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vrsa strains atcc 700699  (ATCC)


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    ATCC vrsa strains atcc 700699
    Vrsa Strains Atcc 700699, supplied by ATCC, used in various techniques. Bioz Stars score: 96/100, based on 635 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/staphylococcus+aureus+subsp+aureus+mu50/Staphylococcus+aureus%3B+subsp%2E+aureus%3B+Mu50/pmc12989726-277-24-26
    Average 96 stars, based on 635 article reviews
    vrsa strains atcc 700699 - by Bioz Stars, 2026-09
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    Related Articles

    Cross-linking Immunoprecipitation:

    Article Title: Inference of Self-Regulated Transcriptional Networks by Comparative Genomics
    Article Snippet: 168, Clostridium acetobutylicum ATCC 824, Enterobacter faecalis V583, Listeria monocytogenes serotype 4b str. .. CLIP 80459, Staphylococcus aureus subsp. aureus Mu50) and the Actinobacteria (Acidothermus cellulolyticus 11B, Corynebacterium glutamicum ATCC 13032, Leifsonia xyli subsp. xyli str. ..

    Article Title: Inference of Self-Regulated Transcriptional Networks by Comparative Genomics
    Article Snippet: 168, Clostridium acetobutylicum ATCC 824, Enterobacter faecalis V583, Listeria monocytogenes serotype 4b str. .. CLIP 80459, Staphylococcus aureus subsp. aureus Mu50) and the Actinobacteria ( Acidothermus cellulolyticus 11B, Corynebacterium glutamicum ATCC 13032, Leifsonia xyli subsp. xyli str. ..

    Polymerase Chain Reaction:

    Article Title: Site-Specific Antibody Labeling Using Phosphopantetheinyl Transferase-Catalyzed Ligation.
    Article Snippet: 40-Phosphopantetheinyl transferases (PPTases) have been employed by researchers as versatile biocatalysts for the site-specific modification of numerous protein targets with structurally diverse molecules.. Here we describe the use of these enzymes for the production of homogeneous antibody–drug conjugates (ADCs), which have garnered much attention as innovative anticancer drugs.. The exceptionally broad substrate tolerance of PPTases allows for one-step and two-step conjugation strategies for site-specific ADC synthesis.

    Amplification:

    Article Title: Site-Specific Antibody Labeling Using Phosphopantetheinyl Transferase-Catalyzed Ligation.
    Article Snippet: 40-Phosphopantetheinyl transferases (PPTases) have been employed by researchers as versatile biocatalysts for the site-specific modification of numerous protein targets with structurally diverse molecules.. Here we describe the use of these enzymes for the production of homogeneous antibody–drug conjugates (ADCs), which have garnered much attention as innovative anticancer drugs.. The exceptionally broad substrate tolerance of PPTases allows for one-step and two-step conjugation strategies for site-specific ADC synthesis.

    other:

