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1041por Paudel, Dev, Liu, Fengxia, Wang, Liping, Crook, Matthew, Maya, Stephanie, Peng, Ze, Kelley, Karen, Ané, Jean-Michel, Wang, Jianping“…To understand the intercellular crack entry process, it is critical to develop the tools and resources related to the rhizobium in addition to focus on investigating the mechanisms of the plant host. …”
Publicado 2020
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1042“…Fifteen isolates had efficient potassium solubilizing ability, of which K13 (Rhizobium larrymoorei) released the most available potassium in liquid medium (224.66 mg/L). …”
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1043por Jenei, Sándor, Tiricz, Hilda, Szolomájer, János, Tímár, Edit, Klement, Éva, Al Bouni, Mohamad Anas, Lima, Rui M., Kata, Diána, Harmati, Mária, Buzás, Krisztina, Földesi, Imre, Tóth, Gábor K., Endre, Gabriella, Kondorosi, Éva“…In Rhizobium-legume symbiosis, the bacteria are converted into nitrogen-fixing bacteroids. …”
Publicado 2020
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1044“…We highlighted nematode biocontrol mechanisms, especially parasitism, induced systemic resistance, and volatile organic compounds using microbial consortia, or bacterial strains of the genera Pasteuria, Bacillus, Pseudomonas, Rhizobium, Streptomyces, Arthrobacter, and Variovorax, or fungal isolates of Pochonia, Dactylella, Nematophthora, Purpureocillium, Trichoderma, Hirsutella, Arthrobotrys, and Mortierella. …”
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1045“…RESULTS: The main bacterial phyla of bile samples in the symptom group included Proteobacteria (55.19%), Firmicutes (32.36%), Actinobacteria (10.24%) and Bacteroidetes (1.23%) and the main bacterial genera were Pseudomonas (23.31%), Klebsiella (18.42%), Lactococcus (9.61%), Rhodococcus (9.59%) and Rhizobium (5.08%). Proteobacteria and Staphylococcus were enriched in the symptom group (P<0.05), whereas Firmicutes (P<0.05) and Enterococcus (P<0.01) were enriched in the control group. …”
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1046por Belimov, Andrey A., Shaposhnikov, Alexander I., Azarova, Tatiana S., Makarova, Natalia M., Safronova, Vera I., Litvinskiy, Vladimir A., Nosikov, Vladimir V., Zavalin, Aleksey A., Tikhonovich, Igor A.“…The phytoremediation potential of a symbiotic system comprising the Cd-tolerant pea (Pisum sativum L.) mutant SGECd(t) and selected Cd-tolerant microorganisms, such as plant growth-promoting rhizobacterium Variovorax paradoxus 5C-2, nodule bacterium Rhizobium leguminosarum bv. viciae RCAM1066, and arbuscular mycorrhizal fungus Glomus sp. 1Fo, was evaluated in comparison with wild-type pea SGE and the Cd-accumulating plant Indian mustard (Brassica juncea L. …”
Publicado 2020
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1047por Zhang, Beibei, Li, Guang, Shahid, Muhammad Suhaib, Gan, Liping, Fan, Hao, Lv, Zengpeng, Yan, Shaojia, Guo, Yuming“…Treatment with Arg in birds subjected to S. typhimurium challenge increased the abundances of Firmicutes phylum, Clostridiaceae_1 family, Methylobacterium and Candidatus Arthromitus genera but decreased the abundance of Nitrosomonas genus and Rhizobium cellulosilyticum and Rubrobacter xylanophilus species as compared with the only S. typhimurium–challenged birds. …”
Publicado 2020
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1048por Hu, Dong, Li, Shuhong, Li, Ying, Peng, Jieli, Wei, Xiaoyan, Ma, Jia, Zhang, Cuimian, Jia, Nan, Wang, Entao, Wang, Zhanwu“…By cultivation method, five bacterial strains positively correlated to TOR3209 inoculation were isolated from rhizosphere and root endosphere, which were identified as tomato growth promoters affiliated to Enterobacter sp., Arthrobacter sp., Bacillus subtilis, Rhizobium sp. and Bacillus velezensis. In pot experiment, TOR3209 and B. velezensis WSW007 showed joint promotion to tomato production, while the abundance of inoculated TOR3209 was dramatically decreased in rhizosphere along the growth of tomato. …”
Publicado 2020
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1049“…Microbial degradation as a treatment, with the combination of mixed inoculants of the Biofertilizer of Pseudomonas sp., Azospirillium sp. and Rhizobium sp., was employed for the remediation of Silk dyeing effluent. …”
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1050por Shi, Wencong, Su, Gaoya, Li, Mingcong, Wang, Bing, Lin, Rongshan, Yang, Yutian, Wei, Tao, Zhou, Bo, Gao, Zheng“…No significant effect on the composition of endophytes were caused by PCS in roots, tubers, or stems between high PCS severity (H) and low PCS severity (L) infections at the community level, but PCS did have a substantial impact on the relative abundance of several specific endophytes. Rhizobium and Sphingopyxis were significantly enriched in root endophytes with low PCS severity (REL); Delftia and Ochrobactrum were significantly enriched in stem endophytes with low PCS severity (SEL); Pedobacter, Delftia, and Asticcacaulis were significantly enriched in tuber endophytes with high PCS severity (TEH). …”
