Scientia Agricultura Sinica ›› 2021, Vol. 54 ›› Issue (11): 2389-2405.doi: 10.3864/j.issn.0578-1752.2021.11.012

• HORTICULTURE • Previous Articles     Next Articles

A New Classification Standard for Different Grape Cluster Shapes and Investigation on Cluster Shape Dynamic Development Process

HUANG YuQing1(),SUN YanYan1(),LUO RongZheng1,Awangcuomu 1,LU SuWen1(),FAN XiuCai2,WANG Chen1,LIU ChongHuai2(),FANG JingGui1   

  1. 1College of Horticulture, Nanjing Agricultural University, Nanjing 210095
    2Zhengzhou Fruit Research Institute, Chinese Academy of Agricultural Sciences, Zhengzhou 450009
  • Received:2020-08-10 Accepted:2021-01-13 Online:2021-06-01 Published:2021-06-09
  • Contact: SuWen LU,ChongHuai LIU E-mail:2018104029@njau.edu.cn;541654994@qq.com;lusuwen@njau.edu.cn;liuchonghuai@caas.cn

Abstract:

【Objective】Grape is an important economic fruit tree, whose economic value was affected by the cluster shape. The study investigated the cluster development of 255 grape germplasm resources to establish a new classification standard including the detailed classification method of grape inflorescence and cluster shape, in order to provide new theoretical support for grape production. 【Method】The cluster length and width variation of 255 grape germplasm resources were tracked in the field. From three key growth periods (flowering, fruit expansion and fruit maturity), cluster length and width, six spikelet length and width, spikelet angle, fruit grain diameter, fruit grain weight and carpopodium length were measured to analyze the variation modes during dynamic development process of cluster shape. 【Result】According to the investigation of 255 grape germplasm resources, a new classification standard was established to divide the shape into long conical, short conical, long cylindrical and short cylindrical. It was found that 52.16% of inflorescence would change shape during the development process, and most of them was the long cylindrical inflorescence which could develop into short cylindrical cluster. Therefore, there were 16 cluster shape change types. The analysis of cluster length and width showed that the long conical cluster had high “stability” during the development process, and the length had more influence on shape for short conical, long cylindrical and short cylindrical clusters. Further investigation represented that the length, width and angle of spikelet, especially the top spikelet were the main factors affecting the outer edge of cluster shape. 【Conclusion】The study divided inflorescence and cluster shapes into four types: long cone, short cone, long cylinder and short cylinder, and a based classification standard was established. It was found through investigation that more than half of grape inflorescences changed in shape, of which the conical type was relatively stable. Cluster length and width, spikelet length, width and angle had more influence on shape change, which were reflected in the indicators and outer edge, especially the figures of top spikelet angle were the main affection to judge type. Spikelet angle variations reflected on the effective length in the shape. This study further proposed pruning method based on the shape of inflorescences and clusters, in order to provide theoretical basis for grape management.

Key words: Vitis vinifera, inflorescence, cluster, classification standard, shape change

Fig. 1

Frequency distribution of grape inflorescence length and width"

Fig. 2

Representative varieties of each grape inflorescence classification"

Fig. 3

Frequency distribution of grape cluster length and width"

Fig. 4

Representative varieties of each grape cluster classification"

Table 1

Classification table of quantitative characters of cluster in grape"

数量标准
Characteristic
分级 Grade
1 2 3 4 5
圆锥形果穗穗长 Length of conical cluster (mm) <110.90 110.90-139.94 139.94-180.19 180.19-209.23 >209.23
圆柱形果穗穗长 Length of cylindrical cluster (mm) <84.88 84.88-118.11 118.11-164.14 164.14-197.36 >197.36
圆锥形果穗穗宽 Width of conical cluster (mm) <78.93 78.93-100.77 100.77-131.02 131.02-152.86 >152.86
圆柱形果穗穗宽 Width of cylindrical cluster (mm) <61.80 61.80-80.86 80.86-107.27 107.27-126.32 >126.32

Table 2

The criteria for the classification of cluster shape"

果穗形状
Cluster shape
果穗长度
Cluster length (mm)
果穗长宽比
Cluster length-width ratio
短圆锥形
Short conical shape
≤125.42 不限 Not limited
125.43-160.07 ≤1.40
160.08-194.71 ≤1.37
长圆锥形
Long conical shape
125.43-160.07 >1.40
160.08-194.71 >1.37
>194.71 不限 Not limited
短圆柱形
Short cylindrical shape
≤141.12 不限 Not limited
长圆柱形
Long cylindrical shape
>141.12 不限 Not limited

