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1.
Oral Dis ; 2024 May 30.
Artículo en Inglés | MEDLINE | ID: mdl-38817019

RESUMEN

OBJECTIVE: Periodontitis is an inflammatory oral disease that occurs as a result of the damaging effects of the immune response against the subgingival microflora. Among the mechanisms involved, the nucleotide-binding oligomerization domain, leucine-rich repeat-containing proteins family member NLRP3 (NLR family pyrin domain-containing 3), proposed as the key regulator of macrophage-induced inflammation, is strongly associated with periodontal disease due to the bacterial activators. This paper aimed to present key general concepts of NLRP3 inflammasome activation and regulation in periodontal disease. METHOD: A narrative review was conducted in order to depict the current knowledge on the relationship between NLRP3 inflammasome activity and periodontal disease. In vitro and in situ studies were retrieved and commented based on their relevance in the field. RESULTS: The NLRP3 inflammasome activity stimulated by periodontal microbiota drive periodontal disease pathogenesis and progression. This occurs through the release of proinflammatory cytokines IL-1ß, IL-18, and DAMPs (damage-associated molecular pattern molecules) following inflammasome activation. Moreover, the tissue expression of NLRP3 is dysregulated by oral microbiota, further exacerbating periodontal inflammation. CONCLUSION: The review provides new insights into the relationship between the NLRP3 inflammasome activity and periodontal disease pathogenesis, highlighting the roles and regulatory mechanism of inflammatory molecules involved in the disease process.

2.
J Bacteriol ; 204(12): e0031322, 2022 12 20.
Artículo en Inglés | MEDLINE | ID: mdl-36448787

RESUMEN

The periodontal pathogen Tannerella forsythia expresses a ß-glucanase (TfGlcA) whose expression is induced in response to Fusobacterium nucleatum, a bridge bacterium of the oral cavity. TfGlcA cleaves ß-glucans to release glucose, which can serve as a carbon source for F. nucleatum and other cohabiting organisms. A two-gene cluster encoding a putative extracytoplasmic function (ECF) sigma factor and a FecR-like anti-sigma factor has been recognized upstream of a TfGlcA operon. We characterized and analyzed the role of these putative ECF sigma and anti-sigma factors in the regulation of TfGlcA expression. For this purpose, deletion mutants were constructed and analyzed for ß-glucanase expression. In addition, an Escherichia coli-produced ECF sigma factor recombinant protein was evaluated for transcriptional and DNA binding activities. The results showed that the recombinant protein promoted transcription by the RNA polymerase core enzyme from the glcA promoter. Furthermore, in comparison to those in the parental strain, the ß-glucanase expression levels were significantly reduced in the ECF sigma-factor deletion mutant and increased significantly in the FecR anti-sigma factor deletion mutant. The levels did not change in the mutants following coincubation with the F. nucleatum whole cells or cell extracts. Finally, the levels of ß-glucanase produced by T. forsythia strains paralleled F. nucleatum biomass in cobiofilms. In conclusion, we identified a ß-glucanase operon regulatory system in T. forsythia comprising an ECF sigma factor (TfSigG) and a cognate FecR-like anti-sigma factor responsive to F. nucleatum and potentially other stimuli. IMPORTANCE Previous studies have shown that F. nucleatum forms robust biofilms with T. forsythia utilizing glucose from the hydrolysis of ß-glucans by T. forsythia ß-glucanase, induced by F. nucleatum. In this study, we showed that a regulatory system comprising of an ECF sigma factor, TfSigG, and a FecR-like anti-sigma factor, TfFecR, is responsible for the ß-glucanase induction in response to F. nucleatum, suggesting that this system plays roles in the mutualistic interactions of T. forsythia and F. nucleatum. The findings suggest the development and potential utility of small-molecule inhibitors targeting the ß-glucanase activity or the TfSigG/TfFecR system as therapeutic drugs against dental plaque formation and periodontitis.


Asunto(s)
Fusobacterium nucleatum , Glucosidasas , Tannerella forsythia , Biopelículas , Fusobacterium nucleatum/genética , Fusobacterium nucleatum/metabolismo , Factor sigma/genética , Factor sigma/metabolismo , Glucosidasas/genética
3.
J Neurosci Res ; 99(11): 2999-3020, 2021 11.
Artículo en Inglés | MEDLINE | ID: mdl-34520571

RESUMEN

The cochlea, the sensory organ for hearing, has a protected immune environment, segregated from the systemic immune system by the blood-labyrinth barrier. Previous studies have revealed that acute acoustic injury causes the infiltration of circulating leukocytes into the cochlea. However, the molecular mechanisms controlling immune cell trafficking are poorly understood. Here, we report the role of CX3CR1 in regulating the entry of neutrophils into the cochlea after acoustic trauma. We employed B6.129P-Cx3cr1tm1Litt /J mice, a transgenic strain that lacks the gene, Cx3cr1, for coding the fractalkine receptor. Our results demonstrate that lack of Cx3cr1 results in the augmentation of neutrophil infiltration into cochlear tissues after exposure to an intense noise of 120 dB SPL for 1 hr. Neutrophil distribution in the cochlea is site specific, and the infiltration level is positively associated with noise intensity. Moreover, neutrophils are short lived and macrophage phagocytosis plays a role in neutrophil clearance, consistent with typical neutrophil dynamics in inflamed non-cochlear tissues. Importantly, our study reveals the potentiation of noise-induced hearing loss and sensory cell loss in Cx3cr1-/- mice. In wild-type control mice (Cx3cr1+/+ ) exposed to the same noise, we also found neutrophils. However, neutrophils were present primarily inside the microvessels of the cochlea, with only a few in the cochlear tissues. Collectively, our data implicate CX3CR1-mediated signaling in controlling neutrophil migration from the circulation into cochlear tissues and provide a better understanding of the impacts of neutrophils on cochlear responses to acoustic injury.