Publicado 2021
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1051“…However, that of the laboratory-reared ghost moth exhibited significantly abundant Wolbachia, Rhizobium, Serratia, Pseudomonas, and Flavobacterium. …”
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1052por Arcas-Pilz, Verónica, Parada, Felipe, Villalba, Gara, Rufí-Salis, Martí, Rosell-Melé, Antoni, Gabarrell Durany, Xavier“…Phaseolus vulgaris (common bean) was fertilized with a combination of slow-releasing fertilizer struvite (a source of N, P, and Mg), which is a byproduct of wastewater treatment plants, and inoculation with Rhizobium (a N(2)-fixing soil bacteria). The experiment included three bean-production lines: (A) 2 g/plant of struvite and rhizobial inoculation; (B) 5 g/plant of struvite and rhizobial inoculation, both irrigated with a Mg-, P-, and N-free nutrient solution; and (C) a control treatment that consisted of irrigation with a full nutrient solution and no inoculation. …”
Publicado 2021
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1053“…BACKGROUND: Rhizobium–legume symbiosis is a specific, coordinated interaction that results in the formation of a root nodule, where biological nitrogen fixation occurs. …”
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1054“…Phylogenetic analysis of the 16S rRNA gene assigned representative rhizobial isolates to species in the Bradyrhizobium and Rhizobium genera, with some isolates showing high divergence from the known reference type strains. …”
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1055por Abdelaal, Khaled, AlKahtani, Muneera, Attia, Kotb, Hafez, Yaser, Király, Lóránt, Künstler, András“…Application of plant growth-promoting bacteria such as Paenibacillus, Azospirillum, Rhizobium, Bacillus, Azotobacter, Klebsiella, Pseudomonas and Serratia can enhance hormonal balance, maintain nutrient status and improve plant growth characters as well as increase yield. …”
Publicado 2021
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1056por Chaudhari, Vinay, Buttar, Harpal Singh, Bagwe-Parab, Siddhi, Tuli, Hardeep Singh, Vora, Amisha, Kaur, Ginpreet“…Curdlan is an exopolysaccharide, which is composed of glucose linked with β-(1,3)-glycosidic bond and is produced by bacteria, such as Alcaligenes spp., Agrobacterium spp., Paenibacillus spp., Rhizobium spp., Saccharomyces cerevisiae, Candida spp., and fungal sources like Aureobasidium pullulan, Poria cocos, etc. …”
Publicado 2021
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1057por He, Fei“…Pseudomonas, Bacillus, Rhizobium, and Streptomyces were the most abundant in all samples from the ND sites, whereas Pectobacterium carotovorum and Serratia were predominant in the samples from the MD and HD sites. …”
Publicado 2021
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1058por Qiu, Xiaoqian, Gao, Tongguo, Yang, Jinshui, Wang, Entao, Liu, Liang, Yuan, Hongli“…IMPORTANCE Sinorhizobium fredii CCBAU45436 is a highly effective, fast-growing rhizobium that can establish symbiosis with multiple soybean cultivars. …”
Publicado 2021
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1059por Sahu, Kuleshwar Prasad, Patel, Asharani, Kumar, Mukesh, Sheoran, Neelam, Mehta, Sahil, Reddy, Bhaskar, Eke, Pierre, Prabhakaran, Narayanasamy, Kumar, Aundy“…Upon phyllobacterization of rice cultivar PB1, the bacterial species such as Enterobacter sacchari, Microbacterium testaceum, Pantoea ananatis, Pantoea dispersa, Pantoea vagans, Pseudomonas oryzihabitans, Rhizobium sp., and Sphingomonas sp. elicited a defense response and contributed to the suppression of blast disease. qRT-PCR-based gene expression analysis indicated over expression of defense-associated genes such as OsCEBiP, OsCERK1, and phytohormone-associated genes such as OsPAD4, OsEDS1, OsPR1.1, OsNPR1, OsPDF2.2, and OsFMO in phyllobacterized rice seedlings. …”
Publicado 2021
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1060por Kalu, Chimdi M., Ogola, Henry J. O., Selvarajan, Ramganesh, Tekere, Memory, Ntushelo, Khayalethu“…Further, plant growth promoting rhizobacteria (Rhizobium, Delftia, Bradyrhizobium, and Mesorhizobium) and metal-tolerant bacteria (Bacillus, Arthrobacter, Massilia and Methylocystis) were most abundant in AMD-polluted than non-AMD habitat. …”
Publicado 2021
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