Scientia Agricultura Sinica ›› 2014, Vol. 47 ›› Issue (19): 3757-3768.doi: 10.3864/j.issn.0578-1752.2014.19.004

• TILLAGE & CULTIVATION·PHYSIOLOGY & BIOCHEMISTRY·AGRICULTURE INFORMATION TECHNOLOGY • Previous Articles     Next Articles

Investigation of Endosperm Cell Development of Different Rice Varieties

LI Dong-liang, LI Xiao-gang, GU Yun-jie, WANG Zhong   

  1. College of Bioscience and Biotechnology, Yangzhou University/Jiangsu Key Laboratory of Crop Genetics and Physiology/Key Laboratory of Crop Physiology, Ecology and Cultivation in Middle and Lower Reaches of Yangtze River of Ministry of Agriculture, Yangzhou 225009
  • Received:2013-12-16 Revised:2014-03-31 Online:2014-10-01 Published:2014-10-01

Abstract: 【Objective】The objective of this research is to clarify the difference of rice endosperm of different varieties during the development process.【Method】Four rice varieties, Nipponbare, Yangdao 6, Wuyunuo16 and Yangfunuo 4 were used as the experimental materials, and their caryopsis development days precisely were precisely recorded and their caryopsis development was closely observed. Starch accumulation and physiological activities were observed by I2-KI and TTC staining. Structure changes of rice starch endosperm cells were observed by applying spur resin embedding and semi-thin sectioning, and light microscopy. The ultrastructure and element analysis of full ripe rice caryopsis were observed under scanning electron microscope and EDS. 【Result】Four stages occurred in caryopses development of all the rice varieties tested: formation stage, milky stage, dough stage, and full maturity stage. Compared to development stages of the endosperm, formation stage runs in parallel to the coenocyte and cellurization stages, which are the initial stage of endosperm formation; milky stage corresponds to the differentiation stage of endosperm cells, while the last two stages, dough and full maturity stages, are equivalent to that of the endosperm maturity stage. The shape of two rice sub subspecies, japonica and indica, varies significantly. Of the four rice varieties tested, two indica varieties showed a relatively faster growth rate than two japonica cultivars; Wuyunuo16 and Yangfunuo 4 had almost identical growth rate of dry matter accumulation. Nuclei of starch endosperm cells degenerated with the extension of amyloplasts, while amyloplasts were still enlarging and growing. Amyloplasts in the endosperm cells were compound granules, and their development pattern possibly affected a certain quality of endosperm. Amyloplast in endosperm cells was spherical or elliptic in shape during early developmental stage, but turns to polyhydric during the late development stage. Two glutinous rice cultivars tended to have a loosely stacked endosperm and as a result, caused the appearance to be less transparent. Aleurone cell volume of two indica cultivars were bigger than japonica ones, mature aleurone cells were rich in minerals like P, K, Mg, and S. Cultivar Yangfunuo 4 had some single amyloplast detected in aleurone cells and, showed a higher level of O element content.【Conclusion】The development of starchy endosperm is autonomous and is independent of the existence of endosperm nuclei. The two non-glutinous rice cultivars have a more densely packed endosperm, The types of starch contents in cells from scutellum, pericarp and endosperm are relatively distinct in two glutinous rice cultivars, which stresses the disparate set of mechanism of starch synthesis between maternal tissue, endosperm and embryo.