Asunto(s)
Cóclea , Pérdida Auditiva Provocada por Ruido , Acústica , Animales , Receptor 1 de Quimiocinas CX3C/genética , Pérdida Auditiva Provocada por Ruido/etiología , Ratones , Ratones Endogámicos C57BL , Infiltración Neutrófila
4.
Microbiology (Reading) ; 165(11): 1181-1197, 2019 11.
Artículo en Inglés | MEDLINE | ID: mdl-31517596

RESUMEN

Key to onset and progression of periodontitis is a complex relationship between oral bacteria and the host. The organisms most associated with severe periodontitis are the periodontal pathogens of the red complex: Tannerella forsythia, Treponema denticola and Porphyromonas gingivalis. These organisms express sialidases, which cleave sialic acid from host glycoproteins, and contribute to disease through various mechanisms. Here, we expressed and purified recombinant P. gingivalis sialidase SiaPG (PG_0352) and characterized its activity on a number of substrates, including host sialoglycoproteins and highlighting the inability to cleave diacetylated sialic acids - a phenomenon overcome by the NanS sialate-esterase from T. forsythia. Indeed SiaPG required NanS to maximize sialic acid harvesting from heavily O-acetylated substrates such as bovine salivary mucin, hinting at the possibility of interspecies cooperation in sialic acid release from host sources by these members of the oral microbiota. Activity of SiaPG and P. gingivalis was inhibited using the commercially available chemotherapeutic zanamivir, indicating its potential as a virulence inhibitor, which also inhibited sialic acid release from mucin, and was capable of inhibiting biofilm formation of P. gingivalis on oral glycoprotein sources. Zanamivir also inhibited attachment and invasion of oral epithelial cells by P. gingivalis and other periodontal pathogens, both in monospecies but also in multispecies infection experiments, indicating potential to suppress host-pathogen interactions of a mixed microbial community. This study broadens our understanding of the multifarious roles of bacterial sialidases in virulence, and indicates that their inhibition with chemotherapeutics could be a promising strategy for periodontitis therapy.


Asunto(s)
Proteínas Bacterianas/metabolismo , Interacciones Huésped-Patógeno , Neuraminidasa/metabolismo , Porphyromonas gingivalis/enzimología , Factores de Virulencia/metabolismo , Proteínas Bacterianas/genética , Biopelículas/efectos de los fármacos , Biopelículas/crecimiento & desarrollo , Línea Celular , Interacciones Huésped-Patógeno/efectos de los fármacos , Humanos , Interacciones Microbianas , Mucinas/metabolismo , Mutación , Neuraminidasa/genética , Polisacáridos/metabolismo , Porphyromonas gingivalis/efectos de los fármacos , Porphyromonas gingivalis/crecimiento & desarrollo , Porphyromonas gingivalis/patogenicidad , Proteínas Recombinantes/genética , Proteínas Recombinantes/metabolismo , Sialoglicoproteínas/metabolismo , Tannerella forsythia/enzimología , Factores de Virulencia/genética , Zanamivir/farmacología
5.
Appl Environ Microbiol ; 84(1)2018 01 01.
Artículo en Inglés | MEDLINE | ID: mdl-29079615

RESUMEN

Tannerella forsythia and Fusobacterium nucleatum are dental plaque bacteria implicated in the development of periodontitis. These two species have been shown to form synergistic biofilms and have been found to be closely associated in dental plaque biofilms. A number of genetic loci for TonB-dependent membrane receptors (TDR) for glycan acquisition, with many existing in association with genes coding for enzymes involved in the breakdown of complex glycans, have been identified in T. forsythia In this study, we focused on a locus, BFO_0186-BFO_0188, that codes for a predicted TDR-SusD transporter along with a putative ß-glucan hydrolyzing enzyme (BFO_0186). This operon is located immediately downstream of a 2-gene operon that codes for a putative stress-responsive extracytoplasmic function (ECF) sigma factor and an anti-sigma factor. Here, we show that BFO_0186 expresses a ß-glucanase that cleaves glucans with ß-1,6 and ß-1,3 linkages. Furthermore, the BFO_0186-BFO_0188 locus is upregulated, with an induction of ß-glucanase activity, in cobiofilms of T. forsythia and F. nucleatum The ß-glucanase activity in mixed biofilms in turn leads to an enhanced hydrolysis of ß-glucans and release of glucose monomers and oligomers as nutrients for F. nucleatum In summary, our study highlights the role of T. forsythia ß-glucanase expressed by the asaccharolytic oral bacterium T. forsythia in the development of T. forsythia-F. nucleatum mixed species biofilms, and suggest that dietary ß-glucans might contribute in plaque development and periodontal disease pathogenesis.IMPORTANCE The development of dental plaque biofilm is a complex process in which metabolic, chemical and physical interactions between bacteria take a central role. Previous studies have shown that the dental pathogens T. forsythia and F. nucleatum form synergistic biofilms and are closely associated in human dental plaque. In this study, we show that ß-glucanase from the periodontal pathogen T. forsythia plays a role in the formation of T. forsythia-F. nucleatum cobiofilms by hydrolyzing ß-glucans to glucose as a nutrient. We also unveiled that the expression of T. forsythia ß-glucanase is induced in response to F. nucleatum sensing. This study highlights the involvement of ß-glucanase activity in the development of T. forsythia-F. nucleatum biofilms and suggests that intake of dietary ß-glucans might be a contributing risk factor in plaque development and periodontal disease pathogenesis.


