watering after sowing (Z2), and transplanting (Z3) were chosen as planting methods. A split-zone design was employed to study the effects of planting methods on rice yield, starch content, and key enzyme activities.【Results】 Under different planting methods, direct-seeded rice exhibited higher amylose content and total starch content, while transplanted rice showed higher amylopectin content. The total starch content followed the order: Z2 > Z1 > Z3, while the amylopectin content followed the order: Z3 > Z2 > Z1. In 2021, the highest amylose content of NJ28 under Z1 planting mode was 21.90%, while the highest amylopectin content of NJ28 under Z3 planting mode was 51.64%. Starch synthesis and accumulation in grains are primarily influenced by the activity of key enzymes in starch synthesis. Compared to Z3, Z1 and Z2 significantly reduced the activities of AGP and GBSS. Transplanting notably increased UGP and SBE activities of FY4 and NJ43, while direct seeding increased UGP and SBE activities of NJ28 and NJ50. Additionally, under different planting methods, Z1 significantly increased the activity of SSS enzyme. Under Z3 planting mode, the maximum AGP activity of NJ43 was 28.53 U·g-1·min-1, which was 4.1% and 8.4% higher than that of Z2 and Z1, the maximum GBSS activity of NJ28 was 10.36 U·g-1·min-1, which was 11.2% and 13.5% higher than that of Z2 and Z1 treatment respectively. Similarly, under Z1 planting mode, the maximum SSS activity of NJ50 was 20.05 U·g-1·min-1. Moreover, compared to transplanted rice, the 1000-grain weight and seed setting rate of directly seeded rice were significantly higher, although the panicle length and grain number were lower. Consequently, the yield of transplanted rice was significantly higher than that of directly seeded rice. In 2020, the yield of NJ50 under Z3 planting mode reached 898 kg/666.7 m2, which was 30.7% and 39.4% higher than that of Z1 and Z2, respectively.【Conclusion】 The findings indicate that while the yield of rice under direct seeding was lower compared to transplanting, the 1000-grain weight and seed setting rate were significantly increased by direct seeding. Additionally, direct seeding led to higher activity of key enzymes involved in starch formation and increased amylose content in rice grains, consequently enhancing the total starch content in rice grains.

参考文献

[1] 朱德峰, 张玉屏, 陈惠哲, 王亚梁. 中国水稻栽培技术发展与展望[J]. 中国稻米, 2021, 27(4): 45-49.
  Zhu D F, Zhang Y P, Chen H Z, Wang Y L. Development and prospect of rice cultivation techniques in China[J]. China Rice, 2021, 27(4): 45-49. (in Chinese with English abstract)
[2] 吴汉, 吴含, 钱娜, 柯健, 郭爽爽. 江淮地区不同灌溉与种植方式对水稻产量及水分利用效率的影响[J]. 灌溉排水学报, 2022, 41(6): 39-46.
  Wu H, Wu H, Qian N, Ke J, Guo S S. Effects of different irrigation and plantingpatterns on rice yield and water use efficiency in Jianghuai region[J]. Journal of Irrigation and Drainage, 2022, 41(6): 39-46. (in Chinese with English abstract)
[3] Liu H, Hussain S, Zheng M, Peng S, Huang J, Cui K, Nie L. Dry direct-seeded rice as an alternative to transplanted-flooded rice in Central China[J]. Agronomy for Sustainable Development, 2015, 35(1): 285-294.
[4] 张洪程, 胡雅杰, 杨建昌, 戴其根, 霍中洋, 许轲, 魏海燕, 高辉, 郭保卫, 邢志鹏, 胡群. 中国特色水稻栽培学发展与展望[J]. 中国农业科学, 2021, 54(7): 1301-1321.
  Zhang H C, Hu Y J, Yang J C, Dai Q G, Huo Z Y, Xu K, Wei H Y, Gao H, Guo B W, Xing Z P, Hu Q. Development and prospect of rice cultivation with Chinese characteristics[J]. Scientia Agricultura Sinica, 2021, 54(7): 1301-1321. (in Chinese with English abstract)
[5] 轧宗杰, 卢树昌, 侯琨. 水稻旱直播栽培发展现状、问题及应用前景[J]. 作物杂志, 2020(2): 9-15.
