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staphylococcus pseudintermedius pcm 2741  (ATCC)


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    Structured Review

    ATCC staphylococcus pseudintermedius pcm 2741
    Staphylococcus Pseudintermedius Pcm 2741, supplied by ATCC, used in various techniques. Bioz Stars score: 94/100, based on 43 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/pcms/Staphylococcus+pseudintermedius/pm42054830-159-20-31
    Average 94 stars, based on 43 article reviews
    staphylococcus pseudintermedius pcm 2741 - by Bioz Stars, 2026-09
    94/100 stars

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    other:

    Article Title: Invasive Giant Goldenrod ( Solidago gigantea Aiton): Phytochemical Profiling and Evaluation of Chemopreventive and Antimicrobial Activities
    Article Snippet: The obtained extracts of S. gigantea were tested against a panel of microorganisms, including Gram-positive cocci: Staphylococcus aureus PCM 2054 (ATCC 25923) and PCM 458, Staphylococcus pseudintermedius PCM 2791, Staphylococcus epidermidis PCM 2118 (ATCC 14990), Enterococcus faecalis ATCC 29212 and Enterococcus hirae PCM 2559 (ATCC 10541); Gram-positive endospore-forming rods: Bacillus cereus PCM 2019 (ATCC 11778); Gram-negative rods: Escherichia coli PCM 2057 (ATCC 25922), Pseudomonas aeruginosa PCM 2058, Salmonella enterica subsp. enterica serotype Gallinarum PCM 2658; methicillin resistance strains: S. aureus MRSA strain ATCC 3144 and MRSA ATCC 33592, S. epidermidis MRSE PCM 2532; yeast Candida albicans PCM 2566, Candida krusei PCM F117, Candida parapsilosis Cp1.

    Inhibition:

    Article Title: Bifidobacterium intestinale sp. nov., and Blautia caeci sp. nov., from the Human Gut Microbiome with Candidate Probiotic Potential
    Article Snippet: .. The CFS of strain M3-R-103 T showed notable growth inhibition against Staphylococcus felis ATCC 49168 (65.37 ± 1.10%) and Acinetobacter junii strain 16 (70.41 ± 7.84%), whereas moderate inhibition was observed against Staphylococcus pseudintermedius ATCC 49051 (39.33 ± 3.00%) and Staphylococcus epidermidis ATCC 12228 (43.46 ± 1.71%). .. Similarly, the CFS of strain C3-R-101 T exhibited inhibitory activity against A. junii strain 16 (77.09 ± 4.81%), S. felis ATCC 49168 (63.37 ± 0.11%), and S. epidermidis ATCC 12228 (52.67 ± 0.17%).

    Article Title: Silver nanoparticles synthesized from Sempervivum tectorum leaf extract show antibacterial activity against canine Staphylococcus pseudintermedius.
    Article Snippet: .. AR TIC LE IN PR ES S ARTICLE IN PRESS of S. tectorum L. plant extracts (25, 50, 75, and 100) μg/mL; Figure S4: Inhibition zone (mm) of AgNPs synthesized with (25, 50, 75, and 100 μg/mL) of Sempervivum tectorum L. ethanolic aqueous solution by agar Well diffusion method against S. pseudintermedius ATCC 49051 (a) and clinical isolate (b); Figure S5: Time–killing curve for S. pseudintermedius ATCC 49051 of green synthesized AgNO3 and Norfloxacin as control; Figure S6: Particle sizes distribution of green synthesized AgN03; Figure S7: TEM image with green synthesized AgN03 (scale bar: 50 nm). ..

    Activity Assay:

    Article Title: Glucosylated Thiamphenicol: A new veterinary antimicrobial prodrug resistant to bacterial enzymatic inactivation - In vitro and In vivo evaluation using Galleria mellonella larval model infected Salmonellaenterica.
    Article Snippet: Thiamphenicol (TAM) is an amphenicol antibiotic widely used in veterinary medicine, whose efficacy is increasingly compromised by enzymatic inactivation mediated by chloramphenicol acetyltransferases (CATs).. These enzymes acetylate the 3-hydroxyl group of phenicols, abolishing ribosomal binding and antibacterial activity.. Here, we report the synthesis and evaluation of thiamphenicol-3-O-β-D-glucopyranoside (TAMG) as a glucosidic prodrug designed to mask the CAT-susceptible site.

