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Rasesh Y. Parikh - One of the best experts on this subject based on the ideXlab platform.
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Genus-Wide Physicochemical Evidence of Extracellular Crystalline Silver Nanoparticles Biosynthesis by Morganella spp
PloS one, 2011Co-Authors: Rasesh Y. Parikh, Rajesh Ramanathan, Peter J. Coloe, Suresh K. Bhargava, Milind S. Patole, Yogesh S. Shouche, Vipul BansalAbstract:This study was performed to determine whether extracellular silver nanoparticles (AgNPs) production is a genus-wide phenotype associated with all the members of genus Morganella, or only Morganella morganii RP-42 isolate is able to synthesize extracellular Ag nanoparticles. To undertake this study, all the available Morganella isolates were exposed to Ag+ ions, and the obtained nanoproducts were thoroughly analyzed using physico-chemical characterization tools such as transmission electron microscopy (TEM), UV-visible spectrophotometry (UV-vis), and X-ray diffraction (XRD) analysis. It was identified that extracellular biosynthesis of crystalline silver nanoparticles is a unique biochemical character of all the members of genus Morganella, which was found independent of environmental changes. Significantly, the inability of other closely related members of the family Enterobacteriaceae towards AgNPs synthesis strongly suggests that AgNPs synthesis in the presence of Ag+ ions is a phenotypic character that is uniquely associated with genus Morganella.
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Extracellular Synthesis of Crystalline Silver Nanoparticles and Molecular Evidence of Silver Resistance from Morganella sp.: Towards Understanding Biochemical Synthesis Mechanism
Chembiochem : a European journal of chemical biology, 2008Co-Authors: Rasesh Y. Parikh, Milind S. Patole, Sanjay Singh, B. L. V. Prasad, Murali Sastry, Yogesh S. ShoucheAbstract:There has been significant progress in the biological synthesis of nanomaterials. However, the molecular mechanism of synthesis of such bio-nanomaterials remains largely unknown. Here, we report the extracellular synthesis of crystalline silver nanoparticles (AgNPs) by using Morganella sp., and show molecular evidence of silver resistance by elucidating the synthesis mechanism. The AgNPs were 20±5 nm in diameter and were highly stable at room temperature. The kinetics of AgNPs formation was investigated. Detectable particles were formed after an hour of reaction, and their production remained exponential up to 18 h, and saturated at 24 h. Morganella sp. was found to be highly resistant to silver cations and was able to grow in the presence of more than 0.5 mM AgNO3. Three gene homologues viz. silE, silP and silS were identified in silver-resistant Morganella sp. The homologue of silE from Morganella sp. showed 99 % nucleotide sequence similarity with the previously reported gene, silE, which encodes a periplasmic silver-binding protein. The homologues of silP and silS were also highly similar to previously reported sequences. Similar activity was totally absent in closely related Escherichia coli; this suggests that a unique mechanism of extracellular AgNPs synthesis is associated with silver-resistant Morganella sp. The molecular mechanism of silver resistance and its gene products might have a key role to play in the overall synthesis process of AgNPs by Morganella sp. An understanding of such biochemical mechanisms at the molecular level might help in developing an ecologically friendly and cost-effective protocol for microbial AgNPs synthesis.
Yogesh S. Shouche - One of the best experts on this subject based on the ideXlab platform.
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Genus-Wide Physicochemical Evidence of Extracellular Crystalline Silver Nanoparticles Biosynthesis by Morganella spp
PloS one, 2011Co-Authors: Rasesh Y. Parikh, Rajesh Ramanathan, Peter J. Coloe, Suresh K. Bhargava, Milind S. Patole, Yogesh S. Shouche, Vipul BansalAbstract:This study was performed to determine whether extracellular silver nanoparticles (AgNPs) production is a genus-wide phenotype associated with all the members of genus Morganella, or only Morganella morganii RP-42 isolate is able to synthesize extracellular Ag nanoparticles. To undertake this study, all the available Morganella isolates were exposed to Ag+ ions, and the obtained nanoproducts were thoroughly analyzed using physico-chemical characterization tools such as transmission electron microscopy (TEM), UV-visible spectrophotometry (UV-vis), and X-ray diffraction (XRD) analysis. It was identified that extracellular biosynthesis of crystalline silver nanoparticles is a unique biochemical character of all the members of genus Morganella, which was found independent of environmental changes. Significantly, the inability of other closely related members of the family Enterobacteriaceae towards AgNPs synthesis strongly suggests that AgNPs synthesis in the presence of Ag+ ions is a phenotypic character that is uniquely associated with genus Morganella.
