Lipid A and O-chain modifications cause Rhizobium lipopolysaccharides to become hydrophobic during bacteroid development

被引:120
作者
Kannenberg, EL
Carlson, RW
机构
[1] Univ Tubingen, D-72076 Tubingen, Germany
[2] Univ Georgia, Complex Carbohydrate Res Ctr, Athens, GA 30602 USA
关键词
D O I
10.1046/j.1365-2958.2001.02225.x
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
Modifications to the lipopolysaccharide (LPS) structure caused by three different growth conditions were investigated in the pea-nodulating strain Rhizobium leguminosarum 3841. The LPSs extracted by hot phenol-water from cultured cells fractionated into hydrophilic water and/or hydrophobic phenol phases. Most of the LPSs from cells grown under standard conditions extracted into the water phase, but a greater proportion of LPSs were extracted into the phenol phase from cells grown under acidic or reduced-oxygen conditions, or when isolated from root nodules as bacteroids. Compared with the water-extracted LPSs, the phenol-extracted LPSs contained greater degrees of glycosyl methylation and O-acetylation, increased levels of xylose, glucose and mannose and increased amounts of long-chain fatty acids attached to the lipid A moiety. The water- and phenol-phase LPSs also differed in their reactivity with monoclonal antibodies and in their polyacrylamide gel electrophoretic banding patterns. Phenol-extracted LPSs from rhizobia grown under reduced-oxygen conditions closely resembled the bulk of LPSs isolated from pea nodule bacteria (i.e. mainly bacteroids) in their chemical properties, reactivities with monoclonal antibodies and extraction behaviour. This finding suggests that, during symbiotic bacteroid development, reduced oxygen tension induces structural modifications in LPSs that cause a switch from predominantly hydrophilic to predominantly hydrophobic molecular forms. Increased hydrophobicity of LPSs was also positively correlated with an increase in the surface hydrophobicity of whole cells, as shown by the high degree of adhesion to hydrocarbons of bacterial cells isolated from nodules or from cultures grown under low-oxygen conditions. The implications of these LPS modifications are discussed for rhizobial survival and function in different soil and in planta habitats.
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页码:379 / 391
页数:13
相关论文
共 50 条
[21]   Lipid A acylation and bacterial resistance against vertebrate antimicrobial peptides [J].
Guo, L ;
Lim, KB ;
Poduje, CM ;
Daniel, M ;
Gunn, JS ;
Hackett, M ;
Miller, SI .
CELL, 1998, 95 (02) :189-198
[22]  
HESTRIN S, 1949, J BIOL CHEM, V180, P249
[23]  
HOLLINGSWORTH RI, 1989, J BIOL CHEM, V264, P9300
[24]   Role of lipo-oligosaccharides and lipopolysaccharides in bacterial adherence [J].
Jacques, M .
TRENDS IN MICROBIOLOGY, 1996, 4 (10) :408-410
[25]  
KANNENBERG EL, 1992, MOL MICROBIOL, V6, P2477, DOI 10.1111/j.1365-2958.1992.tb01424.x
[26]   EXPRESSION OF A CELL-SURFACE ANTIGEN FROM RHIZOBIUM-LEGUMINOSARUM 3841 IS REGULATED BY OXYGEN AND PH [J].
KANNENBERG, EL ;
BREWIN, NJ .
JOURNAL OF BACTERIOLOGY, 1989, 171 (09) :4543-4548
[27]  
KANNENBERG EL, 1998, RHIZOBIACEAE, P119
[28]   Influence of different rol gene products on the chain length of Shigella dysenteriae type 1 lipopolysaccharide O antigen expressed by Shigella flexneri carrier strains [J].
Klee, SR ;
Tzschaschel, BD ;
Timmis, KN ;
Guzman, CA .
JOURNAL OF BACTERIOLOGY, 1997, 179 (07) :2421-2425
[29]   Isolation of monoclonal antibodies reacting with the core component of lipopolysaccharide from Rhizobium leguminosarum strain 3841 and mutant derivatives [J].
Lucas, MM ;
Peart, JL ;
Brewin, NJ ;
Kannenberg, EL .
JOURNAL OF BACTERIOLOGY, 1996, 178 (10) :2727-2733
[30]   The influence of A-band and B-band lipopolysaccharide on the surface characteristics and adhesion of Pseudomonas aeruginosa to surfaces [J].
Makin, SA ;
Beveridge, TJ .
MICROBIOLOGY-UK, 1996, 142 :299-307