Table 3

Classification table of quantitative characters of inflorescence in grape"

性状
Characteristic
分级 Grade
1 2 3 4 5
圆锥形花序长度Length of conical inflorescence (mm) <38.81 38.81-53.61 53.61-74.13 74.13-88.93 >88.93
圆柱形花序长度 Length of cylindrical inflorescence (mm) <26.11 26.11-39.50 39.50-58.05 58.05-71.45 >71.45
圆锥形花序宽度 Width of conical inflorescence (mm) <12.36 12.36-20.82 20.82-32.54 32.54-40.99 >40.99
圆柱形花序宽度 Width of cylindrical inflorescence (mm) <6.66 6.66-11.12 11.12-17.31 17.31-21.77 >21.77

Table 4

The criteria for the classification of inflorescence shape"

花序形状
Inflorescence shape
花序长度
Inflorescence length (mm)
花序长宽比
Inflorescence length-width ratio
短圆锥形
Short conical shape
≤46.21 不限 Not limited
46.22-63.87 ≤2.79
63.88-81.53 ≤2.22
长圆锥形
Long conical shape
46.22-63.87 >2.79
63.88-81.53 >2.22
>81.53 不限 Not limited
短圆柱形
Short cylindrical shape
≤48.78 不限 Not limited
长圆柱形
Long cylindrical shape
>48.78 不限 Not limited

Table 5

Shape changes of 255 grape germplasm resources"