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Extracellular Synthesis of Crystalline Silver Nanoparticles and Molecular Evidence of Silver Resistance from Morganella sp.: Towards Understanding Biochemical Synthesis Mechanism
Chembiochem : a European journal of chemical biology, 2008Co-Authors: Rasesh Y. Parikh, Milind S. Patole, Sanjay Singh, B. L. V. Prasad, Murali Sastry, Yogesh S. ShoucheAbstract:There has been significant progress in the biological synthesis of nanomaterials. However, the molecular mechanism of synthesis of such bio-nanomaterials remains largely unknown. Here, we report the extracellular synthesis of crystalline silver nanoparticles (AgNPs) by using Morganella sp., and show molecular evidence of silver resistance by elucidating the synthesis mechanism. The AgNPs were 20±5 nm in diameter and were highly stable at room temperature. The kinetics of AgNPs formation was investigated. Detectable particles were formed after an hour of reaction, and their production remained exponential up to 18 h, and saturated at 24 h. Morganella sp. was found to be highly resistant to silver cations and was able to grow in the presence of more than 0.5 mM AgNO3. Three gene homologues viz. silE, silP and silS were identified in silver-resistant Morganella sp. The homologue of silE from Morganella sp. showed 99 % nucleotide sequence similarity with the previously reported gene, silE, which encodes a periplasmic silver-binding protein. The homologues of silP and silS were also highly similar to previously reported sequences. Similar activity was totally absent in closely related Escherichia coli; this suggests that a unique mechanism of extracellular AgNPs synthesis is associated with silver-resistant Morganella sp. The molecular mechanism of silver resistance and its gene products might have a key role to play in the overall synthesis process of AgNPs by Morganella sp. An understanding of such biochemical mechanisms at the molecular level might help in developing an ecologically friendly and cost-effective protocol for microbial AgNPs synthesis.
Vipul Bansal - One of the best experts on this subject based on the ideXlab platform.
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Genus-Wide Physicochemical Evidence of Extracellular Crystalline Silver Nanoparticles Biosynthesis by Morganella spp
PloS one, 2011Co-Authors: Rasesh Y. Parikh, Rajesh Ramanathan, Peter J. Coloe, Suresh K. Bhargava, Milind S. Patole, Yogesh S. Shouche, Vipul BansalAbstract:This study was performed to determine whether extracellular silver nanoparticles (AgNPs) production is a genus-wide phenotype associated with all the members of genus Morganella, or only Morganella morganii RP-42 isolate is able to synthesize extracellular Ag nanoparticles. To undertake this study, all the available Morganella isolates were exposed to Ag+ ions, and the obtained nanoproducts were thoroughly analyzed using physico-chemical characterization tools such as transmission electron microscopy (TEM), UV-visible spectrophotometry (UV-vis), and X-ray diffraction (XRD) analysis. It was identified that extracellular biosynthesis of crystalline silver nanoparticles is a unique biochemical character of all the members of genus Morganella, which was found independent of environmental changes. Significantly, the inability of other closely related members of the family Enterobacteriaceae towards AgNPs synthesis strongly suggests that AgNPs synthesis in the presence of Ag+ ions is a phenotypic character that is uniquely associated with genus Morganella.
Milind S. Patole - One of the best experts on this subject based on the ideXlab platform.
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Genus-Wide Physicochemical Evidence of Extracellular Crystalline Silver Nanoparticles Biosynthesis by Morganella spp
PloS one, 2011Co-Authors: Rasesh Y. Parikh, Rajesh Ramanathan, Peter J. Coloe, Suresh K. Bhargava, Milind S. Patole, Yogesh S. Shouche, Vipul BansalAbstract:This study was performed to determine whether extracellular silver nanoparticles (AgNPs) production is a genus-wide phenotype associated with all the members of genus Morganella, or only Morganella morganii RP-42 isolate is able to synthesize extracellular Ag nanoparticles. To undertake this study, all the available Morganella isolates were exposed to Ag+ ions, and the obtained nanoproducts were thoroughly analyzed using physico-chemical characterization tools such as transmission electron microscopy (TEM), UV-visible spectrophotometry (UV-vis), and X-ray diffraction (XRD) analysis. It was identified that extracellular biosynthesis of crystalline silver nanoparticles is a unique biochemical character of all the members of genus Morganella, which was found independent of environmental changes. Significantly, the inability of other closely related members of the family Enterobacteriaceae towards AgNPs synthesis strongly suggests that AgNPs synthesis in the presence of Ag+ ions is a phenotypic character that is uniquely associated with genus Morganella.
