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421por Kumawat, Kailash Chand, Sharma, Poonam, Nagpal, Sharon, Gupta, R. K., Sirari, Asmita, Nair, Ramakrishnan Madhavan, Bindumadhava, H., Singh, Sudeep“…Decreased Na(+) accumulation and increased K(+) uptake resulted in favorable K(+)/Na(+) ratio through ion homeostasis. Co-inoculation of Rhizobium sp. LSMR-32 and Enterococcus mundtii LSMRS-3 significantly improved the grain yield by 8.92% and led to superior B: C ratio over Rhizobium sp. alone under salt stress. …”
Publicado 2021
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422“…The test demonstrated severe inhibition of Rhizobium USDA110 growth without sulfur. In hydroponic experiment, we employed five sulfur levels with USDA110 as the inoculum strain. …”
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423por Rincón-Rosales, Reiner, Lloret, Lourdes, Ponce, Edith, Martínez-Romero, Esperanza“…Phylogenetic studies derived from rpoB gene sequences indicated that A. angustissima is nodulated by Sinorhizobium mexicanum, Rhizobium tropici, Mesorhizobium plurifarium and Agrobacterium tumefaciens and by bacteria related to Sinorhizobium americanum, Sinorhizobium terangae, Rhizobium etli and Rhizobium gallicum. …”
Publicado 2009
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424“…The results indicate a strong selectivity for Benomyl against Rhizobium meliloti and Penicillium sp. when compared to other microorganisms tested. …”
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425por Chen, Yuan X., Zou, Lan, Penttinen, Petri, Chen, Qiang, Li, Qi Q., Wang, Chang Q., Xu, Kai W.“…Forty-one of 65 isolates represented Rhizobium anhuiense, and the others belonged to R. fabae, Rhizobium vallis, Rhizobium sophorae, Agrobacterium radiobacter, and four species related to Rhizobium and Agrobacterium. …”
Publicado 2018
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426por Rafique, Munazza, Ali, Abid, Naveed, Muhammad, Abbas, Tasawar, Al-Huqail, Asma A., Siddiqui, Manzer H., Nawaz, Ahmad, Brtnicky, Martin, Holatko, Jiri, Kintl, Antonin, Kucerik, Jiri, Mustafa, Adnan“…Likewise, photosynthetic pigments and seed chemical composition were significantly improved by Rhizobium inoculation. However, these effects were prominent when Rhizobium inoculation was accompanied by L-methionine. …”
Publicado 2022
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427“…Specificity for rhizobial species/symbiovar appears to hold for Galega officinalis (Neorhizobium galegeae sv. officinalis), Galega orientalis (Neorhizobium galegeae sv. orientalis), Hedysarum coronarium (Rhizobium sullae), Medicago laciniata (Ensifer meliloti sv. medicaginis), Medicago rigiduloides (Ensifer meliloti sv. rigiduloides) and Trifolium ambiguum (Rhizobium leguminosarum sv. trifolii). …”
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428por Bu, Fengjiao, Rutten, Luuk, Roswanjaya, Yuda Purwana, Kulikova, Olga, Rodriguez‐Franco, Marta, Ott, Thomas, Bisseling, Ton, van Zeijl, Arjan, Geurts, Rene“…Despite a significant body of knowledge of the legume–rhizobium symbiosis, it remains elusive which signalling modules are shared between nodulating species in different taxonomic clades. …”
Publicado 2020
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429por Mir, Mohammad Imran, Kumar, B. Kiran, Gopalakrishnan, Subramaniam, Vadlamudi, Srinivas, Hameeda, Bee“…The sequences of 16S rRNA gene of bacterial strains IHSR, IHRG, IHAA, IHGN-3, IHCP-1 and IHCP-2 showed maximum identity with Rhizobium sp., Rhizobium tropici, Rhizobium multihospitium, Mesorhizobium sp., Burkholderia cepacia and Rhizobium pusense. …”
Publicado 2021
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430por Shi, Mengting, Qin, Tao, Cheng, Zhitao, Zheng, Dingwei, Pu, Zhenyang, Yang, Zhengfu, Lim, Kean-Jin, Yang, Menghua, Wang, Zhengjia“…We observed that pecan has a stronger capacity to enrich rhizosphere plant-beneficial microbe bacteria (e.g., Rhizobium, Novosphingobium, Variovorax, Sphingobium, and Sphingomonas) and their associated functional traits than hickory. …”
Publicado 2023
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431“…BLAST(n) sequence analysis of 16S rRNA and four housekeeping genes (glnII, gyrB, recA, and rpoB) showed their alignment with Rhizobium and Bradyrhizobium species. The results revealed a group of highly diverse and adapted cowpea-nodulating microsymbionts which included Bradyrhizobium pachyrhizi, Bradyrhizobium arachidis, Bradyrhizobium yuanmingense, and a novel Bradyrhizobium sp., as well as Rhizobium tropici, Rhizobium pusense, and Neorhizobium galegae in Mozambican soils. …”
