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pe il 17 secretion assay detection kit  (Miltenyi Biotec)


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    Miltenyi Biotec pe il 17 secretion assay detection kit
    Identification of Distinct Human TH17 Cell Subsets and Generation of Stable TH17 Clones from PBMC for Functional Characterization. A Schematic representation of the workflow to generate T H 17-IL22 + /IFNg + and T H 17-IL-10 + clones used to perform bulk ATAC-seq and RNA-seq data sets. In brief, peripheral blood mononuclear cells (PBMCs) were isolated from fresh blood using density gradient centrifugation. The samples were enriched for CD4 + CCR6 + CXCR3- TH17 cells, referred to as “bulk TH17 cells.” Viable <t>IL-17-producing</t> cells were isolated by flow cytometry following a 3-hour stimulation with PMA and ionomycin using a IL-17 capture assay. The single TH17 cell clones were sorted into 384-well plates and expanded with allogeneic γ-irradiated feeder cells and phytohemagglutinin in complete medium containing IL-2. After approximately ten days, clones were transferred to 96-well plates for expansion, and following 2–3 weeks, their cytokine profiles were analyzed. T cell clones were then evaluated at two stages: day 0 (resting state) and day 5 (activated state). On day 5, they were stimulated for 48 hours with anti-CD3 and CD28, followed by an additional 3 days in uncoated plates. On both evaluation days, cells underwent further stimulation — 5 hours for protein analysis and 2 hours for RNA and chromatin-accessibility (ATAC-seq) analysis. Only TH17 clones exhibiting a stable cytokine profile after two rounds of resting and reactivation were selected for RNA-seq and ATAC-seq analysis. B Intracellular staining of IL-17 and IFNγ (top) and IL-22 and IL-10 (bottom) in a T H 17-IL10 + clone (right) and a T H 17-IL22 + /IFNg + clone (left) in the resting state (Day 0) and 5 days post-activation (Day 5). Numbers in quadrants indicate percent cells. C Frequency of IL-17+, IL-10+, IFNγ+, and IL-22+ cells among 6 independent TH17-IL-22 + /IFNγ + (left) and TH17-IL-10 + (right) clones at Day 0 and Day 5. Each symbol represents an individual T cell clone ( n = 6); data are shown as mean ± s.e.m. * P < 0.05, ** P < 0.01 (one-way ANOVA). TH17 clones were selected for RNA and ATAC-seq analysis based on the following criteria: ≥50% IL-17A+ cells at Day 0, ≥15% IL-22+ cells at Day 0 and Day 5, ≥15% IFNγ+ cells at Day 0 and Day 5 for TH17-IL-22 + /IFNγ + clones; ≥50% IL-17A+ cells at Day 0, ≥15% IL-10+ cells at Day 5 for TH17-IL-10 + clones
    Pe Il 17 Secretion Assay Detection Kit, supplied by Miltenyi Biotec, used in various techniques. Bioz Stars score: 97/100, based on 5 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/pe+il+17+secretion+assay+detection+kit/IL-17+Secretion+Assay+-+Detection+Kit+(APC)%2C+human/pmc13062046-5-0-7
    Average 97 stars, based on 5 article reviews
    pe il 17 secretion assay detection kit - by Bioz Stars, 2026-10
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    1) Product Images from "Aiolos and Eos drive distinct human TH17 functional states"