    Article Title: A highly conserved family of domains related to the DNA-glycosylase fold helps predict multiple novel pathways for RNA modifications
    Article Snippet: Grapes 0 1 Spirochaeta bajacaliforniensis 0 1 Spirochaeta smaragdinae DSM 11293 0 1 Spirochaeta thermophila DSM 6192 0 1 Spirochaeta thermophila DSM 6578 0 1 Spiroplasma chrysopicola DF-1 0 1 Spiroplasma citri 0 1 Spiroplasma melliferum 0 1 Spiroplasma syrphidicola EA-1 0 1 Sporolactobacillus inulinus 0 1 Sporolactobacillus vineae 0 2 Sporosarcina newyorkensis 0 1 Staphylococcus arlettae 0 1 Staphylococcus aureus 0 27 Staphylococcus aureus CA-347 0 1 Staphylococcus aureus RF122 0 1 Staphylococcus aureus subsp. aureus 11819-97 0 1 Staphylococcus aureus subsp. aureus 71193 0 1 Staphylococcus aureus subsp. aureus COL 0 1 Staphylococcus aureus subsp. aureus ED133 0 1 Staphylococcus aureus subsp. aureus ED98 0 1 Staphylococcus aureus subsp. aureus HO 5096 0412 0 1 Staphylococcus aureus subsp. aureus JH9 0 1 Staphylococcus aureus subsp. aureus M013 0 1 Staphylococcus aureus subsp. aureus MRSA252 0 1 Staphylococcus aureus subsp. aureus MSHR1132 0 1 Staphylococcus aureus subsp. aureus MSSA476 0 1 Staphylococcus aureus subsp. aureus MW2 0 1 Staphylococcus aureus subsp. aureus Mu50 0 1 Staphylococcus aureus subsp. aureus N315 0 1 Staphylococcus aureus subsp. aureus TCH60 0 1 Staphylococcus capitis 0 2 Staphylococcus caprae 0 1 Staphylococcus carnosus subsp. carnosus TM300 0 1 Staphylococcus delphini 0 1 Staphylococcus epidermidis 0 15 Staphylococcus epidermidis ATCC 12228 0 1 Staphylococcus haemolyticus JCSC1435 0 1 Staphylococcus hominis 0 3 Staphylococcus intermedius 0 1 Staphylococcus lentus 0 1 Staphylococcus lugdunensis 0 2 Staphylococcus lugdunensis HKU09-01 0 1 Staphylococcus massiliensis 0 1 Staphylococcus pettenkoferi 0 1 Staphylococcus pseudintermedius ED99 0 1 Staphylococcus pseudintermedius HKU10-03 0 1 Staphylococcus saprophyticus 0 1 Staphylococcus saprophyticus subsp. saprophyticus ATCC 15305 0 1 Staphylococcus simiae 0 1 Staphylococcus simulans 0 1 Staphylococcus sp. AL1 0 1 Staphylococcus sp. CAG:324 0 1 Staphylococcus sp. E463 0 1 Staphylococcus sp. HGB0015 0 1 Staphylococcus sp. MDS7B 0 1 Staphylococcus sp. OJ82 0 1 Staphylococcus vitulinus 0 1 Staphylococcus warneri 0 2 Staphylococcus warneri SG1 0 1 Staphylococcus xylosus 0 1 Staphylothermus hellenicus DSM 12710 0 1 Staphylothermus marinus F1 0 1 Stomatobaculum longum 0 1 Strawberry lethal yellows phytoplasma (CPA) str.

    Expressing:

    Article Title: Identification of a Novel Epoxyqueuosine Reductase Family by Comparative Genomics
    Article Snippet: .. As seen in Figure , complementation was observed with plasmids expressing duf208 genes from very phylogenetically distant organisms including Bordetella pertussis , Dehalococcoides ethenogenes 195 , Haemophilus somnus 129PT, Staphylococcus aureus subsp. aureus Mu50 , Staphylococcus epidermidis ATCC 12228 , Streptococcus pyogenes , Thermotoga maritima , and Helicobacter pylori 26695. ..