  Gan Z J, Lu S C, Hou K. Development status, problems and application prospect of dry direct seeding cultivation of rice[J]. Crops, 2020, 36(2): 9-15. (in Chinese with English abstract)
[6] 唐荣莉, 唐兴隆, 张巫军, 段秀建, 李经勇, 姚雄. 丘陵山区单季中稻不同种植方式的经济与生态可持续性评估[J]. 中国生态农业学报, 2023, 31(1): 90-101.
  Tang R L, Tang X L, Zhang W J, Duan X J, Li J Y, Yao X. Evaluation of economic and ecological sustainability of different planting patterns of single cropping medium rice in hilly and mountainous areas[J]. Chinese Journal of Eco-Agriculture, 2023, 31(1): 90-101. (in Chinese with English abstract)
[7] 匡炜, 魏征, 戴力, 赵杨, 梁玉刚, 罗先富, 张玉烛, 方宝华. 不同种植方式对双季稻生育期及产量的影响[J]. 华北农学报, 2022, 37(6): 142-149.
  Kuang W, Wei Z, Dai L, Zhao Y, Liang Y G, Luo X F, Zhang Y C, Fang B H. Effects of different planting patterns on growth period and yield of double cropping rice[J]. Acta Agriculturae Boreali-Sinica, 2022, 37(6): 142-149. (in Chinese with English abstract)
[8] 张晓丽, 陶伟, 高国庆, 陈雷, 郭辉, 张华, 唐茂艳, 梁天锋. 直播栽培对双季早稻生育期、抗倒伏能力及产量效益的影响[J]. 中国农业科学, 2023, 56(2): 249-263.
  Zhang X L, Tao W, Gao G Q, Chen L, Guo Hi, Zhang H, Tang M Y, Liang T F. Effects of direct seeding cultivation on growth period, lodging resistance and yield benefit of double cropping early rice[J]. Scientia Agricultura Sinica, 2023, 56(2): 249-263. (in Chinese with English abstract)
[9] 孙永健, 郑洪帧, 徐徽, 杨志远, 贾现文, 程洪彪, 马均. 机械旱直播方式促进水稻生长发育提高产量[J]. 农业工程学报, 2014, 30(20): 10-18.
  Sun Y J, Zheng H F, Xu H, Jerry Y, Jia X W, Cheng H B, Ma J. Mechanical dry direct seeding promotes the growth and development of rice and increases its yield.[J]. Transactions of the Chinese Society of Agricultural Engineering, 2014, 30(20): 10-18. (in Chinese with English abstract)
[10] Verma D K, Srivastav P P. Isolation, modification, and characterization of rice starch with emphasis on functional properties and industrial application: A review[J]. Critical Reviews in Food Science and Nutrition, 2022, 62(24): 6577-6604.
[11] Gilbert R G, Witt T, Hasjim J. What is being learned about starch properties from multiple-level characterization[J]. Cereal Chemistry, 2013, 90(4): 312-325.
[12] 彭立功, 龚静, 兰艳, 王锦, 隋晓东, 丁春邦, 李天. 水分胁迫对宜香优2115籽粒淀粉合成及产量的影响[J]. 华北农学报, 2021, 36(5): 77-86.
  Peng L G, Gong J, Lan Y, Wang J, Sui X D, Ding C B, Li T. Effects of water stress on starch synthesis and yield of Yixiangyou 2115[J]. Acta Agriculturae Boreali-Sinica, 2021, 36(5): 77-86. (in Chinese with English abstract)
[13] 赵宏伟, 吕艳超, 许晶, 夏楠, 贾琰, 邹德堂. 施氮量对盐胁迫下寒地粳稻籽粒淀粉积累及相关酶活性的影响. 东北农业大学学报, 2015, 46(8): 1-8.
