Composition of the cuticle of developing sweet cherry fruit

被引:155
作者
Peschel, Stefanie
Franke, Rochus
Schreiber, Lukas
Knoche, Moritz
机构
[1] Univ Halle Wittenberg, Dept Hort, Inst Agron & Crop Sci, D-06099 Halle, Germany
[2] Univ Bonn, Inst Cellular & Mol Bot, D-53115 Bonn, Germany
关键词
Prunus avium; rosaceae; sweet cherry fruit; GC-MS; cuticle; wax; cutin; triterpenes;
D O I
10.1016/j.phytochem.2007.01.008
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The composition of wax and cutin from developing sweet cherry (Prunus avium) fruit was studied by GC-MS between 22 and 85 days after full bloom (DAFB). In this and our previous study, fruit mass and surface area increased in a sigmoidal pattern with time, but mass of the cuticular membrane (CM) per unit fruit surface area decreased. On a whole fruit basis, mass of CM increased up to 36 DAFB and remained constant thereafter. At maturity, triterpenes, alkanes and alcohols accounted for 75.6%, 19.1% and 1.2% of total wax, respectively. The most abundant constituents were the triterpenes ursolic (60.0%) and oleanolic acid (7.5%), the alkanes nonacosane (13.0%) and heptacosane (3.0%), and the secondary alcohol nonacosan-10-ol (1.1%). In developing fruit triterpenes per unit area decreased, but alkanes and alcohols remained essentially constant. The cutin fraction of mature fruit consisted of mostly C16 (69.5%) and, to a lower extent, C18 monomers (19.4%) comprising alkanoic, omega-hydroxyacids, alpha,omega-dicarboxylic and midchain hydroxylated acids. The most abundant constituents were 9(10),16-dihydroxy-hexadecanoic acid (53.6%) and 9,10,18-trihydroxy-octadecanoic acid (7.8%). Amounts of C16 and C18 monomers per unit area decreased in developing fruit, but remained approximately constant on a whole fruit basis. Within both classes of monomers, opposing changes occurred. Amounts of hexadecandioic, 16-hydroxy-hexadecanoic, 9(10)-hydroxyhexadecane-1,16-dioic and 9,10-epoxy-octadecane-1,18-dioic acids increased, but 9,10,18-trihydroxy-octadecanoic and 9,10,18-trihydroxy-octadecenoic acids decreased. There were no qualitative and minor quantitative differences in wax and cutin composition between cultivars at maturity. Our data indicate that deposition of some constituents of wax and cutin ceased during early fruit development. (C) 2007 Elsevier Ltd. All rights reserved.
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页码:1017 / 1025
页数:9
相关论文
共 51 条
[21]  
Holloway P.J., 1994, AIR POLLUTANTS LEAF, P1
[22]  
Holloway P. J., 1982, LINNEAN SOC S SERIES, V10, P45
[23]   CHEMISTRY OF LEAF WAXES IN RELATION TO WETTING [J].
HOLLOWAY, PJ .
JOURNAL OF THE SCIENCE OF FOOD AND AGRICULTURE, 1969, 20 (02) :124-&
[24]   CUTINS OF MALUS-PUMILA FRUITS AND LEAVES [J].
HOLLOWAY, PJ .
PHYTOCHEMISTRY, 1973, 12 (12) :2913-2920
[25]  
Jeffree C.E., 1996, PLANT CUTICLES INTEG, P33
[26]   ULTRASTRUCTURE AND RECRYSTALLIZATION OF PLANT EPICUTICULAR WAXES [J].
JEFFREE, CE ;
BAKER, EA ;
HOLLOWAY, PJ .
NEW PHYTOLOGIST, 1975, 75 (03) :539-+
[27]  
JETTER R, 1994, PLANTA, V195, P257, DOI 10.1007/BF00199686
[28]   Chemical composition of the Prunus laurocerasus leaf surface.: Dynamic changes of the epicuticular wax film during leaf development [J].
Jetter, R ;
Schäffer, S .
PLANT PHYSIOLOGY, 2001, 126 (04) :1725-1737
[29]   Cutin composition of five Finnish berries [J].
Kallio, K ;
Nieminen, R ;
Tuomasjukka, S ;
Hakala, M .
JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2006, 54 (02) :457-462
[30]  
Knoche M, 2004, PHYSIOL PLANTARUM, V120, P667, DOI 10.1111/j.0031-9317.2004.0285.x