Asunto(s)
Biopelículas/crecimiento & desarrollo , Placa Dental/microbiología , Fusobacterium nucleatum/fisiología , Tannerella forsythia/enzimología , Fusobacterium nucleatum/crecimiento & desarrollo , Humanos
6.
Glycobiology ; 27(4): 342-357, 2017 04 01.
Artículo en Inglés | MEDLINE | ID: mdl-27986835

RESUMEN

Tannerella forsythia is an anaerobic, Gram-negative periodontal pathogen. A unique O-linked oligosaccharide decorates the bacterium's cell surface proteins and was shown to modulate the host immune response. In our study, we investigated the biosynthesis of the nonulosonic acid (NulO) present at the terminal position of this glycan. A bioinformatic analysis of T. forsythia genomes revealed a gene locus for the synthesis of pseudaminic acid (Pse) in the type strain ATCC 43037 while strains FDC 92A2 and UB4 possess a locus for the synthesis of legionaminic acid (Leg) instead. In contrast to the NulO in ATCC 43037, which has been previously identified as a Pse derivative (5-N-acetimidoyl-7-N-glyceroyl-3,5,7,9-tetradeoxy-l-glycero-l-manno-NulO), glycan analysis of strain UB4 performed in this study indicated a 350-Da, possibly N-glycolyl Leg (3,5,7,9-tetradeoxy-d-glycero-d-galacto-NulO) derivative with unknown C5,7 N-acyl moieties. We have expressed, purified and characterized enzymes of both NulO pathways to confirm these genes' functions. Using capillary electrophoresis (CE), CE-mass spectrometry and NMR spectroscopy, our studies revealed that Pse biosynthesis in ATCC 43037 essentially follows the UDP-sugar route described in Helicobacter pylori, while the pathway in strain FDC 92A2 corresponds to Leg biosynthesis in Campylobacter jejuni involving GDP-sugar intermediates. To demonstrate that the NulO biosynthesis enzymes are functional in vivo, we created knockout mutants resulting in glycans lacking the respective NulO. Compared to the wild-type strains, the mutants exhibited significantly reduced biofilm formation on mucin-coated surfaces, suggestive of their involvement in host-pathogen interactions or host survival. This study contributes to understanding possible biological roles of bacterial NulOs.


Asunto(s)
Vías Biosintéticas/genética , Proteínas de la Membrana/genética , Tannerella forsythia/genética , Genoma Bacteriano/genética , Glicosilación , Interacciones Huésped-Patógeno/genética , Espectroscopía de Resonancia Magnética , Espectrometría de Masas , Oligosacáridos/genética , Oligosacáridos/metabolismo , Ácidos Siálicos/biosíntesis , Azúcares Ácidos/metabolismo , Tannerella forsythia/enzimología , Tannerella forsythia/patogenicidad
7.
J Bacteriol ; 198(22): 3119-3125, 2016 11 15.
Artículo en Inglés | MEDLINE | ID: mdl-27601356

RESUMEN

Tannerella forsythia is a Gram-negative periodontal pathogen lacking the ability to undergo de novo synthesis of amino sugars N-acetylmuramic acid (MurNAc) and N-acetylglucosamine (GlcNAc) that form the disaccharide repeating unit of the peptidoglycan backbone. T. forsythia relies on the uptake of these sugars from the environment, which is so far unexplored. Here, we identified a novel transporter system of T. forsythia involved in the uptake of MurNAc across the inner membrane and characterized a homolog of the Escherichia coli MurQ etherase involved in the conversion of MurNAc-6-phosphate (MurNAc-6-P) to GlcNAc-6-P. The genes encoding these components were identified on a three-gene cluster spanning Tanf_08375 to Tanf_08385 located downstream from a putative peptidoglycan recycling locus. We show that the three genes, Tanf_08375, Tanf_08380, and Tanf_08385, encoding a MurNAc transporter, a putative sugar kinase, and a MurQ etherase, respectively, are transcriptionally linked. Complementation of the Tanf_08375 and Tanf_08380 genes together in trans, but not individually, rescued the inability of an E. coli mutant deficient in the phosphotransferase (PTS) system-dependent MurNAc transporter MurP as well as that of a double mutant deficient in MurP and components of the PTS system to grow on MurNAc. In addition, complementation with this two-gene construct in E. coli caused depletion of MurNAc in the medium, further confirming this observation. Our results show that the products of Tanf_08375 and Tanf_08380 constitute a novel non-PTS MurNAc transporter system that seems to be widespread among bacteria of the Bacteroidetes phylum. To the best of our knowledge, this is the first identification of a PTS-independent MurNAc transporter in bacteria. IMPORTANCE: In this study, we report the identification of a novel transporter for peptidoglycan amino sugar N-acetylmuramic acid (MurNAc) in the periodontal pathogen T. forsythia It has been known since the late 1980s that T. forsythia is a MurNAc auxotroph relying on environmental sources for this essential sugar. Most sugar transporters, and the MurNAc transporter MurP in particular, require a PTS phosphorelay to drive the uptake and concurrent phosphorylation of the sugar through the inner membrane in Gram-negative bacteria. Our study uncovered a novel type of PTS-independent MurNAc transporter, and although so far, it seems to be unique to T. forsythia, it may be present in a range of bacteria both of the oral cavity and gut, especially of the phylum Bacteroidetes.