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    ATCC vrsa strains atcc 700699
    Vrsa Strains Atcc 700699, supplied by ATCC, used in various techniques. Bioz Stars score: 96/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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    mu50  (ATCC)
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    ATCC mu50
    Strain-dependent ear swelling responses of clinical isolates upon topical application. ( a ) Experimental protocol: nonclinical S. aureus strains Mu3 and <t>Mu50,</t> AD patient–derived S. aureus and S. epidermidis strains (AD1–AD4), and TSB as a control vehicle were topically applied to the ears of C57BL/6 mice on days 0, 2, 4, 6, and 8. Clinical skin inflammation was assessed by measuring ear thickness. ( b ) Ear swelling over time: mean ear thickness (μm) from day 0 (denoted as D0) to day 9 (denoted as D9) for each treatment group (n = 6–8 mice per group). ( c ) Cumulative ear swelling: individual values and group mean ± SEM for the AUC of ear thickness measurements from D0 to D9 (n = 6–8 mice per group). Statistical analysis: 1-way ANOVA followed by Tukey’s multiple comparisons test. ∗ P < .05, ∗∗ P < .01, and ∗∗∗ P < .001. Symbols indicate statistical significance compared with the following groups: § vehicle, $ S. aureus Mu3, + S. aureus Mu50, @ S. aureus AD3, ∗ S. epidermidis AD3, and ° S. epidermidis AD4. AUC, area under the curve; TSB, tryptic soy broth.
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    ATCC s aureus mu50
    Strain-dependent ear swelling responses of clinical isolates upon topical application. ( a ) Experimental protocol: nonclinical S. aureus strains Mu3 and <t>Mu50,</t> AD patient–derived S. aureus and S. epidermidis strains (AD1–AD4), and TSB as a control vehicle were topically applied to the ears of C57BL/6 mice on days 0, 2, 4, 6, and 8. Clinical skin inflammation was assessed by measuring ear thickness. ( b ) Ear swelling over time: mean ear thickness (μm) from day 0 (denoted as D0) to day 9 (denoted as D9) for each treatment group (n = 6–8 mice per group). ( c ) Cumulative ear swelling: individual values and group mean ± SEM for the AUC of ear thickness measurements from D0 to D9 (n = 6–8 mice per group). Statistical analysis: 1-way ANOVA followed by Tukey’s multiple comparisons test. ∗ P < .05, ∗∗ P < .01, and ∗∗∗ P < .001. Symbols indicate statistical significance compared with the following groups: § vehicle, $ S. aureus Mu3, + S. aureus Mu50, @ S. aureus AD3, ∗ S. epidermidis AD3, and ° S. epidermidis AD4. AUC, area under the curve; TSB, tryptic soy broth.
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    ATCC visa atcc 700699
    Strain-dependent ear swelling responses of clinical isolates upon topical application. ( a ) Experimental protocol: nonclinical S. aureus strains Mu3 and <t>Mu50,</t> AD patient–derived S. aureus and S. epidermidis strains (AD1–AD4), and TSB as a control vehicle were topically applied to the ears of C57BL/6 mice on days 0, 2, 4, 6, and 8. Clinical skin inflammation was assessed by measuring ear thickness. ( b ) Ear swelling over time: mean ear thickness (μm) from day 0 (denoted as D0) to day 9 (denoted as D9) for each treatment group (n = 6–8 mice per group). ( c ) Cumulative ear swelling: individual values and group mean ± SEM for the AUC of ear thickness measurements from D0 to D9 (n = 6–8 mice per group). Statistical analysis: 1-way ANOVA followed by Tukey’s multiple comparisons test. ∗ P < .05, ∗∗ P < .01, and ∗∗∗ P < .001. Symbols indicate statistical significance compared with the following groups: § vehicle, $ S. aureus Mu3, + S. aureus Mu50, @ S. aureus AD3, ∗ S. epidermidis AD3, and ° S. epidermidis AD4. AUC, area under the curve; TSB, tryptic soy broth.
    Visa Atcc 700699, supplied by ATCC, used in various techniques. Bioz Stars score: 96/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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    ATCC mrsa atcc 700699
    Antibacterial activity of identified peptides against Gram-positive and Gram-negative bacteria. Colony forming units (CFU) of (A) S. aureus ATCC 25923, (B) MRSA ATCC 700699, (C) E. coli ATCC 25922, (D) E. coli MDR, and (E, F) K . pneumoniae ATCC 1706 and ATCC 1705 were presented to eight concentrations of LL-37, CdPMAP-23, CdPG-3, and CdCATH for 3 h at 37°C. After serial dilutions and overnight incubation on LB agar, the colonies of surviving bacteria were counted, (PBS as negative control), data is presented as Mean Log 10 CFU/ml, P value: 0.05>(*), 0.01>(**), 0.001> (***), 0.0001>(****).
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    ATCC bacteria
    Antibacterial activity of identified peptides against Gram-positive and Gram-negative bacteria. Colony forming units (CFU) of (A) S. aureus ATCC 25923, (B) MRSA ATCC 700699, (C) E. coli ATCC 25922, (D) E. coli MDR, and (E, F) K . pneumoniae ATCC 1706 and ATCC 1705 were presented to eight concentrations of LL-37, CdPMAP-23, CdPG-3, and CdCATH for 3 h at 37°C. After serial dilutions and overnight incubation on LB agar, the colonies of surviving bacteria were counted, (PBS as negative control), data is presented as Mean Log 10 CFU/ml, P value: 0.05>(*), 0.01>(**), 0.001> (***), 0.0001>(****).
    Bacteria, supplied by ATCC, used in various techniques. Bioz Stars score: 96/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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    Antibacterial activity of identified peptides against Gram-positive and Gram-negative bacteria. Colony forming units (CFU) of (A) S. aureus ATCC 25923, (B) MRSA ATCC 700699, (C) E. coli ATCC 25922, (D) E. coli MDR, and (E, F) K . pneumoniae ATCC 1706 and ATCC 1705 were presented to eight concentrations of LL-37, CdPMAP-23, CdPG-3, and CdCATH for 3 h at 37°C. After serial dilutions and overnight incubation on LB agar, the colonies of surviving bacteria were counted, (PBS as negative control), data is presented as Mean Log 10 CFU/ml, P value: 0.05>(*), 0.01>(**), 0.001> (***), 0.0001>(****).
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    Strain-dependent ear swelling responses of clinical isolates upon topical application. ( a ) Experimental protocol: nonclinical S. aureus strains Mu3 and Mu50, AD patient–derived S. aureus and S. epidermidis strains (AD1–AD4), and TSB as a control vehicle were topically applied to the ears of C57BL/6 mice on days 0, 2, 4, 6, and 8. Clinical skin inflammation was assessed by measuring ear thickness. ( b ) Ear swelling over time: mean ear thickness (μm) from day 0 (denoted as D0) to day 9 (denoted as D9) for each treatment group (n = 6–8 mice per group). ( c ) Cumulative ear swelling: individual values and group mean ± SEM for the AUC of ear thickness measurements from D0 to D9 (n = 6–8 mice per group). Statistical analysis: 1-way ANOVA followed by Tukey’s multiple comparisons test. ∗ P < .05, ∗∗ P < .01, and ∗∗∗ P < .001. Symbols indicate statistical significance compared with the following groups: § vehicle, $ S. aureus Mu3, + S. aureus Mu50, @ S. aureus AD3, ∗ S. epidermidis AD3, and ° S. epidermidis AD4. AUC, area under the curve; TSB, tryptic soy broth.

