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1.
Microbes Environ ; 38(3)2023.
Artigo em Inglês | MEDLINE | ID: mdl-37704435

RESUMO

Reactive sulfur species (RSS) are present in root nodules; however, their role in symbiosis and the mechanisms underlying their production remain unclear. We herein investigated whether RSS produced by the cystathionine γ-lyase (CSE) of microsymbionts are involved in root nodule symbiosis. A cse mutant of Mesorhizobium loti exhibited the decreased production of hydrogen sulfide and other RSS. Although the CSE mutation of M. loti did not affect the early stages of symbiosis, i.e., infection and nodulation, with Lotus japonicus, it reduced the nitrogenase activity of nodules and induced their early senescence. Additionally, changes in the production of sulfur compounds and an increase in reactive oxygen species (ROS) were observed in the infected cells of nodules induced by the cse mutants. The effects of CSE inhibitors in the L. japonicus rhizosphere on symbiosis with M. loti were also investigated. All three CSE inhibitors suppressed infection and nodulation by M. loti concomitant with decreased RSS levels and increased ROS and nitric oxide levels. Therefore, RSS derived from the CSE activity of both the microsymbiont and host plant are required for symbiosis, but function at different stages of symbiosis, possibly with crosstalk with other reactive mole-cular species.


Assuntos
Cistationina gama-Liase , Lotus , Cistationina gama-Liase/genética , Espécies Reativas de Oxigênio , Simbiose , Enxofre
2.
Antioxidants (Basel) ; 9(2)2020 Feb 07.
Artigo em Inglês | MEDLINE | ID: mdl-32046218

RESUMO

Reactive sulfur species (RSS) function as strong antioxidants and are involved in various biological responses in animals and bacteria. Few studies; however, have examined RSS in plants. In the present study, we clarified that RSS are involved in root nodule symbiosis in the model legume Lotus japonicus. Polysulfides, a type of RSS, were detected in the roots by using a sulfane sulfur-specific fluorescent probe, SSP4. Supplying the sulfane sulfur donor Na2S3 to the roots increased the amounts of both polysulfides and hydrogen sulfide (H2S) in the roots and simultaneously decreased the amounts of nitric oxide (NO) and reactive oxygen species (ROS). RSS were also detected in infection threads in the root hairs and in infected cells of nodules. Supplying the sulfane sulfur donor significantly increased the numbers of infection threads and nodules. When nodules were immersed in the sulfane sulfur donor, their nitrogenase activity was significantly reduced, without significant changes in the amounts of NO, ROS, and H2S. These results suggest that polysulfides interact with signal molecules such as NO, ROS, and H2S in root nodule symbiosis in L. japonicus. SSP4 and Na2S3 are useful tools for study of RSS in plants.

3.
J Exp Bot ; 67(17): 5275-83, 2016 09.
Artigo em Inglês | MEDLINE | ID: mdl-27443280

RESUMO

Leghemoglobins transport and deliver O2 to the symbiosomes inside legume nodules and are essential for nitrogen fixation. However, the roles of other hemoglobins (Hbs) in the rhizobia-legume symbiosis are unclear. Several Lotus japonicus mutants affecting LjGlb1-1, a non-symbiotic class 1 Hb, have been used to study the function of this protein in symbiosis. Two TILLING alleles with single amino acid substitutions (A102V and E127K) and a LORE1 null allele with a retrotransposon insertion in the 5'-untranslated region (96642) were selected for phenotyping nodulation. Plants of all three mutant lines showed a decrease in long infection threads and nodules, and an increase in incipient infection threads. About 4h after inoculation, the roots of mutant plants exhibited a greater transient accumulation of nitric oxide (NO) than did the wild-type roots; nevertheless, in vitro NO dioxygenase activities of the wild-type, A102V, and E127K proteins were similar, suggesting that the mutated proteins are not fully functional in vivo The expression of LjGlb1-1, but not of the other class 1 Hb of L. japonicus (LjGlb1-2), was affected during infection of wild-type roots, further supporting a specific role for LjGlb1-1. In conclusion, the LjGlb1-1 mutants reveal that this protein is required during rhizobial infection and regulates NO levels.


Assuntos
Hemoglobinas/fisiologia , Lotus/fisiologia , Mesorhizobium/fisiologia , Óxido Nítrico/metabolismo , Proteínas de Plantas/fisiologia , Nodulação/fisiologia , Hemoglobinas/metabolismo , Lotus/crescimento & desenvolvimento , Lotus/metabolismo , Lotus/microbiologia , Mesorhizobium/metabolismo , Proteínas de Plantas/metabolismo , Raízes de Plantas/crescimento & desenvolvimento , Raízes de Plantas/microbiologia , Raízes de Plantas/fisiologia , Reação em Cadeia da Polimerase em Tempo Real , Simbiose/fisiologia
4.
Microbes Environ ; 27(4): 490-6, 2012.
Artigo em Inglês | MEDLINE | ID: mdl-23059724

