Lipid composition of the extracellular matrix of Botrytis cinerea germlings

被引:27
作者
Cooper, LLD
Oliver, JE
De Vilbiss, ED
Doss, RP
机构
[1] USDA ARS, Hort Crops Res Unit, Corvallis, OR 97330 USA
[2] Oregon State Univ, Dept Hort, Corvallis, OR 97331 USA
[3] USDA ARS, Insect Chem Ecol Lab, BARC W, Beltsville, MD 20705 USA
关键词
Botrytis cinerea; Scelerotiniaceae; gray mold; extracellular matrix; characterization; lipids; fatty acids; fatty alcohols;
D O I
10.1016/S0031-9422(99)00495-1
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
Six simple lipid classes (mono-, di- and tri-acylglycerols, free fatty acids, free fatty alcohols and wax esters) were identified by TLC in the extracellular matrix of Botrytis; cinerea germlings and the molecular components of each class were characterized using GC-MS. The relative amounts of fatty acids and fatty alcohols within each lipid class were determined by GC-FID. Over all the lipid classes, the most abundant saturated fatty acids were palmitic (ca. 30%) and stearic acid (ca. 22%). Palmitoleic and oleic acids made up ca. 21% and 24% (respectively) of the free fatty acids, while erucic (ca. 4.1%) and linoleic (ca. 3.6%) acids were the most abundant unsaturated fatty acids in the acylglycerides. The acylglycerides also contained almost 35% long chain fatty acids (C20:0 to C28:0). Six fatty acids were identified which had odd-numbered carbon chain lengths (C15:0, C17:0, C19:0, C21:0, C23:0 and C25:0). Of these, pentacosanoic acid made up almost 14% of the fatty acids in the acylglycerides. Three methyl-branched chain fatty acids, namely isopalmitic, isoheptadecanoic and anteisopalmitic, were identified in the ECM, all in small amounts. Of the fatty alcohols identified, only palmityl and stearyl alcohols were found in the free form (ca. 57% and 43%, respectively) but arachidyl alcohol (ca. 47%) and 1-octacosanol (ca. 30%) were the most abundant fatty alcohols found in the wax ester fraction. Published by Elsevier Science Ltd.
引用
收藏
页码:293 / 298
页数:6
相关论文
共 25 条
[1]  
[Anonymous], 1888, ANN BOT, DOI DOI 10.1093/AOB/OS-2.3.319
[2]  
BOULTON CA, 1989, MICROBIAL LIPIDS, V2, P667
[3]  
Christie W., 2003, LIPID ANAL
[4]  
Christie W., 1989, GAS CHROMATOGRAPHY L
[5]  
CLARK T, 1978, MYCOL RES, V17, P943
[6]   Infection mechanisms of Botrytis species: Pre-penetration and pre-infection processes of dry and wet conidia [J].
Cole, L ;
Dewey, FM ;
Hawes, CR .
MYCOLOGICAL RESEARCH, 1996, 100 :277-286
[7]  
COLEYSMITH JR, 1980, BIOL BOTRYTIS, pR7
[8]   ADHESION OF GERMLINGS OF BOTRYTIS-CINEREA [J].
DOSS, RP ;
POTTER, SW ;
SOELDNER, AH ;
CHRISTIAN, JK ;
FUKUNAGA, LE .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1995, 61 (01) :260-265
[9]   INFECTION OF EASTER-LILY LEAVES FROM CONIDIA OF BOTRYTIS-ELLIPTICA [J].
DOSS, RP ;
CHRISTIAN, JK ;
CHASTAGNER, GA .
CANADIAN JOURNAL OF BOTANY-REVUE CANADIENNE DE BOTANIQUE, 1988, 66 (06) :1204-1208
[10]  
Doss RP, 1999, APPL ENVIRON MICROB, V65, P404