Asunto(s)
Proteínas Bacterianas/metabolismo , Glicósido Hidrolasas/metabolismo , Proteínas de Transporte de Membrana/metabolismo , Ácidos Murámicos/metabolismo , Tannerella forsythia/genética , Proteínas Bacterianas/genética , Escherichia coli/genética , Glicósido Hidrolasas/genética , Proteínas de Transporte de Membrana/genética , Peptidoglicano/metabolismo , Tannerella forsythia/enzimología
8.
Microb Pathog ; 94: 12-20, 2016 May.
Artículo en Inglés | MEDLINE | ID: mdl-26318875

RESUMEN

Tannerella forsythia is a periodontal pathogen implicated in periodontitis. This gram-negative pathogen depends on exogenous peptidoglycan amino sugar N-acetylmuramic acid (NAM) for growth. In the biofilm state the bacterium can utilize sialic acid (Neu5Ac) instead of NAM to sustain its growth. Thus, the sialic acid utilization system of the bacterium plays a critical role in the growth and survival of the organism in the absence of NAM. We sought the function of a T. forsythia gene annotated as nanT coding for an inner-membrane sugar transporter located on a sialic acid utilization genetic cluster. To determine the function of this putative sialic acid transporter, an isogenic nanT-deletion mutant generated by allelic replacement strategy was evaluated for biofilm formation on NAM or Neu5Ac, and survival on KB epithelial cells. Moreover, since T. forsythia forms synergistic biofilms with Fusobacterium nucleatum, co-biofilm formation activity in mixed culture and sialic acid uptake in culture were also assessed. The data showed that the nanT-inactivated mutant of T. forsythia was attenuated in its ability to uptake sialic acid. The mutant formed weaker biofilms compared to the wild-type strain in the presence of sialic acid and as co-biofilms with F. nucleatum. Moreover, compared to the wild-type T. forsythia nanT-inactivated mutant showed reduced survival when incubated on KB epithelial cells. Taken together, the data presented here demonstrate that NanT-mediated sialic transportation is essential for sialic acid utilization during biofilm growth and survival of the organism on epithelial cells and implies sialic acid might be key for its survival both in subgingival biofilms and during infection of human epithelial cells in vivo.


Asunto(s)
Biopelículas/crecimiento & desarrollo , Células Epiteliales/microbiología , Transportadores de Anión Orgánico/metabolismo , Simportadores/metabolismo , Tannerella forsythia/metabolismo , Adhesión Bacteriana , Proteínas de la Membrana Bacteriana Externa/genética , Proteínas de la Membrana Bacteriana Externa/metabolismo , ADN Bacteriano/genética , Fusobacterium nucleatum/crecimiento & desarrollo , Fusobacterium nucleatum/metabolismo , Genes Bacterianos , Infecciones por Bacterias Gramnegativas/genética , Infecciones por Bacterias Gramnegativas/metabolismo , Humanos , Células KB , Ácidos Murámicos/metabolismo , Neuraminidasa/metabolismo , Transportadores de Anión Orgánico/biosíntesis , Transportadores de Anión Orgánico/genética , Eliminación de Secuencia , Simportadores/biosíntesis , Simportadores/genética , Tannerella forsythia/genética , Tannerella forsythia/crecimiento & desarrollo
9.
Mol Oral Microbiol ; 39(2): 40-46, 2024 Apr.
Artículo en Inglés | MEDLINE | ID: mdl-37459655

RESUMEN

The oral organism Tannerella forsythia is auxotrophic for peptidoglycan amino sugar N-acetylmuramic acid (MurNAc). It survives in the oral cavity by scavenging MurNAc- and MurNAc-linked peptidoglycan fragments (muropeptides) secreted by co-habiting bacteria such as Fusobacterium nucleatum with which it forms synergistic biofilms. Muropeptides, MurNAc-l-Ala-d-isoGln (MDP, muramyl dipeptide) and d-γ-glutamyl-meso-DAP (iE-DAP dipeptide), are strong immunostimulatory molecules that activate nucleotide oligomerization domain (NOD)-like innate immune receptors and induce the expression of inflammatory cytokines and antimicrobial peptides. In this study, we utilized an in vitro T. forsythia-F. nucleatum co-culture model to determine if T. forsythia can selectively scavenge NOD ligands from the environment and impact NOD-mediated inflammation. The results showed that NOD-stimulatory molecules were secreted by F. nucleatum in the spent culture broth, which subsequently induced cytokine and antimicrobial peptide expression in oral epithelial cells. In the spent broth from T. forsythia-F. nucleatum co-cultures, the NOD-stimulatory activity was significantly reduced. These data indicated that F. nucleatum releases NOD2-stimulatory muropeptides in the environment, and T. forsythia can effectively scavenge the muropeptides released by co-habiting bacteria to dampen NOD-mediated host responses. This proof-of-principle study demonstrated that peptidoglycan scavenging by T. forsythia can impact the innate immunity of oral epithelium by dampening NOD activation.