  Zhao H W, Lu Y C, Xu J, Xia N, Jia J, Zou D T. Effects of nitrogen application rate on grain starch accumulation and related enzyme activities of japonica rice under salt stress[J]. Journal of Northeast Agricultural University, 2015, 46(8): 1-8. (in Chinese with English abstract)
[14] 程方民, 蒋德安, 吴平, 石春海. 早籼稻籽粒灌浆过程中淀粉合成酶的变化及温度效应特征[J]. 作物学报, 2001(2): 201-206.
  Cheng F M, Jiang D, Wu P, Shi C H. Changes of starch synthase and characteristics of temperature effect during grain filling in early indica rice[J]. Acta Agronomica Sinica, 2001(2): 201-206.
[15] Doehlert D C, Kuo T M, Felker F C. Enzymes of sucrose and hexose metabolism in developing kernels of two inbreds of maize[J]. Plant Physiology (Bethesda), 1988, 86(4): 1013-1019.
[16] Nakamura Y N I O, Yuki K, Park S Y, Ohya T. Carbohydrate metabolism in the developing endosperm of rice grains[J]. Plant Cell Physiology, 1989, 30(6): 833-839.
[17] 李太贵, 沈波, 陈能, 罗玉坤. Q酶在水稻籽粒垩白形成中作用的研究[J]. 作物学报, 1997(3): 338-344.
  Li T G, Shen B, Chen N, Luo Y K. Study on the role of Q enzyme in the formation of rice grain chalkiness[J]. Acta Agronomica Sinica, 1997, 23(3): 338-344. (in Chinese with English abstract)
[18] 雷振山, 李猛, 卫云飞, 季新, 刘娟, 王付娟, 刘秋员. 不同种植方式对豫南地区优质食味粳稻产量及品质的影响[J]. 河南农业科学, 2023, 52(2): 12-20.
  Lei Z S, Li M, Wei Y F, Ji X, Liu J, Wang F J, Liu Q J. Effects of different planting patterns on yield and quality of high-quality taste japonica rice in southern Henan[J]. Journal of Henan Agricultural Sciences, 2023, 52(2): 12-20. (in Chinese with English abstract)
[19] 胡雅杰, 薛建涛, 吴培, 李娈, 丛舒敏, 余恩唯, 倪嘉颢, 张洪程. 施氮量和直播密度对稻米食味品质和淀粉结构的影响[J]. 中国粮油学报, 2022, 37(2): 7-13.
  Hu Y J, Xue J T, Wu P, Li L, Cong S M, Yu E W, Ni J H, Zhang H C. Effects of nitrogen application rate and direct seeding density on eating quality and starch structure of rice[J]. Journal of the Chinese Cereals and Oils Association, 2022, 37(2): 7-13. (in Chinese with English abstract)
[20] Wang W, Peng S, Liu H, Tao Y, Huang J, Cui K, Nie L. The possibility of replacing puddled transplanted flooded rice with dry seeded rice in central China: A review[J]. Field Crop Research, 2017, 214: 310-320.
[21] 刘东华. 干旱胁迫对稻谷品质性状及W_X基因表达的影响[D]. 武汉: 华中农业大学, 2014.
  Liu D H. Effects of drought stress on grain quality traits and Wendy X gene expression in rice[D]. Wuhan: Huazhong Agricultural University, 2014. (in Chinese with English abstract)
[22] 陈婷婷, 许更文, 钱希旸, 王志琴, 张耗, 杨建昌. 花后轻干-湿交替灌溉提高水稻籽粒淀粉合成相关基因的表达[J]. 中国农业科学, 2015, 48(7): 1288-1299.
  Chen T T, Xu G W, Qian X Y, Wang Z Q, Zhang H, Yang J C. Light dry-wet alternate irrigation after anthesis increased the expression of genes related to starch synthesis in rice grains[J]. Scientia Agricultura Sinica, 2015, 48(7): 1288-1299. (in Chinese with English abstract)
[23] 王维, 蔡一霞, 蔡昆争, 张建华, 杨建昌, 朱庆森. 水分胁迫对贪青水稻籽粒充实及其淀粉合成关键酶活性的影响[J]. 作物学报, 2006(7): 972-979.