    Article Title: Aiolos and Eos drive distinct human TH17 functional states

    Journal: Cellular and Molecular Life Sciences: CMLS

    doi: 10.1007/s00018-026-06089-1

    Identification of Distinct Human TH17 Cell Subsets and Generation of Stable TH17 Clones from PBMC for Functional Characterization. A Schematic representation of the workflow to generate T H 17-IL22 + /IFNg + and T H 17-IL-10 + clones used to perform bulk ATAC-seq and RNA-seq data sets. In brief, peripheral blood mononuclear cells (PBMCs) were isolated from fresh blood using density gradient centrifugation. The samples were enriched for CD4 + CCR6 + CXCR3- TH17 cells, referred to as “bulk TH17 cells.” Viable IL-17-producing cells were isolated by flow cytometry following a 3-hour stimulation with PMA and ionomycin using a IL-17 capture assay. The single TH17 cell clones were sorted into 384-well plates and expanded with allogeneic γ-irradiated feeder cells and phytohemagglutinin in complete medium containing IL-2. After approximately ten days, clones were transferred to 96-well plates for expansion, and following 2–3 weeks, their cytokine profiles were analyzed. T cell clones were then evaluated at two stages: day 0 (resting state) and day 5 (activated state). On day 5, they were stimulated for 48 hours with anti-CD3 and CD28, followed by an additional 3 days in uncoated plates. On both evaluation days, cells underwent further stimulation — 5 hours for protein analysis and 2 hours for RNA and chromatin-accessibility (ATAC-seq) analysis. Only TH17 clones exhibiting a stable cytokine profile after two rounds of resting and reactivation were selected for RNA-seq and ATAC-seq analysis. B Intracellular staining of IL-17 and IFNγ (top) and IL-22 and IL-10 (bottom) in a T H 17-IL10 + clone (right) and a T H 17-IL22 + /IFNg + clone (left) in the resting state (Day 0) and 5 days post-activation (Day 5). Numbers in quadrants indicate percent cells. C Frequency of IL-17+, IL-10+, IFNγ+, and IL-22+ cells among 6 independent TH17-IL-22 + /IFNγ + (left) and TH17-IL-10 + (right) clones at Day 0 and Day 5. Each symbol represents an individual T cell clone ( n = 6); data are shown as mean ± s.e.m. * P < 0.05, ** P < 0.01 (one-way ANOVA). TH17 clones were selected for RNA and ATAC-seq analysis based on the following criteria: ≥50% IL-17A+ cells at Day 0, ≥15% IL-22+ cells at Day 0 and Day 5, ≥15% IFNγ+ cells at Day 0 and Day 5 for TH17-IL-22 + /IFNγ + clones; ≥50% IL-17A+ cells at Day 0, ≥15% IL-10+ cells at Day 5 for TH17-IL-10 + clones
    Figure Legend Snippet: Identification of Distinct Human TH17 Cell Subsets and Generation of Stable TH17 Clones from PBMC for Functional Characterization. A Schematic representation of the workflow to generate T H 17-IL22 + /IFNg + and T H 17-IL-10 + clones used to perform bulk ATAC-seq and RNA-seq data sets. In brief, peripheral blood mononuclear cells (PBMCs) were isolated from fresh blood using density gradient centrifugation. The samples were enriched for CD4 + CCR6 + CXCR3- TH17 cells, referred to as “bulk TH17 cells.” Viable IL-17-producing cells were isolated by flow cytometry following a 3-hour stimulation with PMA and ionomycin using a IL-17 capture assay. The single TH17 cell clones were sorted into 384-well plates and expanded with allogeneic γ-irradiated feeder cells and phytohemagglutinin in complete medium containing IL-2. After approximately ten days, clones were transferred to 96-well plates for expansion, and following 2–3 weeks, their cytokine profiles were analyzed. T cell clones were then evaluated at two stages: day 0 (resting state) and day 5 (activated state). On day 5, they were stimulated for 48 hours with anti-CD3 and CD28, followed by an additional 3 days in uncoated plates. On both evaluation days, cells underwent further stimulation — 5 hours for protein analysis and 2 hours for RNA and chromatin-accessibility (ATAC-seq) analysis. Only TH17 clones exhibiting a stable cytokine profile after two rounds of resting and reactivation were selected for RNA-seq and ATAC-seq analysis. B Intracellular staining of IL-17 and IFNγ (top) and IL-22 and IL-10 (bottom) in a T H 17-IL10 + clone (right) and a T H 17-IL22 + /IFNg + clone (left) in the resting state (Day 0) and 5 days post-activation (Day 5). Numbers in quadrants indicate percent cells. C Frequency of IL-17+, IL-10+, IFNγ+, and IL-22+ cells among 6 independent TH17-IL-22 + /IFNγ + (left) and TH17-IL-10 + (right) clones at Day 0 and Day 5. Each symbol represents an individual T cell clone ( n = 6); data are shown as mean ± s.e.m. * P < 0.05, ** P < 0.01 (one-way ANOVA). TH17 clones were selected for RNA and ATAC-seq analysis based on the following criteria: ≥50% IL-17A+ cells at Day 0, ≥15% IL-22+ cells at Day 0 and Day 5, ≥15% IFNγ+ cells at Day 0 and Day 5 for TH17-IL-22 + /IFNγ + clones; ≥50% IL-17A+ cells at Day 0, ≥15% IL-10+ cells at Day 5 for TH17-IL-10 + clones

    Techniques Used: Clone Assay, Functional Assay, RNA Sequencing, Isolation, Gradient Centrifugation, Flow Cytometry, Irradiation, Staining, Activation Assay

    Related Articles

    Clone Assay:

    Article Title: Aiolos and Eos drive distinct human TH17 functional states
    Article Snippet: PE IL-17 Secretion Assay- detection kit , Miltenyi , 130-094-536.