RESUMO

Mesorhizobium loti is a member of the rhizobia and forms nitrogen-fixing symbioses with several Lotus species. Recently, it was reported that M. loti bacterial cells and their lipopolysaccharide (LPS) preparations transiently induced nitric oxide (NO) production in the roots of L. japonicus. We subsequently found that polysaccharides and the lipid A moiety were responsible for this NO induction. In this study, we elucidated the chemical structure of M. loti lipid A and characterized its NO-inducing activity in response to structural modifications. M. loti LPS were partially hydrolyzed with hydrazine or aqueous hydrofluoric acid to obtain O-deacylated or dephosphorylated LPS, respectively. The untreated and treated LPS fractions were subjected to weak acid hydrolysis to obtain lipid A fractions. The chemical structure of M. loti lipid A was elucidated by chemical composition analysis, MALDI-TOF-MS, and NMR spectra to be P-4-ß-GlcNN(1-6)α-GlcNN(1-1)α-GalA, in which positions 2 and 3 of ß-GlcNN are substituted for 3-acyloxy-fatty amides, and positions 2 and 3 of α-GlcNN are substituted for 3OH-fatty amides. The partial hydrolysis of lipid A appeared to reduce its NO-inducing activity. These results suggest that L. japonicus root cells recognize the lipid A structure as a means of controlling NO production.


Assuntos
Lipídeo A/metabolismo , Lipopolissacarídeos/metabolismo , Lotus/metabolismo , Mesorhizobium/metabolismo , Óxido Nítrico/biossíntese , Lipídeo A/química , Lipopolissacarídeos/química , Lotus/microbiologia , Óxido Nítrico/metabolismo , Ressonância Magnética Nuclear Biomolecular , Raízes de Plantas/metabolismo , Raízes de Plantas/microbiologia , Rhizobium/metabolismo , Espectrometria de Massas por Ionização e Dessorção a Laser Assistida por Matriz , Simbiose
5.
Plant Cell Physiol ; 52(4): 610-7, 2011 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-21330297

RESUMO

Lipopolysaccharide (LPS) is a bacterial molecule that induces nitric oxide (NO) production and triggers defense systems in plant-pathogen interactions. NO production is induced in the roots of Lotus japonicus after inoculation of the roots with its microsymbiont Mesorhizobium loti. However, the rhizobial molecule that induces NO production has not yet been identified. We investigated NO production in the roots of L. japonicus by treatment with LPS of M. loti. LPS was prepared by phenol-hot water extraction and separated into several fractions: polysaccharide, lipooligosaccharide, oligosaccharide and lipid A. In the roots of L. japonicus, NO production was observed with an NO-specific fluorescent dye 4, 10 and 24 h after treatment with each fraction of LPS. NO production was detected 4 h after treatment with all fractions. NO production was also detectable 24 h after treatment, except after treatment with the polysaccharide and oligosaccharide fractions. Expression of a class 1 hemoglobin gene and application of an NO scavenger showed that the treatment with LPS and LOS induced a similar response to inoculation with M. loti. These data suggest that LPS of M. loti induces NO production after inoculation with M. loti.


Assuntos
Lipopolissacarídeos/metabolismo , Lotus/metabolismo , Mesorhizobium/metabolismo , Óxido Nítrico/metabolismo , Benzoatos/farmacologia , Sequestradores de Radicais Livres/farmacologia , Regulação da Expressão Gênica de Plantas , Hemoglobinas/genética , Hemoglobinas/metabolismo , Imidazóis/farmacologia , Lipopolissacarídeos/isolamento & purificação , Lotus/genética , Lotus/microbiologia , Raízes de Plantas/genética , Raízes de Plantas/metabolismo , Raízes de Plantas/microbiologia , Reação em Cadeia da Polimerase Via Transcriptase Reversa , Simbiose , Fatores de Tempo
7.
Mol Plant Microbe Interact ; 21(9): 1175-83, 2008 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-18700822

RESUMO

Symbiotic nitrogen fixation by the collaboration between leguminous plants and rhizobia is an important system in the global nitrogen cycle, and some molecular aspects during the early stage of host-symbiont recognition have been revealed. To understand the responses of a host plant against various bacteria, we examined expression of hemoglobin (Hb) genes and production of nitric oxide (NO) in Lotus japonicus after inoculation with rhizobia or plant pathogens. When the symbiotic rhizobium Mesorhizobium loti was inoculated, expression of LjHb1 and NO production were induced transiently in the roots at 4 h after inoculation. In contrast, inoculation with the nonsymbiotic rhizobia Sinorhizobium meliloti and Bradyrhizobium japonicum induced neither expression of LjHb1 nor NO production. When L. japonicus was inoculated with plant pathogens (Ralstonia solanacearum or Pseudomonas syringae), continuous NO production was observed in roots but induction of LjHb1 did not occur. These results suggest that modulation of NO levels and expression of class 1 Hb are involved in the establishment of the symbiosis.


Assuntos
Hemoglobinas/genética , Lotus/genética , Lotus/metabolismo , Óxido Nítrico/metabolismo , Sinorhizobium meliloti/fisiologia , Alphaproteobacteria/fisiologia , Bradyrhizobium/fisiologia , Regulação da Expressão Gênica de Plantas , Interações Hospedeiro-Patógeno , Lotus/microbiologia , Microscopia de Fluorescência , Raízes de Plantas/genética , Raízes de Plantas/metabolismo , Raízes de Plantas/microbiologia , Reação em Cadeia da Polimerase Via Transcriptase Reversa , Simbiose/genética , Simbiose/fisiologia
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