  Wang W, Cai Y X, Cai K Z, Zhang J H, Yang J C, Zhu Q S. Effects of Water stress on Grain filling and activities of key enzymes in starch synthesis of greedy green rice[J]. Acta Agronomica Sinica, 2006(7): 972-979. (in Chinese with English abstract)
[24] 韩燕, 徐亚楠, 宋吉青, 柳斌辉, 韩伟, 斋藤信, 白文波. 轻度干热风条件下喷施复合寡糖提高冬小麦叶片生理活性和籽粒淀粉合成关键酶活性[J]. 植物营养与肥料学报, 2022, 28(12): 2324-2333.
  Han Y, Xu Y N, Song J Q, Liu B H, Han W, Saito S, Bai W B. Spraying compound oligosaccharides under mild dry and hot air conditions increased the physiological activities of winter wheat leaves and the activities of key enzymes in grain starch synthesis. Journal of Plant Nutrition and Fertilizers, 2022, 28(12): 2324-2333. (in Chinese with English abstract)
[25] 王春雨, 余华清, 何艳, 郭长春, 张绍文, 杨志远, 马均. 播栽方式与施氮量对杂交籼稻氮肥利用特征及产量的影响[J]. 中国生态农业学报, 2017, 25(12): 1792-1801.
  Wang C Y, Yu H Q, He Y, Guo C C, Zhang S W, Yang Z Y, Ma J. Effects of sowing methods and nitrogen application rates on nitrogen utilization characteristics and yield of Indica Hybrid Rice[J]. Chinese Journal of Eco-Agriculture, 2017, 25(12): 1792-1801. (in Chinese with English abstract)
[26] 唐志强, 张丽颖, 何娜, 马作斌, 赵明珠, 王昌华, 郑文静, 银永安, 王辉. 机械旱直播对水稻生育进程、光合特性及产量的影响[J]. 作物杂志, 2021(5): 87-94.
  Tang Z Q, Zhang L Y, He N, Ma Z B, Zhao M Z, Wang C H, Zheng W J, Yin Y A, Wang H. Effects of mechanical dry direct seeding on growth process, photosynthetic characteristics and yield of rice[J]. Crops, 2021, (5): 87-94. (in Chinese with English abstract)
[27] 徐令旗, 郭晓红, 张佳柠, 赵洋, 李晓蕾, 刘绍峰, 崔致远, 安懿亮, 吕艳东. 不同有机肥对旱直播水稻品质的影响[J]. 华北农学报, 2022, 37(1): 137-146.
  Xu L Q, Guo X H, Zhang J N, Zhao Y, Li X L, Liu S F, Cui Z Y, An Y L, Lü Y D. Effects of different organic fertilizers on the quality of dry direct seeding rice[J]. Acta Agriculturae Boreali-Sinica, 2022, 37 (1): 137-146. (in Chinese with English abstract)
[28] 徐令旗, 郭晓红, 兰宇辰, 崔致远, 张佳柠, 吕艳东. 不同有机肥对旱直播水稻干物质积累和产量的影响[J]. 华北农学报, 2021, 36(2): 188-195
  Xu L Q, Guo X H, Lan Y C, Cui Z Y, Zhang J N, Lu Y D. Effects of different organic fertilizers on dry matter accumulation and yield of dry direct seeding rice[J]. Acta Agriculturae Boreali-Sinica, 2021, 36(2): 188-195. (in Chinese with English abstract)
文章导航

/

浙ICP备05004719号-5
公安备案号:33010302003356
地址:浙江省杭州市富阳区水稻所路28号 邮编:311400 电话:0571-63370278 E-mail:cjrs@263.net
本系统由北京玛格泰克科技发展有限公司设计开发
总访问量: 今日访问: 在线人数: