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yap1  (Cell Signaling Technology Inc)


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    Structured Review

    Cell Signaling Technology Inc yap1
    Yap1, supplied by Cell Signaling Technology Inc, used in various techniques. Bioz Stars score: 98/100, based on 1486 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/anti+yap1/YAP+XP+Rabbit+mAb/pm41928626-238-14-15
    Average 98 stars, based on 1486 article reviews
    yap1 - by Bioz Stars, 2026-10
    98/100 stars

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    Related Articles

    Chromatin Immunoprecipitation:

    Article Title: Melatonin suppresses glycolysis and coordinately disrupts DNA repair via targeting the YAP1-NAMPT signaling in breast cancer.
    Article Snippet: Triple-negative breast cancer (TNBC) is characterized by aggressive behavior and high recurrence rates, contributing to poor prognoses of TNBC patients.. However, the lack of appropriate molecular targets limits the effectiveness of current antineoplastic therapies.. Therefore, effective therapeutic strategies are urgently needed.

    Article Title: CCL24 recruits CCR3 + TAMs to promote immunosuppression via YAP1 activation and serves as a therapeutic target for Gracillin in colorectal cancer
    Article Snippet: .. A ChIP kit (Millipore) was used following the manufacturer's guidelines, with anti-YAP1 (Cell Signaling Technology) to enrich YAP1-bound chromatin fragments. .. ChIP-seq libraries were constructed and sequenced on the Illumina NovaSeq platform using paired-end sequencing.

    Incubation:

    Article Title: Melatonin suppresses glycolysis and coordinately disrupts DNA repair via targeting the YAP1-NAMPT signaling in breast cancer.
    Article Snippet: Triple-negative breast cancer (TNBC) is characterized by aggressive behavior and high recurrence rates, contributing to poor prognoses of TNBC patients.. However, the lack of appropriate molecular targets limits the effectiveness of current antineoplastic therapies.. Therefore, effective therapeutic strategies are urgently needed.

    Article Title: Cell state-specific metabolic networks govern ferroptosis versus apoptosis in small cell lung cancer
    Article Snippet: Samples were heated to 80°C for 10 min, separated via gel electrophoresis and transferred to Nitrocellulose membranes using the TurboBlotting system (Bio-Rad). .. Membranes were blocked in PBS with 0.1% Tween 20 (PBST) with 5% (w/v) bovine serum albumin (BSA) for at least 30 min. Next, membranes were incubated over night at 4°C with primary antibodies (Anti-ß-actin (Millipore-Sigma, A1978, 1:10,000), Anti-ASCL1 (BD Pharmingen, 556604, 1:1,000), Anti-REST (Thermo Fisher Scientific, BS-2590R, 1:1,000), Anti-YAP1 (Cell Signaling Technology, #4912, 1:1,000), Anti-NEUROD1 (Abcam, ab60704, 1:1,000), Anti-hGCH1 (Abcam, ab236387, 1:1,000), Anti-mGCH1 (Abcam, ab307507, 1:1,000), Anti-GCHFR (Thermo Fisher Scientific, 18809-1-AP, 1:1,000)) in PBST with 5% BSA. .. After washing with PBST, membranes were incubated with horse radish peroxidase (HRP)-coupled secondary antibodies for at least 1 h. After another washing step, membranes were developed using chemiluminescent Amersham ECL Prime Western Blotting Detection Reagent (Cytiva, RPN2235).

    Expressing:

    Article Title: Methylation-induced suppression of YAP/TAZ confers sensitivity to HDAC inhibitors in high grade IDH mutant gliomas.
    Article Snippet: .. YAP and TAZ expression were validated via western blot using anti-YAP1 (Cat# 14074) and anti-TAZ (Cat# 72804) antibodies from Cell Signaling Technology. ..