    Journal: JID Innovations

    Article Title: Atopic Dermatitis–like mouse model using early inoculation of patient-derived S. aureus together with MC903

    doi: 10.1016/j.xjidi.2025.100436

    Figure Lengend Snippet: Strain-dependent ear swelling responses of clinical isolates upon topical application. ( a ) Experimental protocol: nonclinical S. aureus strains Mu3 and Mu50, AD patient–derived S. aureus and S. epidermidis strains (AD1–AD4), and TSB as a control vehicle were topically applied to the ears of C57BL/6 mice on days 0, 2, 4, 6, and 8. Clinical skin inflammation was assessed by measuring ear thickness. ( b ) Ear swelling over time: mean ear thickness (μm) from day 0 (denoted as D0) to day 9 (denoted as D9) for each treatment group (n = 6–8 mice per group). ( c ) Cumulative ear swelling: individual values and group mean ± SEM for the AUC of ear thickness measurements from D0 to D9 (n = 6–8 mice per group). Statistical analysis: 1-way ANOVA followed by Tukey’s multiple comparisons test. ∗ P < .05, ∗∗ P < .01, and ∗∗∗ P < .001. Symbols indicate statistical significance compared with the following groups: § vehicle, $ S. aureus Mu3, + S. aureus Mu50, @ S. aureus AD3, ∗ S. epidermidis AD3, and ° S. epidermidis AD4. AUC, area under the curve; TSB, tryptic soy broth.

    Article Snippet: We also included S. aureus strains Mu3 (ATCC 700698) and Mu50 (ATCC 700699), which are genetically similar to strain AD04.E17, which has recently been shown to induce an AD-like immunologic response ( ; ).

    Techniques: Derivative Assay, Control

    Histological analysis of mouse ear skin after treatment with bacterial strains. ( a ) Representative images: H&E-stained sections of mouse ear skin collected on day 9 after treatment with S. aureus (Mu3, Mu50, AD1–AD4), S. epidermidis (AD-derived strains), or TSB. Bar = 50 μm. ( b ) Epidermal thickness: mean epidermal thickness (μm) ± SEM from H&E-stained sections (n = 6–8 mice per group). ( c ) Dermal cellular infiltration: mean dermal cell infiltration ± SEM from the same histological images (n = 5–8 mice per group). Statistical analysis: Kruskal–Wallis test followed by Dunn’s multiple comparisons test. ∗ P < .05, ∗∗ P < .01, and ∗∗∗ P < .001. Symbols indicate statistical significance compared with the following groups: § vehicle, $ S. aureus Mu3, + S. aureus Mu50, @ S. aureus AD3, ∗ S. epidermidis AD3, and ° S. epidermidis AD4. AD, atopic dermatitis; TSB, tryptic soy broth.