Key words: rice, endosperm, amyloplast, aleurone, indica, japonica

[1] 程式华. 中国超级稻育种技术的创新与发展. 作物杂志, 2012(6): 1-3.
Cheng S H. Innovation and development of techniques for super-rice breeding in China. Crops, 2012(6): 1-3. (in Chinese)
[2] Hoshikawa K. Studies of the development of endosperm in rice 1.process of endosperm tissue formation. Japanese Journal of Crop Science, 1967, 36: 151-161.
[3] Hoshikawa K. Studies of the development of endosperm in rice 2.process of endosperm tissue formation with special reference to the enlargement of cells. Japanese Journal of Crop Science, 1967, 36: 203-209.
[4] Hoshikawa K. Studies of the development of endosperm in rice 3.observations on the cell division. Japanese Journal of Crop Science, 1967, 36: 210-215.
[5] Hoshikawa K. Studies of the development of endosperm in rice 4.differentiation and development of the aleurone layer. Japanese Journal of Crop Science, 1967, 36: 216-220.
[6] Hoshikawa K. Studies of the development of endosperm in rice 10.electron microscopic studies on the development of starch granules in the endosperm cells. Japanese Journal of Crop Science, 1968, 37: 97-106.
[7] 瞿波, 徐运启, 傅丽霞. 品质不同的稻米胚乳细胞形态特征的扫描电镜观察. 华中农业大学学报, 1991, 10(4): 404-408.
Qu B, Xu Y Q, Fu L X. Identification to quality of rice grain with scanning electron microscope. Journal of Huazhong Agriculture University, 1991, 10(4): 404-408. (in Chinese)
[8] 沈波, 陈能, 李太贵. 温度对早籼稻米垩白发生与胚乳物质形成的影响. 中国水稻科学, 1997, 11(3): 183-186.
Shen B, Chen N, Li T G. Effects of temperature on rice chalkiness formation and changes of material in endosperm. Chinese Journal of Rice Science, 1997, 11(3): 183-186. (in Chinese)
[9] 王忠, 顾蕴洁, 郑彦坤. 水稻胚乳细胞发育的结构观察及其矿质元素分析. 中国水稻科学, 2012, 26(6): 693-705.
Wang Z, Gu Y J, Zheng Y K. Structure observation of rice endosperm cell development and its mineral element analysis. Chinese Journal of Rice Science, 2012, 26(6): 693-705(in Chinese)
[10] 熊洁, 耿春苗, 丁艳锋. 不同库容类型杂交早籼稻品种源库结构对垩白的影响. 中国农业科学, 2011, 44(19): 3970-3980.
Zhou L H , Liu Q Q, Ding Y F. A difference in source-sink structure and chalky grain in early indica rice cultivars with different sink-potentials. Scientia Agricultura Sinica, 2011, 44(19): 3970-3980. (in Chinese)
[11] 阎丽娜, 李霞, 吴丹. 不同类型水稻材料成熟胚组织培养力的比较. 中国农业科学,  2010, 43(6): 1127-1135.
Yan L N, Li X, Wu D. Comparison in tissue culture ability from mature embryo in different rice cultivars. Scientia Agricultura Sinica, 2010, 43(6): 1127-1135. (in Chinese)
[12] Dai X J, Yang Y Z, Zhou L, Ou L J, Liang M Z, Li W Z, Kang G P, Chen L B. Analysis of indica-and japonica-specific markers of Oryza sativa and their applications. Plant Systematics and Evolution, 2012, 298(2): 287-296.
[13] Ouyang Y. Reproductive isolation between indica and japonica subspecies//Genetics and Genomics of Rice. Springer New York, 2013: 317-328.
[14] Lu B R, Cai X, Xin J. Efficient indica and japonica rice identification based on the InDel molecular method: Its implication in rice breeding and evolutionary research. Progress in Natural Science, 2009, 19(10): 1241-1252.
[15] Ishimaru T, Matsuda T, Ohsugi R, Yamagishi T. Morphological development of rice caryopses located at the different positions in a panicle from early to middle stage of grain filling. Functional Plant Biology, 2003, 30: 1139-1149.
[16] 王忠, 李卫芳, 顾蕴洁. 水稻胚乳的发育及其养分输入的途径. 作物学报, 1995, 21(5): 520-527.
Wang Z, Li W F, Gu Y J. Development of rice endosperm and the pathway of nutrients entering the endosperm. Acta Agronomica Sinica, 1995, 21(5): 520-527. (in Chinese)