    Functional Assay:

    Article Title: Aiolos and Eos drive distinct human TH17 functional states
    Article Snippet: PE IL-17 Secretion Assay- detection kit , Miltenyi , 130-094-536.

    RNA Sequencing:

    Article Title: Aiolos and Eos drive distinct human TH17 functional states
    Article Snippet: PE IL-17 Secretion Assay- detection kit , Miltenyi , 130-094-536.

    Isolation:

    Article Title: Aiolos and Eos drive distinct human TH17 functional states
    Article Snippet: PE IL-17 Secretion Assay- detection kit , Miltenyi , 130-094-536.

    Gradient Centrifugation:

    Article Title: Aiolos and Eos drive distinct human TH17 functional states
    Article Snippet: PE IL-17 Secretion Assay- detection kit , Miltenyi , 130-094-536.

    Flow Cytometry:

    Article Title: Aiolos and Eos drive distinct human TH17 functional states
    Article Snippet: PE IL-17 Secretion Assay- detection kit , Miltenyi , 130-094-536.

    Irradiation:

    Article Title: Aiolos and Eos drive distinct human TH17 functional states
    Article Snippet: PE IL-17 Secretion Assay- detection kit , Miltenyi , 130-094-536.

    Staining:

    Article Title: Aiolos and Eos drive distinct human TH17 functional states
    Article Snippet: PE IL-17 Secretion Assay- detection kit , Miltenyi , 130-094-536.

    Activation Assay:

    Article Title: Aiolos and Eos drive distinct human TH17 functional states
    Article Snippet: PE IL-17 Secretion Assay- detection kit , Miltenyi , 130-094-536.