Asunto(s)
Fusobacterium nucleatum , Tannerella forsythia , Tannerella forsythia/metabolismo , Fusobacterium nucleatum/fisiología , Peptidoglicano , Boca , Células Epiteliales/metabolismo , Citocinas/metabolismo
10.
Immunol Invest ; 42(7): 519-31, 2013.
Artículo en Inglés | MEDLINE | ID: mdl-24004056

RESUMEN

Bone undergoes a continuous cycle of remodeling for maintenance and healing. For almost a decade it has been appreciated that the immune system is intricately linked to bone homeostasis. Both acute and chronic inflammatory responses have been shown to impact bone health. A common form of inflammatory disease that causes bone destruction is the chronic infectious disease known as periodontitis (PD). PD is a bacteria-driven inflammation of the tooth-supporting apparatus that leads to resorption of the alveolar (jaw) bone, often leading to tooth loss. At the host-bacteria interface, Toll-like receptors (TLRs) play an instructive role in the development of innate and T cell adaptive responses to oral bacteria. Specifically, it is becoming apparent that TLR2-mediated inflammatory responses represent the major arm of the host immune response during periodontitis, and form an important link between periodontal infection and ensuing periodontal bone loss. This review summarizes the role of TLR2-mediated interplay between immune cells and bone cells in a periodontal disease setting.


Asunto(s)
Maxilares , Periodontitis/etiología , Subgrupos de Linfocitos T/inmunología , Subgrupos de Linfocitos T/metabolismo , Receptores Toll-Like/metabolismo , Pérdida de Hueso Alveolar/inmunología , Pérdida de Hueso Alveolar/metabolismo , Animales , Humanos , Maxilares/inmunología , Maxilares/metabolismo , Maxilares/microbiología , Maxilares/patología , Transducción de Señal , Receptor Toll-Like 2/metabolismo
11.
J Immunol ; 187(1): 501-9, 2011 Jul 01.
Artículo en Inglés | MEDLINE | ID: mdl-21632710

RESUMEN

Periodontal disease (PD) is a chronic inflammation of the tooth-supporting soft tissue and alveolar bone due to infection by a select group of gram-negative microbes, which leads to tooth loss if untreated. Because mice deficient in CD4(+) cells are resistant to infection-induced alveolar bone loss, Th cells have been implicated in bone-destructive processes during PD. However, the extent to which different Th cell subtypes play roles in pathogenesis or host protection remains to be defined and is likely to vary depending on the dominant microorganism involved. By far, Porphyromonas gingivalis is the best-studied periodontal microbe in PD. Although the gram-negative anaerobe Tannerella forsythia is also a vital contributor to periodontal bone loss, almost nothing is known about immune responses to this organism. Previous studies from our laboratory revealed that T. forsythia induces periodontal bone loss in mice and that this bone loss depends on the bacterially expressed BspA protein. In this study, we showed that T. forsythia activates murine APCs primarily through TLR2-dependent signaling via BspA. Furthermore, T. forsythia infection causes a pronounced Th2 bias, evidenced by T cell expression of IL-5, but not IFN-γ or IL-17, in draining lymph nodes. Consistently, deficiencies in TLR2 or STAT6 result in resistance to T. forsythia-induced alveolar bone loss. Thus, TLR2 signaling and Th2 cells play pathogenic roles in T. forsythia-induced alveolar bone destruction.


Asunto(s)
Pérdida de Hueso Alveolar/inmunología , Infecciones por Flavobacteriaceae/inmunología , Flavobacteriaceae/inmunología , Transducción de Señal/inmunología , Células Th2/inmunología , Receptor Toll-Like 2/fisiología , Pérdida de Hueso Alveolar/genética , Pérdida de Hueso Alveolar/patología , Animales , Infecciones por Flavobacteriaceae/genética , Infecciones por Flavobacteriaceae/patología , Mediadores de Inflamación/fisiología , Ratones , Ratones Endogámicos BALB C , Ratones Noqueados , Distribución Aleatoria , Transducción de Señal/genética , Células Th2/metabolismo , Células Th2/patología , Receptor Toll-Like 2/deficiencia
12.
J Oral Implantol ; 39(2): 215-24, 2013 Apr.
Artículo en Inglés | MEDLINE | ID: mdl-22248122

RESUMEN

Patients with moderate to severe atrophy challenge the surgeon to discover alternative ways to use existing bone or resort to augmenting the patient with autogenous or alloplastic bone materials. Many procedures have been suggested for these atrophied maxillae before implant placement, which include Le Fort I maxillary downfracture, onlay bone grafts and maxillary sinus graft procedures. A zygomatic implant can be an effective device for rehabilitation of the severely resorbed maxilla. If zygomatic implants are used, onlay bone grafting or sinus augmentation would likely not be necessary. The purpose of this article is to review the developments that have taken place in zygomatic implant treatment over years, including anatomic information for installing the zygomatic implants, implant placement techniques, stabilization, and prosthodontic procedures.