    Journal: JID Innovations

    Article Title: Atopic Dermatitis–like mouse model using early inoculation of patient-derived S. aureus together with MC903

    doi: 10.1016/j.xjidi.2025.100436

    Figure Lengend Snippet: Histological analysis of mouse ear skin after treatment with bacterial strains. ( a ) Representative images: H&E-stained sections of mouse ear skin collected on day 9 after treatment with S. aureus (Mu3, Mu50, AD1–AD4), S. epidermidis (AD-derived strains), or TSB. Bar = 50 μm. ( b ) Epidermal thickness: mean epidermal thickness (μm) ± SEM from H&E-stained sections (n = 6–8 mice per group). ( c ) Dermal cellular infiltration: mean dermal cell infiltration ± SEM from the same histological images (n = 5–8 mice per group). Statistical analysis: Kruskal–Wallis test followed by Dunn’s multiple comparisons test. ∗ P < .05, ∗∗ P < .01, and ∗∗∗ P < .001. Symbols indicate statistical significance compared with the following groups: § vehicle, $ S. aureus Mu3, + S. aureus Mu50, @ S. aureus AD3, ∗ S. epidermidis AD3, and ° S. epidermidis AD4. AD, atopic dermatitis; TSB, tryptic soy broth.

    Article Snippet: We also included S. aureus strains Mu3 (ATCC 700698) and Mu50 (ATCC 700699), which are genetically similar to strain AD04.E17, which has recently been shown to induce an AD-like immunologic response ( ; ).

    Techniques: Staining, Derivative Assay

    Distribution of virulence genes across S. aureus strains. Virulence gene content of 6 S. aureus strains (Mu3, Mu50, AD1, AD2, AD3, and AD4) was analyzed by microarray and grouped by functional categories. Bars represent the number of genes identified within each category per strain. Categories include adhesion factors, staphylococcal superantigen/enterotoxin-like genes, HLG and leukocidins, enterotoxins, proteases, capsule- and biofilm-associated genes, hemolysins, HLb-converting phages, defensin resistance, toxic shock toxin, ACME locus, and other factors. The plot illustrates variation in virulence gene repertoire between strains, with adhesion factors and enterotoxin-like genes showing the highest representation. ACME, arginine catabolic mobile element; HLG, hemolysin .

    Journal: JID Innovations

    Article Title: Atopic Dermatitis–like mouse model using early inoculation of patient-derived S. aureus together with MC903

    doi: 10.1016/j.xjidi.2025.100436

    Figure Lengend Snippet: Distribution of virulence genes across S. aureus strains. Virulence gene content of 6 S. aureus strains (Mu3, Mu50, AD1, AD2, AD3, and AD4) was analyzed by microarray and grouped by functional categories. Bars represent the number of genes identified within each category per strain. Categories include adhesion factors, staphylococcal superantigen/enterotoxin-like genes, HLG and leukocidins, enterotoxins, proteases, capsule- and biofilm-associated genes, hemolysins, HLb-converting phages, defensin resistance, toxic shock toxin, ACME locus, and other factors. The plot illustrates variation in virulence gene repertoire between strains, with adhesion factors and enterotoxin-like genes showing the highest representation. ACME, arginine catabolic mobile element; HLG, hemolysin .

    Article Snippet: We also included S. aureus strains Mu3 (ATCC 700698) and Mu50 (ATCC 700699), which are genetically similar to strain AD04.E17, which has recently been shown to induce an AD-like immunologic response ( ; ).

