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protoarraytm human protein microarrays v5.1  (Thermo Fisher)


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    Structured Review

    Thermo Fisher protoarraytm human protein microarrays v5.1
    Protoarraytm Human Protein Microarrays V5.1, supplied by Thermo Fisher, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/protein+microarray/protoarray+human+protein+microarrays/pm40578348-771-12-17
    Average 90 stars, based on 1 article reviews
    protoarraytm human protein microarrays v5.1 - by Bioz Stars, 2026-10
    90/100 stars

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    Related Articles

    other:

    Article Title: Interaction with AK2A links AIFM1 to cellular energy metabolism
    Article Snippet: To find novel interactors of AIFM1, a high-content protein microarray was performed using ProtoArrayTM Human Protein Microarrays v5.1 (Thermo Fisher Scientific) containing ∼ 9.000 N-terminal Glutathione S-Transferase (GST)-tagged human proteins extracted from transfected insect cells.

    Article Title: Serum anti‑KIAA0513 antibody as a common biomarker for mortal atherosclerotic and cancerous diseases
    Article Snippet: The initial screening was performed using ProtoArray ® Human Protein Microarrays v4.0 (Thermo Fisher Scientific, Inc.), which were loaded with 9,480 species of proteins, as previously described ( , , ).

    Article Title: Actin-nucleation promoting factor N-WASP influences alpha-synuclein condensates and pathology.
    Article Snippet: Human protein-protein interaction profiling Protein-Protein Interaction Profiling Service was performed on ProtoArrayTM Human Protein Microarrays v5.1 (ThermoFisher Scientific, USA) as previously described [31].

    Article Title: Actin-nucleation promoting factor N-WASP influences alpha-synuclein condensates and pathology
    Article Snippet: Protein-Protein Interaction Profiling Service was performed on ProtoArrayTM Human Protein Microarrays v5.1 (ThermoFisher Scientific, USA) as previously described [ ].

    Article Title: Interaction with AK2A links AIFM1 to cellular energy metabolism.
    Article Snippet: To find interactors of AIFM1, a high-content protein-protein microarray was performed using ProtoArrayTM Human Protein Microarrays v5.1 (Thermo Fisher Scientific) containing ∼9.000 N-terminal Glutathione S-Transferase (GST)-tagged human proteins extracted from transfected insect cells.

    Article Title: <i>PARP15</i> is a Susceptibility Locus for Clarkson Disease (Monoclonal Gammopathy–Associated Systemic Capillary Leak Syndrome)
    Article Snippet: 2628 December 2024 Arterioscler Thromb Vasc Biol.. 2024;44:2628–2646.. DOI: 10.1161/ATVBAHA.124.321522 Arterioscler Thromb Vasc Biol is available at www.ahajournals.org/journal/atvb Correspondence to: Kirk M. Druey, MD, Lung and Vascular Inflammation Section, Laboratory of Allergic Diseases, National Institute of Allergy and Infectious Diseases, National Institutes of Health, 10 Center Dr, Room 11N238A, Bethesda, MD 20892.

    Microarray:

    Article Title: A Novel Interaction Between RAD23A/B and Y-family DNA Polymerases.
    Article Snippet: Primary antibodies were detected with fluorescent secondary antibodies, and immunoblots quantified, as described previously.34 For the microarray, the Pol i antibody was detected with an Alexa Fluor 647-conjugated goat anti-mouse secondary antibody (Thermo Fisher Scientific cat #A-21240). .. The protein microarray experiment was performed as a custom service by LifeSensors, Inc. For this, WT FLAG-Pol i was immunoprecipitated from HEK293T cells and sent to LifeSensors for challenging the ProtoArray Human Protein Microarray (ThermoFisher Scientific). ..

    Immunoprecipitation:

    Article Title: A Novel Interaction Between RAD23A/B and Y-family DNA Polymerases.
    Article Snippet: Primary antibodies were detected with fluorescent secondary antibodies, and immunoblots quantified, as described previously.34 For the microarray, the Pol i antibody was detected with an Alexa Fluor 647-conjugated goat anti-mouse secondary antibody (Thermo Fisher Scientific cat #A-21240). .. The protein microarray experiment was performed as a custom service by LifeSensors, Inc. For this, WT FLAG-Pol i was immunoprecipitated from HEK293T cells and sent to LifeSensors for challenging the ProtoArray Human Protein Microarray (ThermoFisher Scientific). ..