Asunto(s)
Implantes Dentales , Cigoma/cirugía , Atrofia , Implantación Dental Endoósea/métodos , Diseño de Prótesis Dental , Humanos , Maxilar/patología
13.
Sci Rep ; 13(1): 19311, 2023 11 07.
Artículo en Inglés | MEDLINE | ID: mdl-37935693

RESUMEN

A two-year field study was conducted during Rabi 2018-2019 and 2019-20 to find out the influence of different residue and weed management practices on weed dynamics, growth, yield, energetics, carbon footprint, economics and soil properties in zero-tilled sown wheat at Research Farm, AICRP-Weed management, SKUAST-Jammu. The experiment with four rice residue management practices and four weed management practices was conducted in a Strip-Plot Design and replicated thrice. The results showed that residue retention treatments recorded lower weed density, biomass and higher wheat growth, yield attributes and yields of wheat as compared to no residue treatment. The magnitude of increase in wheat grain yield was 17.55, 16.98 and 7.41% when treated with 125% recommended dose of nitrogen + residue + waste decomposer (RDN + R + WD), 125% RDN + R, and 100% RDN + R, respectively, compared to no residue treatment. Further, all three herbicidal treatments decreased weed density and biomass than weedy treatments. Consequently, a reduction of 29.30, 28.00, and 25.70% in grain yield were observed in control as compared to sulfosulfuron + carfentrazone, clodinafop-propargyl + metasulfuron, and clodinafop-propargyl + metribuzin, respectively. Moreover, 125% RDN + R + WD obtained significantly higher energy output (137860 MJ ha-1) and carbon output (4522 kg CE/ha), but 100% RDN had significantly higher net energy (101802 MJ ha-1), energy use efficiency (7.66), energy productivity (0.23 kg MJ-1), energy profitability (6.66 kg MJ-1), carbon efficiency (7.66), and less carbon footprint (7.66) as compared to other treatments. Despite this, treatments with 125% RDN + R + WD and 125% RDN + R provided 17.58 and 16.96% higher gross returns, and 24.45% and 23.17% net outcomes, respectively, than that of control. However, compared to the control, sulfosulfuron + carfentrazone showed considerably higher energy output (140492 MJ ha-1), net energy (104778 MJ ha-1), energy usage efficiency (4.70), energy productivity (0.14 kg MJ-1), energy profitability (3.70 kg MJ-1), carbon output (4624 kg CE ha-1), carbon efficiency (4.71), and lower carbon footprint (0.27). Furthermore, sulfosulfuron + carfentrazone, clodinafop-propargyl + metasulfuron, and clodinafop-propargyl + metribuzin recorded 29.29% and 38.42%, 27.99%, and 36.91%, 25.69% and 34.32% higher gross returns and net returns over control treatment, respectively. All three herbicides showed higher gross returns, net returns, and benefit cost ratio over control. The soil nutrient status was not significantly affected either by residue or weed management practices. Therefore, based on present study it can be concluded that rice residue retention with 25% additional nitrogen and weed management by clodinafop-propargyl + metasulfuron herbicide found suitable for zero tillage wheat.


Asunto(s)
Herbicidas , Oryza , Suelo/química , Triticum , Agricultura/métodos , Huella de Carbono , Grano Comestible/química , Herbicidas/farmacología , Herbicidas/análisis , Nitrógeno/análisis , Carbono/análisis
14.
Infect Immun ; 80(7): 2436-43, 2012 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-22547549

RESUMEN

Tannerella forsythia is strongly associated with chronic periodontitis, an inflammatory disease of the tooth-supporting tissues, leading to tooth loss. Fusobacterium nucleatum, an opportunistic pathogen, is thought to promote dental plaque formation by serving as a bridge bacterium between early- and late-colonizing species of the oral cavity. Previous studies have shown that F. nucleatum species synergize with T. forsythia during biofilm formation and pathogenesis. In the present study, we showed that coinfection of F. nucleatum and T. forsythia is more potent than infection with either species alone in inducing NF-κB activity and proinflammatory cytokine secretion in monocytic cells and primary murine macrophages. Moreover, in a murine model of periodontitis, mixed infection with the two species induces synergistic alveolar bone loss, characterized by bone loss which is greater than the additive alveolar bone losses induced by each species alone. Further, in comparison to the single-species infection, mixed infection caused significantly increased inflammatory cell infiltration in the gingivae and osteoclastic activity in the jaw bones. These data show that F. nucleatum subspecies and T. forsythia synergistically stimulate the host immune response and induce alveolar bone loss in a murine experimental periodontitis model.


Asunto(s)
Pérdida de Hueso Alveolar/microbiología , Pérdida de Hueso Alveolar/patología , Bacteroidetes/patogenicidad , Fusobacterium nucleatum/patogenicidad , Infecciones por Bacterias Gramnegativas/patología , Periodontitis/microbiología , Periodontitis/patología , Animales , Coinfección/microbiología , Coinfección/patología , Modelos Animales de Enfermedad , Femenino , Infecciones por Bacterias Gramnegativas/microbiología , Ratones , Ratones Endogámicos BALB C
15.
Biochem Biophys Res Commun ; 423(3): 577-82, 2012 Jul 06.
Artículo en Inglés | MEDLINE | ID: mdl-22695115

