Blevins Dale G., Lukaszewski Krystyna M.
Interdisciplinary Plant Group, University of Missouri, Columbia, Missouri 65211;
Annu Rev Plant Physiol Plant Mol Biol. 1998 Jun;49:481-500. doi: 10.1146/annurev.arplant.49.1.481.
New and exciting developments in boron research in the past few years greatly contributed to better understanding of the role of boron in plants. Purification and identification of the first boron-polyol transport molecules resolved much of the controversy about boron phloem mobility. Isolation and characterization of the boron-polysaccharide complex from cell walls provided the first direct evidence for boron crosslinking of pectin polymers. Inhibition and recovery of proton release upon boron withdrawal and restitution in plant culture medium demonstrated boron involvement in membrane processes. Rapid boron-induced changes in membrane function could be attributed to boron-complexing membrane constituents. Boron may affect metabolic pathways by binding apoplastic proteins to cis-hydroxyl groups of cell walls and membranes, and by interfering with manganese-dependent enzymatic reactions. In addition, boron has been implicated in counteracting toxic effects of aluminum on root growth of dicotyledonous plants. Molecular investigations of boron nutrition have been initiated by the discovery of a novel mutant of Arabidopsis thaliana with an altered requirement for boron.
过去几年硼研究中令人兴奋的新进展极大地有助于更好地理解硼在植物中的作用。首个硼多元醇转运分子的纯化和鉴定解决了许多关于硼在韧皮部移动性的争议。从细胞壁中分离和表征硼多糖复合物为果胶聚合物的硼交联提供了首个直接证据。在植物培养基中硼去除和恢复时质子释放的抑制和恢复证明了硼参与膜过程。硼诱导的膜功能快速变化可能归因于硼与膜成分的络合。硼可能通过将质外体蛋白与细胞壁和膜的顺式羟基结合,并通过干扰锰依赖性酶促反应来影响代谢途径。此外,硼还被认为可以抵消铝对双子叶植物根系生长的毒性作用。对拟南芥一种对硼需求改变的新型突变体的发现开启了硼营养的分子研究。