发育类型 Development type 品种名 Species
长圆锥花序-长圆锥果穗
Long conical inflorescence-Long conical cluster
高墨 Takasumi、黑奥林 Black Olimpia、黑潮 Kuroshio、蜜尔紫 Mills、红山彦 Beniyamabiko、红香蕉 Hongxiangjiao、户太8号 Hutai 8 hao、11-39、京优 Jingyou、巨玫瑰 Jumeigui、申秀 Shenxiu、惠 Magumi、卡拉 Kapa、夕阳红 Xiyanghong、早熟黑虎香 Zhaoshuheihuxiang、白老虎眼 Bailaohuyan、紫玉 Shigyoku、白布瑞克 Baiburuike、格拉卡 Greaca、奥利文 Irsay oliver、芳香 Mathias Aromatic、粉红太妃 Fenhong taifei、耶克什拉尔♀ Yekeshenlaer♀、哈特巴尔♀ Хаталбаар、黑哈丽丽 Khalili Noir、齐基斯特娃拉 Qijisitewala、京可晶 Jingkejing、莱考德 Rekord、洛迪 Rodi、玫瑰香 Muscat Hamburg、尼姆兰格 Nimulange、普列文玫瑰 Miskat plevenski、胜利 Pobeda、8612 (3X)、乌兹别克玫瑰 Muscat Uzbekistan、艳红 Yanhong、洋葡萄 Yangputao、瑰宝 Guibao、黑伯尔科维尔 Берковчерно、依斯比沙里 Ispissar、圆白 Yuanbai、绯红 Cardinal、希姆劳特 Himrod Seedless、无核紫 Black Monukka、香妃 Xiangfei、紫丰 Zifeng、Thompson Seedless、巨魔光 Jumoguang、埃里求凡 Ailiqiufan、瓶儿 Pinger、库杜齐 Kuduqi、沙尔其 Зарцин、塔尔那乌 Тарнау、甲斐乙女 Kaiotome、Crimson Seedless、田野黑 Tano Black、黑峰 Darkridge、高蓓蕾 High Bailey、那多尔 Naduoer、奥拉皇后 Queenora Seedless、S.6059、盖吾沙 Gaiwusha、伊豆锦 Izunishiki、伊尔玛 Kocsis Irma
长圆锥花序-短圆锥果穗
Long conical inflorescence-Short conical cluster
依达 Ида、瑰香怡 Guixiangyi、美洲白 Meizhoubai、黑奥洛维 Heiaoluowei、花泽1号 Hanazawa 1#、花泽二号 Hanazawa 2#、黑别尔考夫 Берковско черно、京亚 Jingya、天秀 Tensyū、田野红 Tano Red、达米娜 Tamina、高尾 Takao、郁金香 Yujinxiang、京秀 Jingxiu、爱神玫瑰 Aishenmeigui、阿里兹考 Alizikao、天使玫瑰香 Muscat Angel、季米亚特 Димят、切克拉赫 Qiekelahe、克林巴马克 Khoussaine khelime barmak、火星无核 Mars Seedless
长圆锥花序-长圆柱果穗
Long conical inflorescence-Long cylindrical cluester
红义 Beniyoshi、柔丁香 Roudingxiang、高砂 Takasago、哈佛德 Hartford、索罗门 Madeleine Salomon、巨峰 Kyohō、早巨选 Shimomura Kyoho seedling、皇冠 Huangguan、阿米利亚 Amilia、比赛尔 Julsk Beaser、黑天鹅 Black Swan、粉红亚依苏娜 Fenhongyayisuna、凤凰51 Fenghuang 51 hao、卡托巴 Catawba、红马奶 Hongmanai、济南早红 Shandongzaohong、克里木考尼松♀ Kelimukaonisong♀、奥迪亚 Otilia、李子香 Lizixiang、绿木纳格 Lumunage、维多利亚 Victoria、早玛瑙 Zaomanao、郑州早玉 Zhengzhouzaoyu、皇家秋天 Autumn Royal、S.7053、夏白 Xiabai、德引84-1 Deyin84-1、露莎夫人 Madame Lussan、小姑娘 Xiaoguniang、红帕万 Кара Палван、卡姆拉夏 Kamulaxia、登瓦斯玫瑰 Misket dounvaski、妥库 Токун、魏天子 Petit Verdot、品丽珠 Cabernet Franc、佛斯玫瑰 Fosimeigui、1288/38、峰后 Fenghou、粉红巧吾斯 Tchaouch (rose)、齐查华契 Qichahuaqie
长圆锥花序-短圆柱果穗
Long conical inflorescence-Short cylindrical cluester
蓓蕾玫瑰 Muscat (Bailey)、哈尼 Khani、大平地拉洼 Dapingdilawa、基姆拉♀ Jimula♀、小红玫瑰 Muscat rouge de Frontignan
长圆柱花序-长圆锥果穗
Long cylindrical inflorescence-Long conical cluster
白三多利 Baisanduoli、红伊豆 Beniizu、小白玫瑰 Muscat Blanc a Petits Grains、高尔丹 Gaoerdan、德苏拉乌苏姆 Джура узюм、巧保2号 Qiaobao 2 hao、阿布交西 Abjosh、赤霞珠 Cabernet Sauvignon
长圆柱花序-短圆锥果穗
Long cylindrical inflorescence-Short conical cluster
黄蜜 Ougyoku、奥古斯特 Augusta、瓦吉斯别里 Вардиспери ркачители、芳香葡萄 Fangxiangputao、郑果大无核 Zhengguodawuhe、采尔采拉 Цырцыра、北塞魂 Petit Bouschet、黑谢希 Шеши черный、白香蕉株选 TriumpH zhuxuan
长圆柱花序-长圆柱果穗
Long cylindrical inflorescence-Long cylindrical cluster
大白葡萄 Preciena、黑鸡心 Heijixin、阿列阿基可 Alieajike、拜切尔 Baiqieer
长圆柱花序-短圆柱果穗
Long cylindrical inflorescence-Short cylindrical cluster