[17] Olsen O A. Nuclear endosperm development in cereals and Arabidopsis thaliana. The Plant Cell Online, 2004, 16(Suppl 1): S214-S227.
[18] 柳敏, 王忠, 顾蕴洁. 有色稻颖果的发育和色素沉积. 中国水稻科学, 2011, 25(4): 392-398.
Liu M, Wang Z, Gu Y J. Caryopsis development and anthocyanidin accumulation of colored rice. Chinese Journal of Rice Science, 2011, 25(4): 392-398. (in Chinese)
[19] 陈义芳, 顾蕴洁, 王忠. 四个不同粒重水稻品种颖果发育的比较. 中国水稻科学, 2009, 23(4): 405-413.
Chen Y F, Gu Y J, Wang Z. Difference in caryopsis development among four rice varieties differing in grain weight. Chinese Journal of Rice Science, 2009, 23(4): 405-413. (in Chinese)
[20] Olsen O A, Brow R C, Lemmon B E. Pattern and process of wall formation in developing endosperm. Bioassay, 1995, 17: 803-812.
[21] Olsen O A. Endosperm development. Plant Ce11, 1998, 10: 485-488.
[22] 李睿, 蓝盛银, 徐珍秀. 水稻淀粉胚乳细胞发育期间程序性死亡的研究. 中国农业科学, 2004, 37(8): 1112-1119.
Li R, Lan S Y, Xu Z X. Studies on the programmed cell death in rice during starchy endosperm development. Scientia Agricultura Sinica, 2004, 37(8): 1112-1119. (in Chinese)
[23] Wei C X, Lan S Y, Xu Z X. Ultrastructural features of nucleus degradation during PCD of starchy endosperm cells in rice. Acta Botanica Sinica, 2002, 44: 1396-1402.
[24] Van Doorn W G, Beers E P, Dangl J L, Franklin-Tong V E, Gallois P, Hara-Nishimura I, Jones A M, Kawai-Yamada M, Lam E, Mundy J, Mur L A, Petersen M, Smertenko A, Taliansky M, Van Breusegem F, Wolpert T, Woltering E, Zhivotovsky B, Bozhkov P V. Morphological classification of plant cell deaths. Cell Death & Differentiation, 2011, 18(8): 1241-1246.
[25] Gaynor J J, Galston A W. Purification and characterization of amyloplast from etiolated epicoltyls of Pisum sativum. Plant Cell Physiology, 1983, 24: 411-421.
[26] 陈建敏, 孙德兰. 淀粉质体遗传研究的现状与展望. 植物遗传资源学报, 2008, 9(2): 258-262.
Chen J M, Sun D L. Current researches and prospect of amyloplast inheritance. Journal of Plant Genetic Resources, 2008, 9(2): 258-262. (in Chinese)
[27] 孙德兰, 董云洲. 几种植物贮藏器官淀粉质体蛋白质和总蛋白质的电泳分析. 武汉植物学研究, 1999, 17(4): 375-377.
Sun D L, Dong Y Z. Analysis of electrophoretic pattern of amyloplast protein and total protein in plant store organs. Journal of Wuhan Botanical Research, 1999, 17(4): 375-377. (in Chinese)
[28] 孙德兰. 莲幼胚子叶细胞造淀粉体DNA的动态变化. 植物学报, 1990, 32(5): 355-360.
Sun D L. Dynamic change of amyloplast DNA in developing cotyledon cells of lotus. Acta Botanica Sinica, 1990, 32(5): 355-360. (in Chinese)
[29] Friedman W E. The evolution of double fertilization and endosperm: an “historical” perspective. Sexual Plant Reproduction, 1998, 11(1): 6-16.
[30] Beckles D M, Smith A M, Rees T. A cytosolic ADP-glucose pyrophosphorylase is a feature of graminaceous endosperms, but not of other starch-storing organs. Plant Physiology, 2001, 125(2): 818-827.
[31] Li L, Blanco M, Jane J. Physicochemical properties of endosperm and pericarp starches during maize development. Carbohydrate Polymers, 2007, 67(4): 630-639.
[32] Kladnik A, Chourey P S, Pring D R, Dermastia M. Development of the endosperm of Sorghum bicolor during the endoreduplication -associated growth phase. Journal of Cereal Science, 2006, 43(2): 209-215.
[1] XIAO DeShun, XU ChunMei, WANG DanYing, ZHANG XiuFu, CHEN Song, CHU Guang, LIU YuanHui. Effects of Rhizosphere Oxygen Environment on Phosphorus Uptake of Rice Seedlings and Its Physiological Mechanisms in Hydroponic Condition [J]. Scientia Agricultura Sinica, 2023, 56(2): 236-248.
[2] ZHANG XiaoLi, TAO Wei, GAO GuoQing, CHEN Lei, GUO Hui, ZHANG Hua, TANG MaoYan, LIANG TianFeng. Effects of Direct Seeding Cultivation Method on Growth Stage, Lodging Resistance and Yield Benefit of Double-Cropping Early Rice [J]. Scientia Agricultura Sinica, 2023, 56(2): 249-263.