    Synthesized:

    Article Title: Silver nanoparticles synthesized from Sempervivum tectorum leaf extract show antibacterial activity against canine Staphylococcus pseudintermedius.
    Article Snippet: .. AR TIC LE IN PR ES S ARTICLE IN PRESS of S. tectorum L. plant extracts (25, 50, 75, and 100) μg/mL; Figure S4: Inhibition zone (mm) of AgNPs synthesized with (25, 50, 75, and 100 μg/mL) of Sempervivum tectorum L. ethanolic aqueous solution by agar Well diffusion method against S. pseudintermedius ATCC 49051 (a) and clinical isolate (b); Figure S5: Time–killing curve for S. pseudintermedius ATCC 49051 of green synthesized AgNO3 and Norfloxacin as control; Figure S6: Particle sizes distribution of green synthesized AgN03; Figure S7: TEM image with green synthesized AgN03 (scale bar: 50 nm). ..

    Diffusion-based Assay:

    Article Title: Silver nanoparticles synthesized from Sempervivum tectorum leaf extract show antibacterial activity against canine Staphylococcus pseudintermedius.
    Article Snippet: .. AR TIC LE IN PR ES S ARTICLE IN PRESS of S. tectorum L. plant extracts (25, 50, 75, and 100) μg/mL; Figure S4: Inhibition zone (mm) of AgNPs synthesized with (25, 50, 75, and 100 μg/mL) of Sempervivum tectorum L. ethanolic aqueous solution by agar Well diffusion method against S. pseudintermedius ATCC 49051 (a) and clinical isolate (b); Figure S5: Time–killing curve for S. pseudintermedius ATCC 49051 of green synthesized AgNO3 and Norfloxacin as control; Figure S6: Particle sizes distribution of green synthesized AgN03; Figure S7: TEM image with green synthesized AgN03 (scale bar: 50 nm). ..

    Control:

    Article Title: Silver nanoparticles synthesized from Sempervivum tectorum leaf extract show antibacterial activity against canine Staphylococcus pseudintermedius.
    Article Snippet: .. AR TIC LE IN PR ES S ARTICLE IN PRESS of S. tectorum L. plant extracts (25, 50, 75, and 100) μg/mL; Figure S4: Inhibition zone (mm) of AgNPs synthesized with (25, 50, 75, and 100 μg/mL) of Sempervivum tectorum L. ethanolic aqueous solution by agar Well diffusion method against S. pseudintermedius ATCC 49051 (a) and clinical isolate (b); Figure S5: Time–killing curve for S. pseudintermedius ATCC 49051 of green synthesized AgNO3 and Norfloxacin as control; Figure S6: Particle sizes distribution of green synthesized AgN03; Figure S7: TEM image with green synthesized AgN03 (scale bar: 50 nm). ..

    Transmission Electron Microscopy:

    Article Title: Silver nanoparticles synthesized from Sempervivum tectorum leaf extract show antibacterial activity against canine Staphylococcus pseudintermedius.
    Article Snippet: .. AR TIC LE IN PR ES S ARTICLE IN PRESS of S. tectorum L. plant extracts (25, 50, 75, and 100) μg/mL; Figure S4: Inhibition zone (mm) of AgNPs synthesized with (25, 50, 75, and 100 μg/mL) of Sempervivum tectorum L. ethanolic aqueous solution by agar Well diffusion method against S. pseudintermedius ATCC 49051 (a) and clinical isolate (b); Figure S5: Time–killing curve for S. pseudintermedius ATCC 49051 of green synthesized AgNO3 and Norfloxacin as control; Figure S6: Particle sizes distribution of green synthesized AgN03; Figure S7: TEM image with green synthesized AgN03 (scale bar: 50 nm). ..



