Use of phenylboronic acids to investigate boron function in plants. possible role of boron in transvacuolar cytoplasmic strands and cell-to-wall adhesion

被引:79
作者
Bassil, E [1 ]
Hu, HN [1 ]
Brown, PH [1 ]
机构
[1] Univ Calif Davis, Dept Pomol, Davis, CA 95616 USA
关键词
D O I
10.1104/pp.104.040527
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The only defined physiological role of boron in plants is as a cross-linking molecule involving reversible covalent bonds with cis-diols on either side of borate. Boronic acids, which form the same reversible bonds with cis-diols but cannot cross-link two molecules, were used to selectively disrupt boron function in plants. In cultured tobacco (Nicotiana tabacum cv BY-2) cells, addition of boronic acids caused the disruption of cytoplasmic strands and cell-to-cell wall detachment. The effect of the boronic acids could be relieved by the addition of boron-complexing sugars and was proportional to the boronic acid-binding strength of the sugar. Experiments with germinating petunia (Petunia hybrida) pollen and boronate-affinity chromatography showed that boronic acids and boron compete for the same binding sites. The boronic acids appear to specifically disrupt or prevent borate-dependent cross-links important for the structural integrity of the cell, including the organization of transvacuolar cytoplasmic strands. Boron likely plays a structural role in the plant cytoskeleton. We conclude that boronic acids can be used to rapidly and reversibly induce boron deficiency-like responses and therefore are useful tools for investigating boron function in plants.
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页码:3383 / 3395
页数:13
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共 78 条
[1]   The reb1-1 mutation of Arabidopsis alters the morphology of trichoblasts, the expression of arabinogalactan-proteins and the organization of cortical microtubules [J].
Andème-Onzighi, C ;
Sivaguru, M ;
Judy-March, J ;
Baskin, TI ;
Driouich, A .
PLANTA, 2002, 215 (06) :949-958
[2]   Endothelial cell differentiation into capillary structures by copolymer surfaces with phenylboronic acid groups [J].
Aoki, T ;
Nagao, Y ;
Terada, E ;
Sanui, K ;
Ogata, N ;
Yamada, N ;
Sakurai, Y ;
Kataoka, K ;
Okano, T .
JOURNAL OF BIOMATERIALS SCIENCE-POLYMER EDITION, 1995, 7 (07) :539-550
[3]   A NOVEL HYDROXYPROLINE-DEFICIENT ARABINOGALACTAN PROTEIN SECRETED BY SUSPENSION-CULTURED CELLS OF DAUCUS-CAROTA - PURIFICATION AND PARTIAL CHARACTERIZATION [J].
BALDWIN, TC ;
MCCANN, MC ;
ROBERTS, K .
PLANT PHYSIOLOGY, 1993, 103 (01) :115-123
[4]  
BERGOLD A, 1988, SOLID PHASE BIOCH, P149
[5]   Boron in plant structure and function [J].
Blevins, DG ;
Lukaszewski, KM .
ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 1998, 49 :481-500
[6]   Lectin-like glycoprotein PsNLEC-1 is not correctly glycosylated and targeted in boron-deficient pea nodules [J].
Bolaños, L ;
Cebrián, A ;
Redondo-Nieto, M ;
Rivilla, R ;
Bonilla, I .
MOLECULAR PLANT-MICROBE INTERACTIONS, 2001, 14 (05) :663-670
[7]   Effects of boron on Rhizobium-legume cell-surface interactions and nodule development [J].
Bolanos, L ;
Brewin, NJ ;
Bonilla, I .
PLANT PHYSIOLOGY, 1996, 110 (04) :1249-1256
[8]   The aberrant cell walls of boron-deficient bean root nodules have no covalently bound hydroxyproline/proline-rich proteins [J].
Bonilla, I ;
Mergold-Villaseñor, C ;
Campos, ME ;
Sánchez, N ;
Pérez, H ;
López, L ;
Castrejón, L ;
Sánchez, F ;
Cassab, GI .
PLANT PHYSIOLOGY, 1997, 115 (04) :1329-1340
[9]   APPLICATIONS OF IMMOBILIZED PHENYLBORONIC ACIDS AS SUPPORTS FOR GROUP-SPECIFIC LIGANDS IN THE AFFINITY-CHROMATOGRAPHY OF ENZYMES [J].
BOURIOTIS, V ;
GALPIN, IJ ;
DEAN, PDG .
JOURNAL OF CHROMATOGRAPHY, 1981, 210 (02) :267-278
[10]  
BRADFORD M, 1976, ANAL BIOCHEM, V76, P962