    Techniques: Microarray, Functional Assay

    Comparative genomic presence of virulence- and regulation-associated gene families in S. aureus Strains. Heatmaps depict the distribution of gene families associated with ( a ) regulation, ( b ) superantigen-like proteins, ( c ) adhesion, ( d ) biofilm formation, ( e ) leukocidins, ( f ) unconventional virulence factors, and ( g ) proteases across 7 S. aureus strains (MRSA USA300, Mu3, Mu50, AD1, AD2, AD3, and AD 4). Each cell represents the status of a gene in a given strain: presence (yellow), absence (purple), or ambiguous (gray). MRSA, Methicillin-Resistant Staphylococcus aureus .

    Journal: JID Innovations

    Article Title: Atopic Dermatitis–like mouse model using early inoculation of patient-derived S. aureus together with MC903

    doi: 10.1016/j.xjidi.2025.100436

    Figure Lengend Snippet: Comparative genomic presence of virulence- and regulation-associated gene families in S. aureus Strains. Heatmaps depict the distribution of gene families associated with ( a ) regulation, ( b ) superantigen-like proteins, ( c ) adhesion, ( d ) biofilm formation, ( e ) leukocidins, ( f ) unconventional virulence factors, and ( g ) proteases across 7 S. aureus strains (MRSA USA300, Mu3, Mu50, AD1, AD2, AD3, and AD 4). Each cell represents the status of a gene in a given strain: presence (yellow), absence (purple), or ambiguous (gray). MRSA, Methicillin-Resistant Staphylococcus aureus .

    Article Snippet: We also included S. aureus strains Mu3 (ATCC 700698) and Mu50 (ATCC 700699), which are genetically similar to strain AD04.E17, which has recently been shown to induce an AD-like immunologic response ( ; ).

    Techniques:

    Strain-dependent ear swelling responses of clinical isolates upon topical application. ( a ) Experimental protocol: nonclinical S. aureus strains Mu3 and Mu50, AD patient–derived S. aureus and S. epidermidis strains (AD1–AD4), and TSB as a control vehicle were topically applied to the ears of C57BL/6 mice on days 0, 2, 4, 6, and 8. Clinical skin inflammation was assessed by measuring ear thickness. ( b ) Ear swelling over time: mean ear thickness (μm) from day 0 (denoted as D0) to day 9 (denoted as D9) for each treatment group (n = 6–8 mice per group). ( c ) Cumulative ear swelling: individual values and group mean ± SEM for the AUC of ear thickness measurements from D0 to D9 (n = 6–8 mice per group). Statistical analysis: 1-way ANOVA followed by Tukey’s multiple comparisons test. ∗ P < .05, ∗∗ P < .01, and ∗∗∗ P < .001. Symbols indicate statistical significance compared with the following groups: § vehicle, $ S. aureus Mu3, + S. aureus Mu50, @ S. aureus AD3, ∗ S. epidermidis AD3, and ° S. epidermidis AD4. AUC, area under the curve; TSB, tryptic soy broth.

    Journal: JID Innovations

    Article Title: Atopic Dermatitis–like mouse model using early inoculation of patient-derived S. aureus together with MC903

    doi: 10.1016/j.xjidi.2025.100436

    Figure Lengend Snippet: Strain-dependent ear swelling responses of clinical isolates upon topical application. ( a ) Experimental protocol: nonclinical S. aureus strains Mu3 and Mu50, AD patient–derived S. aureus and S. epidermidis strains (AD1–AD4), and TSB as a control vehicle were topically applied to the ears of C57BL/6 mice on days 0, 2, 4, 6, and 8. Clinical skin inflammation was assessed by measuring ear thickness. ( b ) Ear swelling over time: mean ear thickness (μm) from day 0 (denoted as D0) to day 9 (denoted as D9) for each treatment group (n = 6–8 mice per group). ( c ) Cumulative ear swelling: individual values and group mean ± SEM for the AUC of ear thickness measurements from D0 to D9 (n = 6–8 mice per group). Statistical analysis: 1-way ANOVA followed by Tukey’s multiple comparisons test. ∗ P < .05, ∗∗ P < .01, and ∗∗∗ P < .001. Symbols indicate statistical significance compared with the following groups: § vehicle, $ S. aureus Mu3, + S. aureus Mu50, @ S. aureus AD3, ∗ S. epidermidis AD3, and ° S. epidermidis AD4. AUC, area under the curve; TSB, tryptic soy broth.