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Extracellular Synthesis of Crystalline Silver Nanoparticles and Molecular Evidence of Silver Resistance from Morganella sp.: Towards Understanding Biochemical Synthesis Mechanism
Chembiochem : a European journal of chemical biology, 2008Co-Authors: Rasesh Y. Parikh, Milind S. Patole, Sanjay Singh, B. L. V. Prasad, Murali Sastry, Yogesh S. ShoucheAbstract:There has been significant progress in the biological synthesis of nanomaterials. However, the molecular mechanism of synthesis of such bio-nanomaterials remains largely unknown. Here, we report the extracellular synthesis of crystalline silver nanoparticles (AgNPs) by using Morganella sp., and show molecular evidence of silver resistance by elucidating the synthesis mechanism. The AgNPs were 20±5 nm in diameter and were highly stable at room temperature. The kinetics of AgNPs formation was investigated. Detectable particles were formed after an hour of reaction, and their production remained exponential up to 18 h, and saturated at 24 h. Morganella sp. was found to be highly resistant to silver cations and was able to grow in the presence of more than 0.5 mM AgNO3. Three gene homologues viz. silE, silP and silS were identified in silver-resistant Morganella sp. The homologue of silE from Morganella sp. showed 99 % nucleotide sequence similarity with the previously reported gene, silE, which encodes a periplasmic silver-binding protein. The homologues of silP and silS were also highly similar to previously reported sequences. Similar activity was totally absent in closely related Escherichia coli; this suggests that a unique mechanism of extracellular AgNPs synthesis is associated with silver-resistant Morganella sp. The molecular mechanism of silver resistance and its gene products might have a key role to play in the overall synthesis process of AgNPs by Morganella sp. An understanding of such biochemical mechanisms at the molecular level might help in developing an ecologically friendly and cost-effective protocol for microbial AgNPs synthesis.
Bernd Wiedemann - One of the best experts on this subject based on the ideXlab platform.
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identification and natural antibiotic susceptibility of Morganella morganii
Diagnostic Microbiology and Infectious Disease, 1998Co-Authors: Ingo Stock, Bernd WiedemannAbstract:Our data should elucidate whether or not natural antibiotic susceptibility can be used as an aid for subspecies or biovar discrimination of Morganella morganii (II). Furthermore, our goal was to create a database of the natural susceptibility of M. morganii (III) and we were interested in the relative frequency of the recently described subspecific taxa (I). On the basis of trehalose fermentation (TRE), ornithine decarboxylase (ODC), and lysine decarboxylase (LDC) activities, we determined the biovar for 90 clinical isolates of M. morganii. Within these strains we examined the natural antibiotic susceptibility of 53 Morganellae to 70 antibiotics by determination of the MICs with a microdilution procedure. (I): 80 strains (89%) of all Morganellae belonged to M. morganii ssp. morganii (TRE-), with biovar A (LDC-, ODC+) predominating (67 strains). The remaining strains of this subspecies were identified as biovar B (LDC+, ODC+; 12 strains) and biovar C (LDC-, ODC-, one strain). Ten strains of M. morganii ssp. sibonii (TRE+) were found: four strains belonged to biovar F (LDC variable, ODC-) and six strains to biovar G (LDC-, ODC). (II): With one exception we found no significant differences in antibiotic susceptibility between different biovars. M. morganii ssp. morganii strains are more susceptible to tetracycline than strains of M. morganii ssp. sibonii, but there is no evidence that this parameter could be useful to differentiate biovars within a subspecies. It could be shown that 8 of 30 strains of biovar A and 2 of 12 strains of biovar B were tetracycline resistant. However, one M. morganii ssp. sibonii strain was clinically susceptible to tetracycline according to French and American standards. (III): The natural population of M. morganii is primarily (naturally) resistant to certain penicillins like benzylpenicillin, oxacillin, and amoxicillin, first and second generation cephalosporins (excluding cefoxitin), cefpodoxime, all antibiotics of the ML group (macrolides and lincosamides), sulfamethoxazole, glycopeptides, fosfomycin, and fusidic acid, naturally sensitive to aminoglycosides, piperacillin, mezlocillin, ticarcillin, third and fourth generation cephalosporins, carbapenems, aztreonam, quinolones, trimethoprim, cotrimoxazole, and chloramphenicol. M. morganii is naturally resistant to a wide range of antibiotics. The natural resistance pattern is useful for validation of sensitivity tests. Susceptibility to antibiotics is an unsuitable parameter for the discrimination of the described subspecific taxa of M. morganii. M. morganii strains that do not belong to biovar A are rare.