ON THE STRUCTURE, BIOSYNTHESIS, FUNCTION AND PHYLOGENY OF ISOARBORINOL AND MOTIOL

被引:10
作者
NES, WD
WONG, RY
GRIFFIN, JF
DUAX, WL
机构
[1] USDA, WESTERN REG RES CTR, ALBANY, CA 94710 USA
[2] MED FDN BUFFALO INC, BUFFALO, NY 14203 USA
关键词
D O I
10.1007/BF02536430
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 solid-state conformations of the C-3 acetates of two isomeric hopanoids - 1, isoarborinol (D:C-friedo-3-beta,5-gamma,8-alpha,10-beta,14-alpha, 17-beta,18-?? alpha, 21-beta) and 2, motiol (D:C-friedo-B1:A1-neogammacer-7(8)-en-3-beta-ol?? [3-beta,5-alpha,9-alpha,10-beta,13-alpha,14-beta,17-alpha,?? 18-beta,21-alpha])-have been determined by X-ray crystallography. The data show that whereas both molecules are planar, 1 orients into a chair-halfchair-chair-chair-halfchair conformation while 2 orients into a chair-sofa-twist-half-chair-halfchair conformation. To explain the biogenesis of 1 and 2 from squalene oxide, a step-wise mechanism is proposed which proceeds through the protosteroid cation (for 1) and dammarenyl cation (for 2). After ring enlargement from the corresponding 13(17)bond followed by concerted 1,2-migrations and loss of the 11-beta-H and 7-beta-H as protons, respectively, a 9,11-double bond (in 1) and a 7,8-double bond (in 2) is introduced into the nucleus. The mechanism is discussed in relation to the classical view of a non-stop cyclization process where, for example, squalene oxide folds in a chair-chair-chair-chair-boat conformation to give a cyclized product (motiol) presumably with the same conformational disposition as the cyclizing material. The three-dimensional geometry of 1 and 2 was found to be structurally dissimilar from sterols. For instance, 1 and 2 are shorter and volumetrically smaller molecules than cholesterol, and this may explain their diminished importance as membrane inserts compared with sterols in eukaryote evolution.
引用
收藏
页码:649 / 655
页数:7
相关论文
共 34 条
[1]   NON-OXIDATIVE CYCLIZATION OF SQUALENE BY TETRAHYMENA-PYRIFORMIS - INCORPORATION OF A 3-BETA-HYDROGEN (DEUTERIUM) ATOM INTO TETRAHYMANOL [J].
ABERHART, DJ ;
CASPI, E .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1979, 101 (04) :1013-1019
[2]  
AGETA H, 1984, CHEM PHARM BULL, V32, P369
[3]  
Akihisa T., 1986, J JPN OIL CHEM SOC, V35, P907
[4]   STEROL BIOSYNTHESIS IN EUGLENA-GRACILIS Z - STEROL PRECURSORS IN LIGHT-GROWN AND DARK-GROWN EUGLENA-GRACILIS Z [J].
ANDING, C ;
BRANDT, RD ;
OURISSON, G .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1971, 24 (02) :259-&
[5]   BIOSYNTHESIS OF TERPENES AND STEROIDS .3. SQUALENE CYCLISATION IN BIOSYNTHESIS OF TRITERPENOIDS - BIOSYNTHESIS OF FERN-9-ENE IN POLYPODIUM-VULGARE LINN [J].
BARTON, DHR ;
MELLOWS, G ;
WIDDOWSON, DA .
JOURNAL OF THE CHEMICAL SOCIETY C-ORGANIC, 1971, (01) :110-+
[6]   ISOLATION FROM PISTACIA RESINS OF A BICYCLIC TRITERPENOID REPRESENTING AN APPARENT TRAPPED INTERMEDIATE OF SQUALENE 2,3-EPOXIDE CYCLIZATION [J].
BOAR, RB ;
COUCHMAN, LA ;
JAQUES, AJ ;
PERKINS, MJ .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1984, 106 (08) :2476-2477
[7]   THE SQUALENE-2,3-EPOXIDE CYCLASE AS A MODEL FOR THE DEVELOPMENT OF NEW DRUGS [J].
CATTEL, L ;
CERUTI, M ;
VIOLA, F ;
DELPRINO, L ;
BALLIANO, G ;
DURIATTI, A ;
BOUVIERNAVE, P .
LIPIDS, 1986, 21 (01) :31-38
[8]   BIOSYNTHESIS OF TRITERPENE HYDROCARBONS OF POLYPODIUM-VULGARE [J].
GHISALBE.EL ;
DESOUZA, NJ ;
REES, HH ;
GOODWIN, TW .
PHYTOCHEMISTRY, 1970, 9 (08) :1817-&
[9]   THE BIOSYNTHESIS OF TRITERPENOIDS AND STEROIDS [J].
HARRISON, DM .
NATURAL PRODUCT REPORTS, 1985, 2 (06) :525-560
[10]   THE INFLUENCE OF HOPANOIDS ON GROWTH OF MYCOPLASMA-MYCOIDES [J].
KANNENBERG, E ;
PORALLA, K .
ARCHIVES OF MICROBIOLOGY, 1982, 133 (02) :100-102