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    Thermo Fisher human protein microarray catalog # 27055101
    SIRT4 targets identified by Human Protein <t>Microarray.</t> A) Scan of Human Protein Microarray in the presence or absence (Control) of human recombinant SIRT4 protein. The pattern of red fluorescence spots (always in duplicate) on the control chip serves to facilitate specific protein identification following fluorescence excitation. Fluorescence spots specifically identified on the array incubated with SIRT4 represent potential SIRT4 interaction targets (exemplarily illustrated by the white arrow). B) List of proteins identified by protein-protein interaction with SIRT4 using a Human Protein Microarray. SIRT4, sirtuin 4. (For interpretation of the references to colour in this figure legend, the reader is referred to the web version of this article.)
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    Image Search Results


    Construction and characterization of the ASFV proteome microarray. In parallel with the controls, a total of 160 GST-tagged ASFV proteins were printed in triplicate onto a PATH substrate slide, generating 14 identical subarrays per slide. The slides were probed with an anti-GST antibody and a Cy3-labeled secondary antibody. (a) A representative subarray (upper) and the layout of the array (lower). (b) Histogram analysis of the fluorescence intensity of all the immobilized ASFV proteins based on their N-terminal GST tag probed with an anti-GST antibody and a fluorescently labeled secondary antibody. (c) Fluorescence intensity distribution of the spots of ASFV proteins and negative controls (including blank, BSA, IgG, IgM, and IgA) after probing with an anti-GST antibody and a fluorescently labeled secondary antibody. (d) Representative subarrays probed with sera from an ASFV-infected pig and a healthy pig. The IgG signals are shown in green. (e) Correlation analysis showing the repeated experimental results for the same serum sample.

    Journal: Journal of Virology

    Article Title: An African swine fever virus-specific antibody reactome reveals antigens as potential candidates for vaccine development

    doi: 10.1128/jvi.00478-25

    Figure Lengend Snippet: Construction and characterization of the ASFV proteome microarray. In parallel with the controls, a total of 160 GST-tagged ASFV proteins were printed in triplicate onto a PATH substrate slide, generating 14 identical subarrays per slide. The slides were probed with an anti-GST antibody and a Cy3-labeled secondary antibody. (a) A representative subarray (upper) and the layout of the array (lower). (b) Histogram analysis of the fluorescence intensity of all the immobilized ASFV proteins based on their N-terminal GST tag probed with an anti-GST antibody and a fluorescently labeled secondary antibody. (c) Fluorescence intensity distribution of the spots of ASFV proteins and negative controls (including blank, BSA, IgG, IgM, and IgA) after probing with an anti-GST antibody and a fluorescently labeled secondary antibody. (d) Representative subarrays probed with sera from an ASFV-infected pig and a healthy pig. The IgG signals are shown in green. (e) Correlation analysis showing the repeated experimental results for the same serum sample.

    Article Snippet: Briefly, using a Super Marathon printer (Arrayjet, UK), identical protein arrays in a 2 × 7 subarray format were generated by printing affinity-purified 160 ASFV proteins, accompanied by negative (BSA and GST) and positive controls (anti-swine IgG [Novus Biologicals, USA, Cat# NBP1-97054], IgM [Novus Biologicals, USA, Cat# NBP1-96788], and IgA [Alpha Diagnostic International, USA, Cat# 20017-4-1]) and land markers, in triplicate, on PATH Protein Microarray Slides (GraceBio-Labs, Oregon, USA).

    Techniques: Microarray, Labeling, Fluorescence, Infection

    High-throughput analysis of sera from ASFV-infected pigs using a proteome microarray. (a) Timelines of animal treatment and sample collection. Group A pigs ( n = 5) were infected with a virulent ASFV CN/GS 2018 strain at 1 HAD 50 . Three pigs died by 15 dpi, while the other two pigs developed clinical symptoms of ASF during the observation period but ultimately survived. Serum samples were collected at 3, 5, 7, 9, and 15 dpi. Group B pigs ( n = 5) inoculated with 10 4 HAD 50 of ASFV-GS-ΔMGF360-18R/DP71L/DP96R survived the 17-day observation period and remained alive after being challenged with 10 2 HAD 50 of the parental virus during the 13-day observation period. Serum samples were collected at 0, 7, 13, and 17 dpi and at 7 dpc. Group C pigs inoculated with 10 4 HAD 50 of ASFV-GS-ΔMGF110/360-9L ( n = 6) survived the 17-day observation period and remained alive after being challenged with 10 2 HAD 50 of the parental virus during the 13-day observation period. Serum samples were collected at 7, 13, and 17 dpi and 7 dpc. (b) Uniform manifold approximation and projection (UMAP) of the 160-ASFV-protein-specific IgG signals in the serum samples from the three groups. Each point represents an individual serum sample. (c) The amounts of the IgG-positive ASFV proteins and the shared portion from groups B and C.