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    (A) Schematic representation of the activated methyl cycle (AMC) illustrating methyl group transfer and methionine recycling. <t>MetK</t> (S-adenosylmethionine synthetase) converts methionine to S-adenosylmethionine (SAM), the universal methyl donor. Following methyl transfer by S-adenosylmethionine-dependent methyltransferases (SDMs), SAM is converted to S-adenosylhomocysteine (SAH). In the LuxS-dependent pathway, SAH is processed by Pfs (5′-methylthioadenosine/S-adenosylhomocysteine nucleosidase) to form S-ribosylhomocysteine (SRH), which is subsequently cleaved by LuxS to generate homocysteine and the AI-2 precursor DPD. In alternative pathways found in other bacteria, SAH can be directly converted to homocysteine by SahH (S-adenosylhomocysteine hydrolase). (B) Schematic diagram of the metK deletion construct <t>(pCM-galK-Δ</t> metK ) used to generate an in-frame chromosomal deletion in FNN ATCC 23726. Approximately 1.5 kb of upstream and downstream homologous regions flank the deleted metK coding sequence to facilitate double-crossover recombination. ( C) PCR screening of more than 100 counterselected colonies following allelic exchange showed retention of the wild-type metK allele, with no Δ metK mutants recovered, indicating that metK is essential under the tested conditions. Representative PCR results from 10 independent colonies are shown. (D) Strategy for the construction of a conditional metK mutant. Because metK is essential, chromosomal deletion was performed in the presence of a plasmid-borne copy of metK expressed under the control of a theophylline- inducible riboswitch, allowing complementation in trans. (E) PCR confirmation of successful chromosomal deletion of metK in the presence of plasmid-mediated complementation, demonstrating that deletion is possible only when metK expression is provided in trans. (F) Growth analysis of the conditional metK mutant showing strict dependence on theophylline for viability. Bacterial growth exhibited a dose-dependent response to the inducer, and no growth was observed in its absence, confirming that metK is essential for survival in F. nucleatum . (G) Transmission electron microscopy (TEM) of the conditional Δ metK strain. Cells grown in the presence of 3 mM theophylline displayed normal morphology comparable to wild type. In contrast, depletion of metK (no inducer; cells precultured with 2 mM theophylline and then grown for 12 h without inducer) resulted in pronounced morphological abnormalities, including curved cells ( H1 ), surface-associated tubular-like structures ( H2 ), and marked cell elongation (H3; enlarged view shown).
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    (A) Schematic representation of the activated methyl cycle (AMC) illustrating methyl group transfer and methionine recycling. <t>MetK</t> (S-adenosylmethionine synthetase) converts methionine to S-adenosylmethionine (SAM), the universal methyl donor. Following methyl transfer by S-adenosylmethionine-dependent methyltransferases (SDMs), SAM is converted to S-adenosylhomocysteine (SAH). In the LuxS-dependent pathway, SAH is processed by Pfs (5′-methylthioadenosine/S-adenosylhomocysteine nucleosidase) to form S-ribosylhomocysteine (SRH), which is subsequently cleaved by LuxS to generate homocysteine and the AI-2 precursor DPD. In alternative pathways found in other bacteria, SAH can be directly converted to homocysteine by SahH (S-adenosylhomocysteine hydrolase). (B) Schematic diagram of the metK deletion construct <t>(pCM-galK-Δ</t> metK ) used to generate an in-frame chromosomal deletion in FNN ATCC 23726. Approximately 1.5 kb of upstream and downstream homologous regions flank the deleted metK coding sequence to facilitate double-crossover recombination. ( C) PCR screening of more than 100 counterselected colonies following allelic exchange showed retention of the wild-type metK allele, with no Δ metK mutants recovered, indicating that metK is essential under the tested conditions. Representative PCR results from 10 independent colonies are shown. (D) Strategy for the construction of a conditional metK mutant. Because metK is essential, chromosomal deletion was performed in the presence of a plasmid-borne copy of metK expressed under the control of a theophylline- inducible riboswitch, allowing complementation in trans. (E) PCR confirmation of successful chromosomal deletion of metK in the presence of plasmid-mediated complementation, demonstrating that deletion is possible only when metK expression is provided in trans. (F) Growth analysis of the conditional metK mutant showing strict dependence on theophylline for viability. Bacterial growth exhibited a dose-dependent response to the inducer, and no growth was observed in its absence, confirming that metK is essential for survival in F. nucleatum . (G) Transmission electron microscopy (TEM) of the conditional Δ metK strain. Cells grown in the presence of 3 mM theophylline displayed normal morphology comparable to wild type. In contrast, depletion of metK (no inducer; cells precultured with 2 mM theophylline and then grown for 12 h without inducer) resulted in pronounced morphological abnormalities, including curved cells ( H1 ), surface-associated tubular-like structures ( H2 ), and marked cell elongation (H3; enlarged view shown).
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    Image Search Results