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    Identification of Distinct Human TH17 Cell Subsets and Generation of Stable TH17 Clones from PBMC for Functional Characterization. A Schematic representation of the workflow to generate T H 17-IL22 + /IFNg + and T H 17-IL-10 + clones used to perform bulk ATAC-seq and RNA-seq data sets. In brief, peripheral blood mononuclear cells (PBMCs) were isolated from fresh blood using density gradient centrifugation. The samples were enriched for CD4 + CCR6 + CXCR3- TH17 cells, referred to as “bulk TH17 cells.” Viable <t>IL-17-producing</t> cells were isolated by flow cytometry following a 3-hour stimulation with PMA and ionomycin using a IL-17 capture assay. The single TH17 cell clones were sorted into 384-well plates and expanded with allogeneic γ-irradiated feeder cells and phytohemagglutinin in complete medium containing IL-2. After approximately ten days, clones were transferred to 96-well plates for expansion, and following 2–3 weeks, their cytokine profiles were analyzed. T cell clones were then evaluated at two stages: day 0 (resting state) and day 5 (activated state). On day 5, they were stimulated for 48 hours with anti-CD3 and CD28, followed by an additional 3 days in uncoated plates. On both evaluation days, cells underwent further stimulation — 5 hours for protein analysis and 2 hours for RNA and chromatin-accessibility (ATAC-seq) analysis. Only TH17 clones exhibiting a stable cytokine profile after two rounds of resting and reactivation were selected for RNA-seq and ATAC-seq analysis. B Intracellular staining of IL-17 and IFNγ (top) and IL-22 and IL-10 (bottom) in a T H 17-IL10 + clone (right) and a T H 17-IL22 + /IFNg + clone (left) in the resting state (Day 0) and 5 days post-activation (Day 5). Numbers in quadrants indicate percent cells. C Frequency of IL-17+, IL-10+, IFNγ+, and IL-22+ cells among 6 independent TH17-IL-22 + /IFNγ + (left) and TH17-IL-10 + (right) clones at Day 0 and Day 5. Each symbol represents an individual T cell clone ( n = 6); data are shown as mean ± s.e.m. * P < 0.05, ** P < 0.01 (one-way ANOVA). TH17 clones were selected for RNA and ATAC-seq analysis based on the following criteria: ≥50% IL-17A+ cells at Day 0, ≥15% IL-22+ cells at Day 0 and Day 5, ≥15% IFNγ+ cells at Day 0 and Day 5 for TH17-IL-22 + /IFNγ + clones; ≥50% IL-17A+ cells at Day 0, ≥15% IL-10+ cells at Day 5 for TH17-IL-10 + clones
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    https://www.bioz.com/product/pe+il+17+secretion+assay+detection+kit/IL-17+Secretion+Assay+-+Detection+Kit+(PE)%2C+human/pmc11831165__pnas__2414230122__sapp-38-22-26
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    Miltenyi Biotec human miltenyi biotec
    Identification of Distinct Human TH17 Cell Subsets and Generation of Stable TH17 Clones from PBMC for Functional Characterization. A Schematic representation of the workflow to generate T H 17-IL22 + /IFNg + and T H 17-IL-10 + clones used to perform bulk ATAC-seq and RNA-seq data sets. In brief, peripheral blood mononuclear cells (PBMCs) were isolated from fresh blood using density gradient centrifugation. The samples were enriched for CD4 + CCR6 + CXCR3- TH17 cells, referred to as “bulk TH17 cells.” Viable <t>IL-17-producing</t> cells were isolated by flow cytometry following a 3-hour stimulation with PMA and ionomycin using a IL-17 capture assay. The single TH17 cell clones were sorted into 384-well plates and expanded with allogeneic γ-irradiated feeder cells and phytohemagglutinin in complete medium containing IL-2. After approximately ten days, clones were transferred to 96-well plates for expansion, and following 2–3 weeks, their cytokine profiles were analyzed. T cell clones were then evaluated at two stages: day 0 (resting state) and day 5 (activated state). On day 5, they were stimulated for 48 hours with anti-CD3 and CD28, followed by an additional 3 days in uncoated plates. On both evaluation days, cells underwent further stimulation — 5 hours for protein analysis and 2 hours for RNA and chromatin-accessibility (ATAC-seq) analysis. Only TH17 clones exhibiting a stable cytokine profile after two rounds of resting and reactivation were selected for RNA-seq and ATAC-seq analysis. B Intracellular staining of IL-17 and IFNγ (top) and IL-22 and IL-10 (bottom) in a T H 17-IL10 + clone (right) and a T H 17-IL22 + /IFNg + clone (left) in the resting state (Day 0) and 5 days post-activation (Day 5). Numbers in quadrants indicate percent cells. C Frequency of IL-17+, IL-10+, IFNγ+, and IL-22+ cells among 6 independent TH17-IL-22 + /IFNγ + (left) and TH17-IL-10 + (right) clones at Day 0 and Day 5. Each symbol represents an individual T cell clone ( n = 6); data are shown as mean ± s.e.m. * P < 0.05, ** P < 0.01 (one-way ANOVA). TH17 clones were selected for RNA and ATAC-seq analysis based on the following criteria: ≥50% IL-17A+ cells at Day 0, ≥15% IL-22+ cells at Day 0 and Day 5, ≥15% IFNγ+ cells at Day 0 and Day 5 for TH17-IL-22 + /IFNγ + clones; ≥50% IL-17A+ cells at Day 0, ≥15% IL-10+ cells at Day 5 for TH17-IL-10 + clones
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    Identification of Distinct Human TH17 Cell Subsets and Generation of Stable TH17 Clones from PBMC for Functional Characterization. A Schematic representation of the workflow to generate T H 17-IL22 + /IFNg + and T H 17-IL-10 + clones used to perform bulk ATAC-seq and RNA-seq data sets. In brief, peripheral blood mononuclear cells (PBMCs) were isolated from fresh blood using density gradient centrifugation. The samples were enriched for CD4 + CCR6 + CXCR3- TH17 cells, referred to as “bulk TH17 cells.” Viable IL-17-producing cells were isolated by flow cytometry following a 3-hour stimulation with PMA and ionomycin using a IL-17 capture assay. The single TH17 cell clones were sorted into 384-well plates and expanded with allogeneic γ-irradiated feeder cells and phytohemagglutinin in complete medium containing IL-2. After approximately ten days, clones were transferred to 96-well plates for expansion, and following 2–3 weeks, their cytokine profiles were analyzed. T cell clones were then evaluated at two stages: day 0 (resting state) and day 5 (activated state). On day 5, they were stimulated for 48 hours with anti-CD3 and CD28, followed by an additional 3 days in uncoated plates. On both evaluation days, cells underwent further stimulation — 5 hours for protein analysis and 2 hours for RNA and chromatin-accessibility (ATAC-seq) analysis. Only TH17 clones exhibiting a stable cytokine profile after two rounds of resting and reactivation were selected for RNA-seq and ATAC-seq analysis. B Intracellular staining of IL-17 and IFNγ (top) and IL-22 and IL-10 (bottom) in a T H 17-IL10 + clone (right) and a T H 17-IL22 + /IFNg + clone (left) in the resting state (Day 0) and 5 days post-activation (Day 5). Numbers in quadrants indicate percent cells. C Frequency of IL-17+, IL-10+, IFNγ+, and IL-22+ cells among 6 independent TH17-IL-22 + /IFNγ + (left) and TH17-IL-10 + (right) clones at Day 0 and Day 5. Each symbol represents an individual T cell clone ( n = 6); data are shown as mean ± s.e.m. * P < 0.05, ** P < 0.01 (one-way ANOVA). TH17 clones were selected for RNA and ATAC-seq analysis based on the following criteria: ≥50% IL-17A+ cells at Day 0, ≥15% IL-22+ cells at Day 0 and Day 5, ≥15% IFNγ+ cells at Day 0 and Day 5 for TH17-IL-22 + /IFNγ + clones; ≥50% IL-17A+ cells at Day 0, ≥15% IL-10+ cells at Day 5 for TH17-IL-10 + clones