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432por Cui, Wen-Jing, Zhang, Biliang, Zhao, Ran, Liu, Li-Xue, Jiao, Jian, Zhang, Ziding, Tian, Chang-Fu“…The interkingdom coevolution innovated the rhizobium-legume symbiosis. The application of this nitrogen-fixing system in sustainable agriculture is usually impeded by incompatible interactions between partners. …”
Publicado 2021
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433“…Inoculation of legume seeds with Rhizobium affects soil microbial community and processes, especially in the rhizosphere. …”
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434por Zou, Lan, Chen, Yuan Xue, Penttinen, Petri, Lan, Qin, Wang, Ke, Liu, Ming, Peng, Dan, Zhang, Xiaoping, Chen, Qiang, Zhao, Ke, Zeng, Xiangzhong, Xu, Kai Wei“…Based on phylogenetic analysis of 16S rRNA gene and concatenated sequence of atpD, glnII and recA genes, the isolates were assigned as Rhizobium anhuiense and a potential new Rhizobium species. …”
Publicado 2016
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435por Doin de Moura, Ginaini Grazielli, Remigi, Philippe, Masson-Boivin, Catherine, Capela, Delphine“…To replay the evolution of a new rhizobium genus under laboratory conditions, the symbiotic plasmid of Cupriavidus taiwanensis was introduced in the plant pathogen Ralstonia solanacearum, and the generated proto-rhizobium was submitted to repeated inoculations to the C. taiwanensis host, Mimosa pudica L. …”
Publicado 2020
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436por Hailu Gunnabo, Ashenafi, Geurts, Rene, Wolde-meskel, Endalkachew, Degefu, Tulu, E. Giller, Ken, van Heerwaarden, Joost“…The limited genetic diversity of the Ethiopian collections was due to absence of many of the Rhizobium lineages known to nodulate beans. Rhizobium etli and Rhizobiumphaseoli were predominant strains of bean-nodulating rhizobia in Ethiopia. …”
Publicado 2021
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437por Alfadaly, Reham A., Elsayed, Ashraf, Hassan, Rabeay Y. A., Noureldeen, Ahmed, Darwish, Hadeer, Gebreil, Ahmed S.“…As target resistive organisms, Rhizobium-MAP7 and Rhodotorula ALT72 were identified. …”
Publicado 2021
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438“…Nitrogen (N) fixation through legume-Rhizobium symbiosis is important for enhancing agricultural productivity and is therefore of great economic interest. …”
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439por Rutten, Luuk, Miyata, Kana, Roswanjaya, Yuda Purwana, Huisman, Rik, Bu, Fengjiao, Hartog, Marijke, Linders, Sidney, van Velzen, Robin, van Zeijl, Arjan, Bisseling, Ton, Kohlen, Wouter, Geurts, Rene“…Rhizobium nitrogen-fixing nodule symbiosis occurs in two taxonomic lineages: legumes (Fabaceae) and the genus Parasponia (Cannabaceae). …”
Publicado 2020
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440por Volpiano, Camila Gazolla, Sant’Anna, Fernando Hayashi, Ambrosini, Adriana, de São José, Jackson Freitas Brilhante, Beneduzi, Anelise, Whitman, William B., de Souza, Emanuel Maltempi, Lisboa, Bruno Brito, Vargas, Luciano Kayser, Passaglia, Luciane Maria Pereira“…Coupling this graph-based approach with dDDH from clusters of interest, it was found that: (i) there are synonymy between Aminobacter lissarensis and Aminobacter carboxidus, Aurantimonas manganoxydans and Aurantimonas coralicida, “Bartonella mastomydis,” and Bartonella elizabethae, Chelativorans oligotrophicus, and Chelativorans multitrophicus, Rhizobium azibense, and Rhizobium gallicum, Rhizobium fabae, and Rhizobium pisi, and Rhodoplanes piscinae and Rhodoplanes serenus; (ii) Chelatobacter heintzii is not a synonym of Aminobacter aminovorans; (iii) “Bartonella vinsonii” subsp. arupensis and “B. vinsonii” subsp. berkhoffii represent members of different species; (iv) the genome accessions GCF_003024615.1 (“Mesorhizobium loti LMG 6125(T)”), GCF_003024595.1 (“Mesorhizobium plurifarium LMG 11892(T)”), GCF_003096615.1 (“Methylobacterium organophilum DSM 760(T)”), and GCF_000373025.1 (“R. gallicum R-602 sp(T)”) are not from the genuine type strains used for the respective species descriptions; and v) “Xanthobacter autotrophicus” Py2 and “Aminobacter aminovorans” KCTC 2477(T) represent cases of misuse of the term “type strain”. …”
Publicado 2021
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