    Journal: Food Science & Nutrition

    Article Title: Exploring the Nutraceutical Potential of Achillea millefolium L.: Phytochemical Composition, Biological Activities, and Industrial Applications

    doi: 10.1002/fsn3.72002

    Figure Lengend Snippet: Antimicrobial activity of A. millefolium L.

    Article Snippet: Poland , Aerial Parts (hydro‐ethanolic extract) , Candida albicans ATCC10231, Streptococcus agalactiae PCM 2683, Enterococcus faecalis PCM 2784, Proteus mirabilis ATTC 29906, Streptococcus mutans ATTC 25175, Staphylococcus epidermidis ATTC 8853, Streptococcus pyogenes ATTC 19615, Escherichia coli UPEC PCM 176, Enterococcus hirae ATCC 10541, Bacillus subtilis PCM 486, Staphylococcus aureus 6538P, Staphylococcus epidermidis PCM 2118, Escherichia coli ATCC 8739, Pseudomonas aeruginosa PAO1, and Ralstonia solanacearum Z1 , Highest activity shown against Candida albicans , Pseuodomonas aeruginosa , Ralstonia solanacearum and Bacillus subtilis (MIC: 2 mg/mL) Lowest activity for Escherichia coli UPEC and Enterococcus faecalis (MIC: 16 mg/mL) , (Michalak et al. ) .

    Techniques: Activity Assay, Inhibition, Bacteria

    (A) Schematic representation of the activated methyl cycle (AMC) illustrating methyl group transfer and methionine recycling. MetK (S-adenosylmethionine synthetase) converts methionine to S-adenosylmethionine (SAM), the universal methyl donor. Following methyl transfer by S-adenosylmethionine-dependent methyltransferases (SDMs), SAM is converted to S-adenosylhomocysteine (SAH). In the LuxS-dependent pathway, SAH is processed by Pfs (5′-methylthioadenosine/S-adenosylhomocysteine nucleosidase) to form S-ribosylhomocysteine (SRH), which is subsequently cleaved by LuxS to generate homocysteine and the AI-2 precursor DPD. In alternative pathways found in other bacteria, SAH can be directly converted to homocysteine by SahH (S-adenosylhomocysteine hydrolase). (B) Schematic diagram of the metK deletion construct (pCM-galK-Δ metK ) used to generate an in-frame chromosomal deletion in FNN ATCC 23726. Approximately 1.5 kb of upstream and downstream homologous regions flank the deleted metK coding sequence to facilitate double-crossover recombination. ( C) PCR screening of more than 100 counterselected colonies following allelic exchange showed retention of the wild-type metK allele, with no Δ metK mutants recovered, indicating that metK is essential under the tested conditions. Representative PCR results from 10 independent colonies are shown. (D) Strategy for the construction of a conditional metK mutant. Because metK is essential, chromosomal deletion was performed in the presence of a plasmid-borne copy of metK expressed under the control of a theophylline- inducible riboswitch, allowing complementation in trans. (E) PCR confirmation of successful chromosomal deletion of metK in the presence of plasmid-mediated complementation, demonstrating that deletion is possible only when metK expression is provided in trans. (F) Growth analysis of the conditional metK mutant showing strict dependence on theophylline for viability. Bacterial growth exhibited a dose-dependent response to the inducer, and no growth was observed in its absence, confirming that metK is essential for survival in F. nucleatum . (G) Transmission electron microscopy (TEM) of the conditional Δ metK strain. Cells grown in the presence of 3 mM theophylline displayed normal morphology comparable to wild type. In contrast, depletion of metK (no inducer; cells precultured with 2 mM theophylline and then grown for 12 h without inducer) resulted in pronounced morphological abnormalities, including curved cells ( H1 ), surface-associated tubular-like structures ( H2 ), and marked cell elongation (H3; enlarged view shown).