    Article Snippet: Two nonclinical reference strains— S. aureus Mu3 (ATCC 700698) and S. aureus Mu50 (ATCC 700699)—were included in the study.

    Techniques: Derivative Assay, Control

    Histological analysis of mouse ear skin after treatment with bacterial strains. ( a ) Representative images: H&E-stained sections of mouse ear skin collected on day 9 after treatment with S. aureus (Mu3, Mu50, AD1–AD4), S. epidermidis (AD-derived strains), or TSB. Bar = 50 μm. ( b ) Epidermal thickness: mean epidermal thickness (μm) ± SEM from H&E-stained sections (n = 6–8 mice per group). ( c ) Dermal cellular infiltration: mean dermal cell infiltration ± SEM from the same histological images (n = 5–8 mice per group). Statistical analysis: Kruskal–Wallis test followed by Dunn’s multiple comparisons test. ∗ P < .05, ∗∗ P < .01, and ∗∗∗ P < .001. Symbols indicate statistical significance compared with the following groups: § vehicle, $ S. aureus Mu3, + S. aureus Mu50, @ S. aureus AD3, ∗ S. epidermidis AD3, and ° S. epidermidis AD4. AD, atopic dermatitis; TSB, tryptic soy broth.

    Journal: JID Innovations

    Article Title: Atopic Dermatitis–like mouse model using early inoculation of patient-derived S. aureus together with MC903

    doi: 10.1016/j.xjidi.2025.100436

    Figure Lengend Snippet: Histological analysis of mouse ear skin after treatment with bacterial strains. ( a ) Representative images: H&E-stained sections of mouse ear skin collected on day 9 after treatment with S. aureus (Mu3, Mu50, AD1–AD4), S. epidermidis (AD-derived strains), or TSB. Bar = 50 μm. ( b ) Epidermal thickness: mean epidermal thickness (μm) ± SEM from H&E-stained sections (n = 6–8 mice per group). ( c ) Dermal cellular infiltration: mean dermal cell infiltration ± SEM from the same histological images (n = 5–8 mice per group). Statistical analysis: Kruskal–Wallis test followed by Dunn’s multiple comparisons test. ∗ P < .05, ∗∗ P < .01, and ∗∗∗ P < .001. Symbols indicate statistical significance compared with the following groups: § vehicle, $ S. aureus Mu3, + S. aureus Mu50, @ S. aureus AD3, ∗ S. epidermidis AD3, and ° S. epidermidis AD4. AD, atopic dermatitis; TSB, tryptic soy broth.

    Article Snippet: Two nonclinical reference strains— S. aureus Mu3 (ATCC 700698) and S. aureus Mu50 (ATCC 700699)—were included in the study.

    Techniques: Staining, Derivative Assay

    Distribution of virulence genes across S. aureus strains. Virulence gene content of 6 S. aureus strains (Mu3, Mu50, AD1, AD2, AD3, and AD4) was analyzed by microarray and grouped by functional categories. Bars represent the number of genes identified within each category per strain. Categories include adhesion factors, staphylococcal superantigen/enterotoxin-like genes, HLG and leukocidins, enterotoxins, proteases, capsule- and biofilm-associated genes, hemolysins, HLb-converting phages, defensin resistance, toxic shock toxin, ACME locus, and other factors. The plot illustrates variation in virulence gene repertoire between strains, with adhesion factors and enterotoxin-like genes showing the highest representation. ACME, arginine catabolic mobile element; HLG, hemolysin .

    Journal: JID Innovations

    Article Title: Atopic Dermatitis–like mouse model using early inoculation of patient-derived S. aureus together with MC903

    doi: 10.1016/j.xjidi.2025.100436

    Figure Lengend Snippet: Distribution of virulence genes across S. aureus strains. Virulence gene content of 6 S. aureus strains (Mu3, Mu50, AD1, AD2, AD3, and AD4) was analyzed by microarray and grouped by functional categories. Bars represent the number of genes identified within each category per strain. Categories include adhesion factors, staphylococcal superantigen/enterotoxin-like genes, HLG and leukocidins, enterotoxins, proteases, capsule- and biofilm-associated genes, hemolysins, HLb-converting phages, defensin resistance, toxic shock toxin, ACME locus, and other factors. The plot illustrates variation in virulence gene repertoire between strains, with adhesion factors and enterotoxin-like genes showing the highest representation. ACME, arginine catabolic mobile element; HLG, hemolysin .