    Article Title: Methylation-induced suppression of YAP/TAZ confers sensitivity to HDAC inhibitors in high-grade IDH mutant gliomas
    Article Snippet: .. YAP and TAZ expression were validated via western blot using anti-YAP1 (catalog 14074) and anti-TAZ (catalog 72804) antibodies from Cell Signaling Technology. ..

    Western Blot:

    Article Title: Methylation-induced suppression of YAP/TAZ confers sensitivity to HDAC inhibitors in high grade IDH mutant gliomas.
    Article Snippet: .. YAP and TAZ expression were validated via western blot using anti-YAP1 (Cat# 14074) and anti-TAZ (Cat# 72804) antibodies from Cell Signaling Technology. ..

    Article Title: Methylation-induced suppression of YAP/TAZ confers sensitivity to HDAC inhibitors in high-grade IDH mutant gliomas
    Article Snippet: .. YAP and TAZ expression were validated via western blot using anti-YAP1 (catalog 14074) and anti-TAZ (catalog 72804) antibodies from Cell Signaling Technology. ..

    Article Title: CRISPR screens reveal YAP/TEAD axis as a mediator of drug-tolerant cells in EGFR-mutant NSCLC.
    Article Snippet: Despite initial responses, most patients with metastatic lung cancer—including those with EGFR mutations—ultimately develop resistance to targeted therapies.. To systematically uncover mechanisms underlying this resistance, genome-wide CRISPR knockout and activation screens were conducted in EGFR-mutant lung cancer cell lines treated with EGFR inhibitors such as osimertinib and gefitinib.. These screens highlighted a recurrent involvement of genes associated with the Hippo signaling pathway.

    Immunohistochemical staining:

    Article Title: Methylation-induced suppression of YAP/TAZ confers sensitivity to HDAC inhibitors in high-grade IDH mutant gliomas
    Article Snippet: .. For immunohistochemical staining, anti-YAP1 (catalog 14074) and anti-TAZ (catalog 72804) antibodies were purchased from Cell Signaling Technology. ..

    Staining:

    Article Title: Methylation-induced suppression of YAP/TAZ confers sensitivity to HDAC inhibitors in high-grade IDH mutant gliomas
    Article Snippet: .. For immunohistochemical staining, anti-YAP1 (catalog 14074) and anti-TAZ (catalog 72804) antibodies were purchased from Cell Signaling Technology. ..



