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首页> 外文期刊>Molecular Plant-Microbe Interactions >Overexpression of BetS, a Sinorhizobium meliloti High-Affinity Betaine Transporter, in Bacteroids from Medicago sativa Nodules Sustains Nitrogen Fixation During Early Salt Stress Adaptation
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Overexpression of BetS, a Sinorhizobium meliloti High-Affinity Betaine Transporter, in Bacteroids from Medicago sativa Nodules Sustains Nitrogen Fixation During Early Salt Stress Adaptation

机译:BetS,一种苜蓿中华根瘤菌的高亲和力甜菜碱转运蛋白,在紫花苜蓿根瘤中的拟细菌中过表达,在早期盐胁迫适应过程中维持固氮作用。

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Sinorhizobium meliloti possesses several betaine transporters to cope with salt stress, and BetS represents a crucial high-affinity glycine and proline betaine uptake system involved in the rapid acquisition of betaines by cells subjected to osmotic upshock. Using a transcriptional lacZ (β-galactosidase) fusion, we showed that betS is expressed during the establishment of the symbiosis and in mature nitrogen-fixing nodules. However, neither Nod nor Fix phenotypes were impaired in a betS mutant. BetS is functional in isolated bacteroids, and its activity is strongly activated by high osmolarity. In bacteroids from a betS mutant, glycine betaine and proline betaine uptake was reduced by 85 to 65%, indicating that BetS is a major component of the overall betaine uptake activity in bacteroids in response to osmotic stress. Upon betS overexpression (strain UNA349) in free-living cells, glycine betaine transport was 2.3-fold higher than in the wild-type strain. Interestingly, the accumulation of proline betaine, the endogenous betaine synthesized by alfalfa plants, was 41% higher in UNA349 bacteroids from alfalfa plants subjected to 1 week of salinization (0.3 M NaCl) than in wild-type bacteroids. In parallel, a much better maintenance of nitrogen fixation activity was observed in 7-day-salinized plants nodulated with the over-expressing strain than in wild-type nodulated plants. Taken altogether, these results are consistent with the major role of BetS as an emergency system involved in the rapid uptake of betaines in isolated and in planta osmotically stressed bacteroids of S. meliloti.
机译:苜蓿中华根瘤菌(Sinorhizobium meliloti)具有多种甜菜碱转运蛋白以应对盐胁迫,BetS代表着至关重要的高亲和力甘氨酸和脯氨酸甜菜碱摄取系统,参与了受渗透性上冲作用的细胞对甜菜碱的快速吸收。使用转录lacZ(β-半乳糖苷酶)融合,我们表明betS在共生建立期间和成熟的固氮根瘤中表达。但是,在betS突变体中Nod和Fix表型均未受损。 BetS在分离的类细菌中具有功能,并且高渗透压可强烈激活其活性。在来自betS突变体的类细菌中,甘氨酸甜菜碱和脯氨酸甜菜碱的摄取减少了85%至65%,这表明BetS是类固醇中总甜菜碱吸收活性的主要成分,以应对渗透胁迫。在活细胞中betS过表达(菌株UNA349)后,甘氨酸甜菜碱的转运比野生型菌株高2.3倍。有趣的是,脯氨酸甜菜碱(紫花苜蓿植物合成的内源性甜菜碱)在经过盐碱化1周(0.3 M NaCl)的紫花苜蓿植物的UNA349细菌中比在野生型细菌中的积累高41%。同时,在用过表达菌株根瘤的7天盐化植物中,观察到的固氮活性要比野生型根瘤植物更好。总而言之,这些结果与作为紧急系统的BetS的主要作用相一致,该系统涉及在分离的和植物的渗透压胁迫的拟南芥中快速吸收甜菜碱。

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