    Article Snippet: Two nonclinical reference strains— S. aureus Mu3 (ATCC 700698) and S. aureus Mu50 (ATCC 700699)—were included in the study.

    Techniques: Microarray, Functional Assay

    Comparative genomic presence of virulence- and regulation-associated gene families in S. aureus Strains. Heatmaps depict the distribution of gene families associated with ( a ) regulation, ( b ) superantigen-like proteins, ( c ) adhesion, ( d ) biofilm formation, ( e ) leukocidins, ( f ) unconventional virulence factors, and ( g ) proteases across 7 S. aureus strains (MRSA USA300, Mu3, Mu50, AD1, AD2, AD3, and AD 4). Each cell represents the status of a gene in a given strain: presence (yellow), absence (purple), or ambiguous (gray). MRSA, Methicillin-Resistant Staphylococcus aureus .

    Journal: JID Innovations

    Article Title: Atopic Dermatitis–like mouse model using early inoculation of patient-derived S. aureus together with MC903

    doi: 10.1016/j.xjidi.2025.100436

    Figure Lengend Snippet: Comparative genomic presence of virulence- and regulation-associated gene families in S. aureus Strains. Heatmaps depict the distribution of gene families associated with ( a ) regulation, ( b ) superantigen-like proteins, ( c ) adhesion, ( d ) biofilm formation, ( e ) leukocidins, ( f ) unconventional virulence factors, and ( g ) proteases across 7 S. aureus strains (MRSA USA300, Mu3, Mu50, AD1, AD2, AD3, and AD 4). Each cell represents the status of a gene in a given strain: presence (yellow), absence (purple), or ambiguous (gray). MRSA, Methicillin-Resistant Staphylococcus aureus .

    Article Snippet: Two nonclinical reference strains— S. aureus Mu3 (ATCC 700698) and S. aureus Mu50 (ATCC 700699)—were included in the study.

    Techniques:

    Antibacterial activity of identified peptides against Gram-positive and Gram-negative bacteria. Colony forming units (CFU) of (A) S. aureus ATCC 25923, (B) MRSA ATCC 700699, (C) E. coli ATCC 25922, (D) E. coli MDR, and (E, F) K . pneumoniae ATCC 1706 and ATCC 1705 were presented to eight concentrations of LL-37, CdPMAP-23, CdPG-3, and CdCATH for 3 h at 37°C. After serial dilutions and overnight incubation on LB agar, the colonies of surviving bacteria were counted, (PBS as negative control), data is presented as Mean Log 10 CFU/ml, P value: 0.05>(*), 0.01>(**), 0.001> (***), 0.0001>(****).

    Journal: Frontiers in Immunology

    Article Title: Identification and characterization of novel antimicrobial peptides from Camelus dromedarius : a combined bioinformatics and experimental study

    doi: 10.3389/fimmu.2026.1745714

    Figure Lengend Snippet: Antibacterial activity of identified peptides against Gram-positive and Gram-negative bacteria. Colony forming units (CFU) of (A) S. aureus ATCC 25923, (B) MRSA ATCC 700699, (C) E. coli ATCC 25922, (D) E. coli MDR, and (E, F) K . pneumoniae ATCC 1706 and ATCC 1705 were presented to eight concentrations of LL-37, CdPMAP-23, CdPG-3, and CdCATH for 3 h at 37°C. After serial dilutions and overnight incubation on LB agar, the colonies of surviving bacteria were counted, (PBS as negative control), data is presented as Mean Log 10 CFU/ml, P value: 0.05>(*), 0.01>(**), 0.001> (***), 0.0001>(****).

    Article Snippet: Regarding MRSA ATCC 700699, LL-37 had a notable effect starting at 10 μM, reducing growth by 0.2 log 10 (p<0.05) and reaching 0.48 log 10 at 160 μM (p<0.0001).

    Techniques: Activity Assay, Bacteria, Incubation, Negative Control