郑果25号 Zhengguo 25 hao、白玉霓(脱毒) Ugni Blanc (Detoxification)、阿利戈特 Aligoté、阿利戈特(罗) Aligoté (luo)、阿伊巴特♀ Ayibate♀、福司令 Fusiling、S.E20-365、阿芳香 Afangxiang、北红 Beihong、米勒吐尔高 Müller-Thurgau、白圣彼德 White st.Peter、
短圆锥花序-长圆锥果穗
Short conical inflorescence-Long conical cluster
考特 Kaote、爱欧娜 Iona、东京红 Miputao、红地球 Red Globe、熊岳白葡萄 Xiongyuebaiputao
短圆锥花序-短圆锥果穗
Short conical inflorescence-Short conical cluster
别尔科夫斯基 Bieerkefusiji、彼得罗克西梅涅 Pideluokeximeinie、里扎马特 Rizamat、新南贝尔 Xinnanbeier
短圆锥花序-长圆柱果穗
Short conical inflorescence-Long cylindrical cluster
丰宝 Fengbao、红双味 Hongshuangwei、罗曼尔 Rommel、西拉 Syrah、二伯娜 Urbana、粉红葡萄 Flame Tokay、黑夏尼 Щани черный、红鸡心 Hongjixin、红茧 Red Cocoon、利希巴巴 Риш баба Riche baba、派克斯 Aromatic of pecs、早熟玫瑰香 Zaoshumeiguixiang、索索葡萄 Suosuoputao、凯旋 Gold muscat、S.8745、山西80号 Shanxi 80 hao、西里努斯 Sirius、阿里克斯 Alikesi、帕山 Perange、黑巴拜斯卡 Heibabaisika、烟74 Yan74#、维洛♀ Verdot♀、黑佳美 Gamay、黑阿塞尔 Heiasaier、玛尔斯兰 Marselan、晚红蜜 Саперави、勿罗士 Wuluoshi、红拜克♀ Bacator Red♀、西拉(C3) Syrah (C3)、苏珊玫瑰 Muscat Susanna、库特赛塔 Куртсеит аганый иэюм、弗拉卡玫瑰 Folakameigui
短圆锥花序-短圆柱果穗
Short conical inflorescence-Short cylindrical cluster
尼加拉 Nigara、太姆波 Tampe、红古沙 Gousale kara、绿葡萄 Luputao、1382/12、白可列特 Клерет белый、琼瑶浆 Roter Traminer、霞多丽 Chardonnay
短圆柱花序-长圆锥果穗
Short cylindrical inflorescence-Long conical cluster
白玉霓 Ugni Blanc、西拉174 Syrah 174#、脆红 Cuihong、大青葡萄 Daqingputao、粉红亚多蜜 Fenhongyaduomi、红高 Benitaka、奥坡托 Blauer Poutugieser
短圆柱花序-短圆锥果穗
Short cylindrical inflorescence-Short conical cluster
贵妃玫瑰 Guifeimeigui、白玫康 Baimeikang、粉红契拉基 Чиляки краснный、红加利亚 Hungariga、沃依季诺 Woyijinuo、瓦尔纳 Варна беячи
短圆柱花序-长圆柱果穗
Short cylindrical inflorescence-Long cylindrical cluster
酒红 Jiuhong、麝香葡萄 Shexiangputao、白香蕉 TriumpH、大宝 タイホウ、卡氏玫瑰 Чарас Мускатний、伊丽莎白 Elizabeth grape、维多斯 Negru v?rtos、黑三多利 Heisanduoli、黑万尼西科 Heiwannixike、考克旁拉达 Kaokepanglada、托斯卡纳?马拉瓦西亚 Toscana、赤霞珠(脱毒)Cabernet Sauvignon (Detoxification)、白达拉依♀ Baidalayi♀、马夫鲁特 Мавруд、文塔 Винта
短圆柱花序-短圆柱果穗
Short cylindrical inflorescence-Short cylindrical cluster
黑圆珠 Heiyuanzhu、黄奥多别斯契 Huangaoduobiesiqi、千欢 Thousand (Boon)、香槟 Champion、奥林匹亚 Olimpia、贝加干 Beijiagan、星索 Cinsault、巴柯 Bacco Noir、德引84-3♀ Deyin 84-3、黑沙巴斯♀ Шабаш черный♀、雷司令 Reisling、那洛莫尔 Наломор、布列其罗然西 Береги рожаш、安尼斯基 Ayaneskeal、意大利玫瑰♀ Rose D′Italia♀、格列那什 Grenache

Fig. 5

Development of inflorescences of different shapes"

Fig. 6

Inflorescence development of different shapes"

Fig. 7

Measurement of various indexes of different cluster shape formation types"

Fig. 8

Variation of main spike length and width during the formation of cluster shape a: Long-cone inflorescence; b: Short-cone inflorescence; c: Long-cylinder inflorescence; d: Short-cylinder inflorescence; A: Long-cone cluster; B: Short-cone cluster; C: Long-cylinder cluster; D: Short-cylinder cluster. The same as below"

Fig. 9

Variation of spikelet length and width during the formation of cluster shape"

Fig. 10

Variation of spikelet angle during the formation of cluster shape"

Fig. 11

Variation of other indexes during the formation of cluster shape"

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