RESUMEN

Pathogenesis of many bacterially-induced inflammatory diseases is driven by Toll-like receptor (TLR) mediated immune responses following recognition of bacterial factors by different TLRs. Periodontitis is a chronic inflammation of the tooth supporting apparatus often leading to tooth loss, and is caused by a Gram-negative bacterial consortium that includes Tannerella forsythia. This bacterium expresses a virulence factor, the BspA, which drives periodontal inflammation by activating TLR2. The N-terminal portion of the BspA protein comprises a leucine-rich repeat (LRR) domain previously shown to be involved in the binding and activation of TLR2. The objective of the current study was to identify specific epitopes in the LRR domain of BspA that interact with TLR2. Our results demonstrate that a sequence motif GC(S/T)GLXSIT is involved in mediating the interaction of BspA with TLR2. Thus, our study has identified a peptide motif that mediates the binding of a bacterial protein to TLR2 and highlights the promiscuous nature of TLR2 with respect to ligand binding. This work could provide a structural basis for designing peptidomimetics to modulate the activity of TLR2 in order to block bacterially-induced inflammation.


Asunto(s)
Proteínas Bacterianas/metabolismo , Bacteroidetes/metabolismo , Proteínas de la Membrana/metabolismo , Receptor Toll-Like 2/metabolismo , Secuencias de Aminoácidos , Secuencia de Aminoácidos , Animales , Proteínas Bacterianas/química , Células HEK293 , Humanos , Leucina , Proteínas de la Membrana/química , Ratones , Ratones Endogámicos BALB C , Datos de Secuencia Molecular , Fragmentos de Péptidos/química , Fragmentos de Péptidos/metabolismo , Periodontitis/microbiología , Mapas de Interacción de Proteínas , Estructura Terciaria de Proteína , Receptor Toll-Like 2/química , Receptor Toll-Like 2/genética , Tripsina/química
16.
Pathog Dis ; 80(1)2022 04 29.
Artículo en Inglés | MEDLINE | ID: mdl-35404415

RESUMEN

Tannerella forsythia is strongly implicated in the development of periodontitis, an inflammatory disease that destroys the bone and soft tissues supporting the tooth.  To date, the knowledge of the virulence attributes of T. forsythia species has mainly come from studies with a laboratory adapted strain (ATCC 43037). In this study, we focused on two T. forsythia clinical isolates, UB4 and UB20, in relation to their ability to activate macrophages. We found that these clinical isolates differentially induced proinflammatory cytokine expression in macrophages. Prominently, the expression of the chemokine protein IP-10 (CXCL10) was highly induced by UB20 as compared to UB4 and the laboratory strain ATCC 43037. Our study focused on the lipopolysaccharide component (LPS) of these strains and found that UB20 expressed a smooth-type LPS, unlike UB4 and ATCC 43037 each of which expressed a rough-type LPS. The LPS from UB20, via activation of TLR4, was found to be a highly potent inducer of IP-10 expression via signaling through STAT1 (signal transducer and activator of transcription-1). These data suggest that pathogenicity of T. forsythia species could be strain dependent and the LPS heterogeneity associated with the clinical strains might be responsible for their pathogenic potential and severity of periodontitis.


Asunto(s)
Periodontitis , Tannerella forsythia , Quimiocina CXCL10/genética , Humanos , Interferón gamma , Lipopolisacáridos , Macrófagos
17.
ACS Infect Dis ; 8(9): 1831-1838, 2022 09 09.
Artículo en Inglés | MEDLINE | ID: mdl-35924866

RESUMEN

The human oral microbiome is the second largest microbial community in humans, harboring over 700 bacterial species, which aid in digestion and protect from growth of disease-causing pathogens. One such oral pathogen, Tannerella forsythia, along with other species, contributes to the pathogenesis of periodontitis. T. forsythia is unable to produce its own N-acetylmuramic acid (NAM) sugar, essential for peptidoglycan biosynthesis and therefore must scavenge NAM from other species with which it cohabitates. Here, we explore the recycling potential of T. forsythia for NAM uptake with a bioorthogonal modification into its peptidoglycan, allowing for click-chemistry-based visualization of the cell wall structure. Additionally, we identified NAM recycling enzyme homologues in T. forsythia that are similar to the enzymes found in Pseudomonas putida. These homologues were then genetically transformed into a laboratory safe Escherichia coli strain, resulting in the efficient incorporation of unnatural NAM analogues into the peptidoglycan backbone and its visualization, alone or in the presence of human macrophages. This strain will be useful in further studies to probe NAM recycling and peptidoglycan scavenging pathways of T. forsythia and other cohabiting bacteria.


Asunto(s)
Peptidoglicano , Pseudomonas putida , Pared Celular/química , Escherichia coli/metabolismo , Humanos , Ácidos Murámicos , Pseudomonas putida/genética , Tannerella forsythia/metabolismo
18.
Mol Oral Microbiol ; 37(2): 42-52, 2022 04.
Artículo en Inglés | MEDLINE | ID: mdl-34958712