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    Age-associated hippocampal stiffening and its replication via laminin-modified hydrogels . (a) The strategy of in vivo EdU labeling and marker immunostaining for analyzing NSC proliferation and neurogenesis across various mouse age groups. ( b ) Co-staining of GFAP, EdU, and DCX in the hippocampus across different ages. Representative images showing a reduction in active radial glia-like stem cells and neuroblasts/newborn neurons with increasing age. GFAP (green), DCX (red), EdU (gray), and DAPI (blue). Scale bar, 100 μm. ( c-e ) Quantification of active radial glia-like stem cells (GFAP + EdU + ) ( c ), neuroblasts (DCX + EdU + ) ( d ), and newborn neurons (DCX + ) (e) in the SGZ area as in ( b ). n = 3 or 4 mice per group. ( f ) Schematic showing the measurement of hippocampal tissue stiffness using the Pavone nanoindenter and the design of hyaluronic acid (HA)–laminin hydrogels with tunable stiffness to mimic hippocampal mechanical properties at different postnatal ages. Soft, medium, and stiff hydrogels correspond to the mechanical characteristics of hippocampal tissues from 1-, 4-, and 12-week-old mice, respectively. ( g ) Representative images of the dentate gyrus in mouse brain slices across age groups, captured under Pavone nanoindentation microscopy. The SGZ regions measured by the nanoindentation probe are demarcated by paired colorful dashed lines. ( h ) Quantification of Young’s modulus in the hippocampal SGZ region of mice at different ages using Pavone nanoindentation. Brain slices were obtained from four mice per age group. Measurements were taken from n = 227 spots (1 week), n = 149 spots (4 weeks), n = 241 spots (8 weeks), n = 157 spots (12 weeks). (i ) Schematic illustration of the synthesis of HA@HA and HA@HA–Laminin hydrogels. Hyaluronic acid (HA) was first crosslinked with adipic dihydrazide (ADH) using EDC/HCl activation under acidic conditions (pH 3–4) to form HA@HA. Subsequently, laminin was conjugated to the HA network via CDI-mediated coupling to generate HA@HA–Laminin hydrogels. ( j ) Quantification of Young’s modulus of Soft, Medium, and Stiff HA-laminin hydrogels using the same Pavone nanoindentation used for tissue (Soft hydrogel, n = 44 spots; Medium hydrogel, n = 37 spots; Stiff hydrogel, n = 29 spots). ( k ) Immunostaining of <t>YAP1</t> protein shows the subcellular localization of YAP1 in NSCs cultured on HA-laminin hydrogels of varying stiffness. Dashed lines indicate representative cells with YAP1 predominantly in the cytoplasm (indicated by arrowheads), while solid lines represent cells with YAP1 primarily in the nucleus (indicated by arrows). Scale bar, 20 μm. ( l ) Quantification of YAP1 distribution in NSCs as in ( k ) (n = 4 wells). For all quantification data, statistical significance was determined using one-way ANOVA with Tukey’s multiple comparison tests. Data are presented as mean ± SD (∗∗p < 0.01, ∗∗∗p < 0.001, ∗∗∗∗p < 0.0001).
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    Age-associated hippocampal stiffening and its replication via laminin-modified hydrogels . (a) The strategy of in vivo EdU labeling and marker immunostaining for analyzing NSC proliferation and neurogenesis across various mouse age groups. ( b ) Co-staining of GFAP, EdU, and DCX in the hippocampus across different ages. Representative images showing a reduction in active radial glia-like stem cells and neuroblasts/newborn neurons with increasing age. GFAP (green), DCX (red), EdU (gray), and DAPI (blue). Scale bar, 100 μm. ( c-e ) Quantification of active radial glia-like stem cells (GFAP + EdU + ) ( c ), neuroblasts (DCX + EdU + ) ( d ), and newborn neurons (DCX + ) (e) in the SGZ area as in ( b ). n = 3 or 4 mice per group. ( f ) Schematic showing the measurement of hippocampal tissue stiffness using the Pavone nanoindenter and the design of hyaluronic acid (HA)–laminin hydrogels with tunable stiffness to mimic hippocampal mechanical properties at different postnatal ages. Soft, medium, and stiff hydrogels correspond to the mechanical characteristics of hippocampal tissues from 1-, 4-, and 12-week-old mice, respectively. ( g ) Representative images of the dentate gyrus in mouse brain slices across age groups, captured under Pavone nanoindentation microscopy. The SGZ regions measured by the nanoindentation probe are demarcated by paired colorful dashed lines. ( h ) Quantification of Young’s modulus in the hippocampal SGZ region of mice at different ages using Pavone nanoindentation. Brain slices were obtained from four mice per age group. Measurements were taken from n = 227 spots (1 week), n = 149 spots (4 weeks), n = 241 spots (8 weeks), n = 157 spots (12 weeks). (i ) Schematic illustration of the synthesis of HA@HA and HA@HA–Laminin hydrogels. Hyaluronic acid (HA) was first crosslinked with adipic dihydrazide (ADH) using EDC/HCl activation under acidic conditions (pH 3–4) to form HA@HA. Subsequently, laminin was conjugated to the HA network via CDI-mediated coupling to generate HA@HA–Laminin hydrogels. ( j ) Quantification of Young’s modulus of Soft, Medium, and Stiff HA-laminin hydrogels using the same Pavone nanoindentation used for tissue (Soft hydrogel, n = 44 spots; Medium hydrogel, n = 37 spots; Stiff hydrogel, n = 29 spots). ( k ) Immunostaining of <t>YAP1</t> protein shows the subcellular localization of YAP1 in NSCs cultured on HA-laminin hydrogels of varying stiffness. Dashed lines indicate representative cells with YAP1 predominantly in the cytoplasm (indicated by arrowheads), while solid lines represent cells with YAP1 primarily in the nucleus (indicated by arrows). Scale bar, 20 μm. ( l ) Quantification of YAP1 distribution in NSCs as in ( k ) (n = 4 wells). For all quantification data, statistical significance was determined using one-way ANOVA with Tukey’s multiple comparison tests. Data are presented as mean ± SD (∗∗p < 0.01, ∗∗∗p < 0.001, ∗∗∗∗p < 0.0001).
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    Image Search Results