    Journal: Cellular and Molecular Life Sciences: CMLS

    Article Title: Aiolos and Eos drive distinct human TH17 functional states

    doi: 10.1007/s00018-026-06089-1

    Figure Lengend Snippet: Identification of Distinct Human TH17 Cell Subsets and Generation of Stable TH17 Clones from PBMC for Functional Characterization. A Schematic representation of the workflow to generate T H 17-IL22 + /IFNg + and T H 17-IL-10 + clones used to perform bulk ATAC-seq and RNA-seq data sets. In brief, peripheral blood mononuclear cells (PBMCs) were isolated from fresh blood using density gradient centrifugation. The samples were enriched for CD4 + CCR6 + CXCR3- TH17 cells, referred to as “bulk TH17 cells.” Viable IL-17-producing cells were isolated by flow cytometry following a 3-hour stimulation with PMA and ionomycin using a IL-17 capture assay. The single TH17 cell clones were sorted into 384-well plates and expanded with allogeneic γ-irradiated feeder cells and phytohemagglutinin in complete medium containing IL-2. After approximately ten days, clones were transferred to 96-well plates for expansion, and following 2–3 weeks, their cytokine profiles were analyzed. T cell clones were then evaluated at two stages: day 0 (resting state) and day 5 (activated state). On day 5, they were stimulated for 48 hours with anti-CD3 and CD28, followed by an additional 3 days in uncoated plates. On both evaluation days, cells underwent further stimulation — 5 hours for protein analysis and 2 hours for RNA and chromatin-accessibility (ATAC-seq) analysis. Only TH17 clones exhibiting a stable cytokine profile after two rounds of resting and reactivation were selected for RNA-seq and ATAC-seq analysis. B Intracellular staining of IL-17 and IFNγ (top) and IL-22 and IL-10 (bottom) in a T H 17-IL10 + clone (right) and a T H 17-IL22 + /IFNg + clone (left) in the resting state (Day 0) and 5 days post-activation (Day 5). Numbers in quadrants indicate percent cells. C Frequency of IL-17+, IL-10+, IFNγ+, and IL-22+ cells among 6 independent TH17-IL-22 + /IFNγ + (left) and TH17-IL-10 + (right) clones at Day 0 and Day 5. Each symbol represents an individual T cell clone ( n = 6); data are shown as mean ± s.e.m. * P < 0.05, ** P < 0.01 (one-way ANOVA). TH17 clones were selected for RNA and ATAC-seq analysis based on the following criteria: ≥50% IL-17A+ cells at Day 0, ≥15% IL-22+ cells at Day 0 and Day 5, ≥15% IFNγ+ cells at Day 0 and Day 5 for TH17-IL-22 + /IFNγ + clones; ≥50% IL-17A+ cells at Day 0, ≥15% IL-10+ cells at Day 5 for TH17-IL-10 + clones

    Article Snippet: PE IL-17 Secretion Assay- detection kit , Miltenyi , 130-094-536.

    Techniques: Clone Assay, Functional Assay, RNA Sequencing, Isolation, Gradient Centrifugation, Flow Cytometry, Irradiation, Staining, Activation Assay