RESUMEN

Recent epidemiological studies have shown that inflammatory bowel disease is associated with periodontal disease. The oral-gut microbiota axis is a potential mechanism intersecting the two diseases. Porphyromonas gingivalis is currently considered a keystone oral pathogen involved in periodontal disease pathogenesis and disease progression. Recent studies have shown that oral ingestion of P. gingivalis leads to intestinal inflammation. However, the molecular underpinnings of P. gingivalis-mediated gut inflammation have remained elusive. In this study, we show that the oral administration of P. gingivalis indeed leads to ileal inflammation and alteration in gut microbiota with significant reduction in bacterial alpha diversity despite the absence of P. gingivalis in the lower gastrointestinal tract. Utilizing an antibiotic-conditioned mouse model, cecal microbiota transfer experiments were performed to demonstrate that P. gingivalis-induced dysbiotic gut microbiota is sufficient to reproduce gut pathology. Furthermore, we observed a significant expansion in small intestinal lamina propria IL9+ CD4+ T cells, which was negatively correlated with both bacterial and fungal alpha diversity, signifying that P. gingivalis-mediated intestinal inflammation may be due to the subsequent loss of gut microbial diversity. Finally, we detected changes in gene expression related to gut epithelial barrier function, showing the potential downstream effect of intestinal IL9+ CD4+ T-cell induction. This study for the first time showed the mechanism behind P. gingivalis-mediated intestinal inflammation where P. gingivalis indirectly induces intestinal IL9+ CD4+ T cells and inflammation by altering the gut microbiota. Understanding the mechanism of P. gingivalis-mediated intestinal inflammation may lead to the development of novel therapeutic approaches to alleviate the morbidity from inflammatory bowel disease patients with periodontal disease.


Asunto(s)
Microbioma Gastrointestinal , Enfermedades Inflamatorias del Intestino , Enfermedades Periodontales , Animales , Linfocitos T CD4-Positivos , Humanos , Inflamación/patología , Interleucina-9 , Ratones , Enfermedades Periodontales/microbiología , Porphyromonas gingivalis/genética , Linfocitos T
19.
Infect Immun ; 79(1): 393-401, 2011 Jan.
Artículo en Inglés | MEDLINE | ID: mdl-21078857

RESUMEN

Tannerella forsythia is a Gram-negative oral anaerobe which contributes to the development of periodontitis, an inflammatory disease of the tooth-supporting tissues leading to tooth loss. The mechanisms by which this bacterium colonizes the oral cavity are poorly understood. The bacterium has been shown to express two distinct sialidases, namely, SiaHI and NanH, with the latter being the major sialidase. Bacterial sialidases can play roles in pathogenesis by cleaving sialic acids on host glycoproteins, destroying their integrity, and/or unmasking hidden epitopes on host surfaces for colonization. In the present study, we investigated the roles of the SiaHI and NanH sialidases by generating and characterizing specific deletion mutants. Our results showed that the NanH deficiency resulted in a total loss of sialidase activity associated with the outer-membrane and secreted fractions. On the other hand, the SiaHI deficiency resulted in only a slight reduction in the total sialidase activity, with no significant differences in the levels of sialidase activity in the outer membrane or secreted fractions compared to that in the wild-type strain. The results demonstrated that NanH is both surface localized and secreted. The NanH-deficient mutant but not the SiaHI-deficient mutant was significantly attenuated in epithelial cell binding and invasion abilities compared to the wild-type strain. Moreover, the NanH-deficient mutant alone was impaired in cleaving surface sialic acids on epithelial cells. Thus, our study suggests that NanH sialidase might play roles in bacterial colonization by exposing sialic acid-hidden epitopes on epithelial cells.


Asunto(s)
Adhesión Bacteriana/fisiología , Proteínas Bacterianas/metabolismo , Células Epiteliales/microbiología , Bacterias Anaerobias Gramnegativas/enzimología , Neuraminidasa/metabolismo , Proteínas Bacterianas/genética , Línea Celular , Eliminación de Gen , Regulación Bacteriana de la Expresión Génica/fisiología , Humanos
20.
Microbiology (Reading) ; 157(Pt 8): 2382-2391, 2011 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-21622527

RESUMEN

Tannerella forsythia, a Gram-negative anaerobe implicated in periodontitis, has been detected within human buccal epithelial cells and shown to invade oral epithelial cells in vitro. We have previously shown that this bacterium triggers host tyrosine kinase-dependent phosphorylation and actin-dependent cytoskeleton reorganization for invasion. On the bacterial side, the leucine-rich repeat cell-surface BspA protein is important for entry. The present study was undertaken to identify host signalling molecules during T. forsythia entry into human oral and cervical epithelial cells. Specifically, the roles of phosphatidylinositol 3-kinase (PI3K), Rho-family GTPases, cholesterol-rich membrane microdomains and the endocytic protein clathrin were investigated. For this purpose, cell lines were pretreated with chemical inhibitors or small interfering RNAs (siRNAs) that target PI3Ks, Rho GTPases, clathrin and cholesterol (a critical component of 'lipid rafts'), and the resulting effects on T. forsythia uptake were determined. Our studies revealed that T. forsythia entry is dependent on host PI3K signalling, and that purified BspA protein causes activation of this lipid kinase. Bacterial entry also requires the cooperation of host Rac1 GTPase. Finally, our findings indicate an important role for clathrin and cholesterol-rich lipid microdomains in the internalization process.


Asunto(s)
Proteínas Bacterianas/metabolismo , Bacteroidetes/patogenicidad , Endocitosis , Células Epiteliales/microbiología , Interacciones Huésped-Patógeno , Proteínas de la Membrana/metabolismo , Fosfatidilinositol 3-Quinasas/metabolismo , Proteína de Unión al GTP rac1/metabolismo , Clatrina/metabolismo , Células HeLa , Humanos , Microdominios de Membrana/metabolismo , Mucosa Bucal/microbiología
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