    Age-associated hippocampal stiffening and its replication via laminin-modified hydrogels . (a) The strategy of in vivo EdU labeling and marker immunostaining for analyzing NSC proliferation and neurogenesis across various mouse age groups. ( b ) Co-staining of GFAP, EdU, and DCX in the hippocampus across different ages. Representative images showing a reduction in active radial glia-like stem cells and neuroblasts/newborn neurons with increasing age. GFAP (green), DCX (red), EdU (gray), and DAPI (blue). Scale bar, 100 μm. ( c-e ) Quantification of active radial glia-like stem cells (GFAP + EdU + ) ( c ), neuroblasts (DCX + EdU + ) ( d ), and newborn neurons (DCX + ) (e) in the SGZ area as in ( b ). n = 3 or 4 mice per group. ( f ) Schematic showing the measurement of hippocampal tissue stiffness using the Pavone nanoindenter and the design of hyaluronic acid (HA)–laminin hydrogels with tunable stiffness to mimic hippocampal mechanical properties at different postnatal ages. Soft, medium, and stiff hydrogels correspond to the mechanical characteristics of hippocampal tissues from 1-, 4-, and 12-week-old mice, respectively. ( g ) Representative images of the dentate gyrus in mouse brain slices across age groups, captured under Pavone nanoindentation microscopy. The SGZ regions measured by the nanoindentation probe are demarcated by paired colorful dashed lines. ( h ) Quantification of Young’s modulus in the hippocampal SGZ region of mice at different ages using Pavone nanoindentation. Brain slices were obtained from four mice per age group. Measurements were taken from n = 227 spots (1 week), n = 149 spots (4 weeks), n = 241 spots (8 weeks), n = 157 spots (12 weeks). (i ) Schematic illustration of the synthesis of HA@HA and HA@HA–Laminin hydrogels. Hyaluronic acid (HA) was first crosslinked with adipic dihydrazide (ADH) using EDC/HCl activation under acidic conditions (pH 3–4) to form HA@HA. Subsequently, laminin was conjugated to the HA network via CDI-mediated coupling to generate HA@HA–Laminin hydrogels. ( j ) Quantification of Young’s modulus of Soft, Medium, and Stiff HA-laminin hydrogels using the same Pavone nanoindentation used for tissue (Soft hydrogel, n = 44 spots; Medium hydrogel, n = 37 spots; Stiff hydrogel, n = 29 spots). ( k ) Immunostaining of YAP1 protein shows the subcellular localization of YAP1 in NSCs cultured on HA-laminin hydrogels of varying stiffness. Dashed lines indicate representative cells with YAP1 predominantly in the cytoplasm (indicated by arrowheads), while solid lines represent cells with YAP1 primarily in the nucleus (indicated by arrows). Scale bar, 20 μm. ( l ) Quantification of YAP1 distribution in NSCs as in ( k ) (n = 4 wells). For all quantification data, statistical significance was determined using one-way ANOVA with Tukey’s multiple comparison tests. Data are presented as mean ± SD (∗∗p < 0.01, ∗∗∗p < 0.001, ∗∗∗∗p < 0.0001).