    Journal: Journal of Virology

    Article Title: An African swine fever virus-specific antibody reactome reveals antigens as potential candidates for vaccine development

    doi: 10.1128/jvi.00478-25

    Figure Lengend Snippet: High-throughput analysis of sera from ASFV-infected pigs using a proteome microarray. (a) Timelines of animal treatment and sample collection. Group A pigs ( n = 5) were infected with a virulent ASFV CN/GS 2018 strain at 1 HAD 50 . Three pigs died by 15 dpi, while the other two pigs developed clinical symptoms of ASF during the observation period but ultimately survived. Serum samples were collected at 3, 5, 7, 9, and 15 dpi. Group B pigs ( n = 5) inoculated with 10 4 HAD 50 of ASFV-GS-ΔMGF360-18R/DP71L/DP96R survived the 17-day observation period and remained alive after being challenged with 10 2 HAD 50 of the parental virus during the 13-day observation period. Serum samples were collected at 0, 7, 13, and 17 dpi and at 7 dpc. Group C pigs inoculated with 10 4 HAD 50 of ASFV-GS-ΔMGF110/360-9L ( n = 6) survived the 17-day observation period and remained alive after being challenged with 10 2 HAD 50 of the parental virus during the 13-day observation period. Serum samples were collected at 7, 13, and 17 dpi and 7 dpc. (b) Uniform manifold approximation and projection (UMAP) of the 160-ASFV-protein-specific IgG signals in the serum samples from the three groups. Each point represents an individual serum sample. (c) The amounts of the IgG-positive ASFV proteins and the shared portion from groups B and C.

    Article Snippet: Briefly, using a Super Marathon printer (Arrayjet, UK), identical protein arrays in a 2 × 7 subarray format were generated by printing affinity-purified 160 ASFV proteins, accompanied by negative (BSA and GST) and positive controls (anti-swine IgG [Novus Biologicals, USA, Cat# NBP1-97054], IgM [Novus Biologicals, USA, Cat# NBP1-96788], and IgA [Alpha Diagnostic International, USA, Cat# 20017-4-1]) and land markers, in triplicate, on PATH Protein Microarray Slides (GraceBio-Labs, Oregon, USA).

    Techniques: High Throughput Screening Assay, Infection, Microarray, Virus

    SIRT4 targets identified by Human Protein Microarray. A) Scan of Human Protein Microarray in the presence or absence (Control) of human recombinant SIRT4 protein. The pattern of red fluorescence spots (always in duplicate) on the control chip serves to facilitate specific protein identification following fluorescence excitation. Fluorescence spots specifically identified on the array incubated with SIRT4 represent potential SIRT4 interaction targets (exemplarily illustrated by the white arrow). B) List of proteins identified by protein-protein interaction with SIRT4 using a Human Protein Microarray. SIRT4, sirtuin 4. (For interpretation of the references to colour in this figure legend, the reader is referred to the web version of this article.)

    Journal: Journal of Molecular and Cellular Cardiology Plus

    Article Title: Sirtuin 4 accelerates heart failure development by enhancing reactive oxygen species-mediated profibrotic transcriptional signaling

    doi: 10.1016/j.jmccpl.2025.100299

    Figure Lengend Snippet: SIRT4 targets identified by Human Protein Microarray. A) Scan of Human Protein Microarray in the presence or absence (Control) of human recombinant SIRT4 protein. The pattern of red fluorescence spots (always in duplicate) on the control chip serves to facilitate specific protein identification following fluorescence excitation. Fluorescence spots specifically identified on the array incubated with SIRT4 represent potential SIRT4 interaction targets (exemplarily illustrated by the white arrow). B) List of proteins identified by protein-protein interaction with SIRT4 using a Human Protein Microarray. SIRT4, sirtuin 4. (For interpretation of the references to colour in this figure legend, the reader is referred to the web version of this article.)

    Article Snippet: SIRT4 protein interaction was investigated using a Human Protein Microarray (Catalog # 27055101, Thermo Fisher Scientific, Germany) following the manufacturing protocol.

    Techniques: Microarray, Control, Recombinant, Fluorescence, Incubation