[3] ZHANG Wei,YAN LingLing,FU ZhiQiang,XU Ying,GUO HuiJuan,ZHOU MengYao,LONG Pan. Effects of Sowing Date on Yield of Double Cropping Rice and Utilization Efficiency of Light and Heat Energy in Hunan Province [J]. Scientia Agricultura Sinica, 2023, 56(1): 31-45.
[4] FENG XiangQian,YIN Min,WANG MengJia,MA HengYu,CHU Guang,LIU YuanHui,XU ChunMei,ZHANG XiuFu,ZHANG YunBo,WANG DanYing,CHEN Song. Effects of Meteorological Factors on Quality of Late Japonica Rice During Late Season Grain Filling Stage Under ‘Early Indica and Late Japonica’ Cultivation Pattern in Southern China [J]. Scientia Agricultura Sinica, 2023, 56(1): 46-63.
[5] SANG ShiFei,CAO MengYu,WANG YaNan,WANG JunYi,SUN XiaoHan,ZHANG WenLing,JI ShengDong. Research Progress of Nitrogen Efficiency Related Genes in Rice [J]. Scientia Agricultura Sinica, 2022, 55(8): 1479-1491.
[6] GUI RunFei,WANG ZaiMan,PAN ShengGang,ZHANG MingHua,TANG XiangRu,MO ZhaoWen. Effects of Nitrogen-Reducing Side Deep Application of Liquid Fertilizer at Tillering Stage on Yield and Nitrogen Utilization of Fragrant Rice [J]. Scientia Agricultura Sinica, 2022, 55(8): 1529-1545.
[7] LIAO Ping,MENG Yi,WENG WenAn,HUANG Shan,ZENG YongJun,ZHANG HongCheng. Effects of Hybrid Rice on Grain Yield and Nitrogen Use Efficiency: A Meta-Analysis [J]. Scientia Agricultura Sinica, 2022, 55(8): 1546-1556.
[8] HAN XiaoTong,YANG BaoJun,LI SuXuan,LIAO FuBing,LIU ShuHua,TANG Jian,YAO Qing. Intelligent Forecasting Method of Rice Sheath Blight Based on Images [J]. Scientia Agricultura Sinica, 2022, 55(8): 1557-1567.
[9] GAO JiaRui,FANG ShengZhi,ZHANG YuLing,AN Jing,YU Na,ZOU HongTao. Characteristics of Organic Nitrogen Mineralization in Paddy Soil with Different Reclamation Years in Black Soil of Northeast China [J]. Scientia Agricultura Sinica, 2022, 55(8): 1579-1588.
[10] ZHU DaWei,ZHANG LinPing,CHEN MingXue,FANG ChangYun,YU YongHong,ZHENG XiaoLong,SHAO YaFang. Characteristics of High-Quality Rice Varieties and Taste Sensory Evaluation Values in China [J]. Scientia Agricultura Sinica, 2022, 55(7): 1271-1283.
[11] ZHAO Ling, ZHANG Yong, WEI XiaoDong, LIANG WenHua, ZHAO ChunFang, ZHOU LiHui, YAO Shu, WANG CaiLin, ZHANG YaDong. Mapping of QTLs for Chlorophyll Content in Flag Leaves of Rice on High-Density Bin Map [J]. Scientia Agricultura Sinica, 2022, 55(5): 825-836.
[12] JIANG JingJing,ZHOU TianYang,WEI ChenHua,WU JiaNing,ZHANG Hao,LIU LiJun,WANG ZhiQin,GU JunFei,YANG JianChang. Effects of Crop Management Practices on Grain Quality of Superior and Inferior Spikelets of Super Rice [J]. Scientia Agricultura Sinica, 2022, 55(5): 874-889.
[13] ZHANG YaLing, GAO Qing, ZHAO Yuhan, LIU Rui, FU Zhongju, LI Xue, SUN Yujia, JIN XueHui. Evaluation of Rice Blast Resistance and Genetic Structure Analysis of Rice Germplasm in Heilongjiang Province [J]. Scientia Agricultura Sinica, 2022, 55(4): 625-640.
[14] WANG YaLiang,ZHU DeFeng,CHEN RuoXia,FANG WenYing,WANG JingQing,XIANG Jing,CHEN HuiZhe,ZHANG YuPing,CHEN JiangHua. Beneficial Effects of Precision Drill Sowing with Low Seeding Rates in Machine Transplanting for Hybrid Rice to Improve Population Uniformity and Yield [J]. Scientia Agricultura Sinica, 2022, 55(4): 666-679.
[15] CHEN TingTing, FU WeiMeng, YU Jing, FENG BaoHua, LI GuangYan, FU GuanFu, TAO LongXing. The Photosynthesis Characteristics of Colored Rice Leaves and Its Relation with Antioxidant Capacity and Anthocyanin Content [J]. Scientia Agricultura Sinica, 2022, 55(3): 467-478.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!