    Journal: bioRxiv

    Article Title: AI-2 Production in Fusobacterium nucleatum Is Subspecies-Specific and Uncoupled from Quorum Sensing

    doi: 10.64898/2026.03.02.709096

    Figure Lengend Snippet: (A) Schematic representation of the activated methyl cycle (AMC) illustrating methyl group transfer and methionine recycling. MetK (S-adenosylmethionine synthetase) converts methionine to S-adenosylmethionine (SAM), the universal methyl donor. Following methyl transfer by S-adenosylmethionine-dependent methyltransferases (SDMs), SAM is converted to S-adenosylhomocysteine (SAH). In the LuxS-dependent pathway, SAH is processed by Pfs (5′-methylthioadenosine/S-adenosylhomocysteine nucleosidase) to form S-ribosylhomocysteine (SRH), which is subsequently cleaved by LuxS to generate homocysteine and the AI-2 precursor DPD. In alternative pathways found in other bacteria, SAH can be directly converted to homocysteine by SahH (S-adenosylhomocysteine hydrolase). (B) Schematic diagram of the metK deletion construct (pCM-galK-Δ metK ) used to generate an in-frame chromosomal deletion in FNN ATCC 23726. Approximately 1.5 kb of upstream and downstream homologous regions flank the deleted metK coding sequence to facilitate double-crossover recombination. ( C) PCR screening of more than 100 counterselected colonies following allelic exchange showed retention of the wild-type metK allele, with no Δ metK mutants recovered, indicating that metK is essential under the tested conditions. Representative PCR results from 10 independent colonies are shown. (D) Strategy for the construction of a conditional metK mutant. Because metK is essential, chromosomal deletion was performed in the presence of a plasmid-borne copy of metK expressed under the control of a theophylline- inducible riboswitch, allowing complementation in trans. (E) PCR confirmation of successful chromosomal deletion of metK in the presence of plasmid-mediated complementation, demonstrating that deletion is possible only when metK expression is provided in trans. (F) Growth analysis of the conditional metK mutant showing strict dependence on theophylline for viability. Bacterial growth exhibited a dose-dependent response to the inducer, and no growth was observed in its absence, confirming that metK is essential for survival in F. nucleatum . (G) Transmission electron microscopy (TEM) of the conditional Δ metK strain. Cells grown in the presence of 3 mM theophylline displayed normal morphology comparable to wild type. In contrast, depletion of metK (no inducer; cells precultured with 2 mM theophylline and then grown for 12 h without inducer) resulted in pronounced morphological abnormalities, including curved cells ( H1 ), surface-associated tubular-like structures ( H2 ), and marked cell elongation (H3; enlarged view shown).

    Article Snippet: The deletion plasmid pCM-galK-Δ metK was introduced into competent cells of strain cw1, a Δ galK derivative of ATCC 23726, by electroporation.

    Techniques: Bacteria, Construct, Sequencing, Mutagenesis, Plasmid Preparation, Control, Expressing, Transmission Assay, Electron Microscopy