    Journal: Materials Today Bio

    Article Title: Age-mimicking hydrogel stiffness recapitulates the mechanical niche of the hippocampus to regulate neural stem cell senescence

    doi: 10.1016/j.mtbio.2026.102985

    Figure Lengend Snippet: Age-associated hippocampal stiffening and its replication via laminin-modified hydrogels . (a) The strategy of in vivo EdU labeling and marker immunostaining for analyzing NSC proliferation and neurogenesis across various mouse age groups. ( b ) Co-staining of GFAP, EdU, and DCX in the hippocampus across different ages. Representative images showing a reduction in active radial glia-like stem cells and neuroblasts/newborn neurons with increasing age. GFAP (green), DCX (red), EdU (gray), and DAPI (blue). Scale bar, 100 μm. ( c-e ) Quantification of active radial glia-like stem cells (GFAP + EdU + ) ( c ), neuroblasts (DCX + EdU + ) ( d ), and newborn neurons (DCX + ) (e) in the SGZ area as in ( b ). n = 3 or 4 mice per group. ( f ) Schematic showing the measurement of hippocampal tissue stiffness using the Pavone nanoindenter and the design of hyaluronic acid (HA)–laminin hydrogels with tunable stiffness to mimic hippocampal mechanical properties at different postnatal ages. Soft, medium, and stiff hydrogels correspond to the mechanical characteristics of hippocampal tissues from 1-, 4-, and 12-week-old mice, respectively. ( g ) Representative images of the dentate gyrus in mouse brain slices across age groups, captured under Pavone nanoindentation microscopy. The SGZ regions measured by the nanoindentation probe are demarcated by paired colorful dashed lines. ( h ) Quantification of Young’s modulus in the hippocampal SGZ region of mice at different ages using Pavone nanoindentation. Brain slices were obtained from four mice per age group. Measurements were taken from n = 227 spots (1 week), n = 149 spots (4 weeks), n = 241 spots (8 weeks), n = 157 spots (12 weeks). (i ) Schematic illustration of the synthesis of HA@HA and HA@HA–Laminin hydrogels. Hyaluronic acid (HA) was first crosslinked with adipic dihydrazide (ADH) using EDC/HCl activation under acidic conditions (pH 3–4) to form HA@HA. Subsequently, laminin was conjugated to the HA network via CDI-mediated coupling to generate HA@HA–Laminin hydrogels. ( j ) Quantification of Young’s modulus of Soft, Medium, and Stiff HA-laminin hydrogels using the same Pavone nanoindentation used for tissue (Soft hydrogel, n = 44 spots; Medium hydrogel, n = 37 spots; Stiff hydrogel, n = 29 spots). ( k ) Immunostaining of YAP1 protein shows the subcellular localization of YAP1 in NSCs cultured on HA-laminin hydrogels of varying stiffness. Dashed lines indicate representative cells with YAP1 predominantly in the cytoplasm (indicated by arrowheads), while solid lines represent cells with YAP1 primarily in the nucleus (indicated by arrows). Scale bar, 20 μm. ( l ) Quantification of YAP1 distribution in NSCs as in ( k ) (n = 4 wells). For all quantification data, statistical significance was determined using one-way ANOVA with Tukey’s multiple comparison tests. Data are presented as mean ± SD (∗∗p < 0.01, ∗∗∗p < 0.001, ∗∗∗∗p < 0.0001).

    Article Snippet: Primary antibodies were diluted to specific concentrations in an antibody dilution buffer (5% NDS, 0.2% Triton X-100): Map2 (CST, 4542s, 1:500), GFAP (Sigma, AB5541, 1:1000), GFAP (Invitrogen, 13-0300, 1:1000), LaminB1 (Abcam, ab229025, 1:1000), Yap1 (Proteintech,13584-1-AP, 1:500), Nestin(BD Pharmingen, 611658, 1:1000), Tuj1 (Abcam, AB78078, 1:1000) and Piezo1 (Proteintech, 15939-1-AP, 1:500).

    Techniques: Modification, In Vivo, Labeling, Marker, Immunostaining, Staining, Microscopy, Activation Assay, Cell Culture, Comparison