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rabbit anti ph3  (Cell Signaling Technology Inc)


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    Structured Review

    Cell Signaling Technology Inc rabbit anti ph3
    Rabbit Anti Ph3, supplied by Cell Signaling Technology Inc, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/rabbit+anti+ph3/pm41888776-105-12-14
    Average 86 stars, based on 1 article reviews
    rabbit anti ph3 - by Bioz Stars, 2026-09
    86/100 stars

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    other:

    Article Title: Toll signaling controls stem cell proliferation in intestinal regeneration and tumorigenesis
    Article Snippet: Primary antibodies used were: rabbit anti-GFP (1:3000, Proteintech, 50430-2-AP), rabbit anti-PH3 (1:800, Cell Signaling Technology, 9701 L), rabbit anti-p-Akt (1:800, Cell Signaling Technology, 4060S), mouse anti-cactus (1:100, Developmental Studies Hybridoma Bank, 3H12), rabbit anti-DCP1 (1:400, Cell Signaling Technology, 9578S), and mouse anti-dorsal (1:100, Developmental Studies Hybridoma Bank, 7A4).

    Article Title: Developmentally programmed nuclear pore complex replacement enables oocyte specification
    Article Snippet: The primary antibodies used were rabbit anti-Elys (1:1000; Capelson laboratory), anti-Nup153 (1:500; Capelson laboratory), rabbit anti-Nup98 (1:1000; Capelson laboratory), guinea pig anti-Rbfox1 (the Buszczak Laboratory), mouse anti-1B1 (1:20; Developmental Studies Hybridoma Bank [DSHB]), rabbit anti-Vasa (1:1000; Rangan laboratory, Flora et al., 2018), chicken anti-Vasa (1:1000; Rangan laboratory, Flora et al., 2018), rabbit anti-GFP (1:2000; Abcam ab6556), chicken anti-GFP (1:2000; Abcam ab13970), mouse anti-Orb (1:30; DSHB; 4H8), mouse anti-NPC (1:150; BioLegend AB_2565026), rabbit anti-blanks (1:1000, the vSontheimer laboratory), rabbit anti-PH3 (1:200, Cell Signaling 9701), mouse anti-lamin B (1:5, DSHB, ADL195), mouse anti-C(3)G (1:500, the Hawley laboratory).

    Article Title: Control of mitochondrial dynamics by the metabolic regulator dPGC1 limits Yorkie-induced oncogenic growth in Drosophila.
    Article Snippet: The following primary antibodies were used: mouse anti-MMP1 (Developmental Studies Hybridoma Bank, 3A6B4/5H7B11/3B8D12 mixed in equal volumes), rabbit anti-pH2Av (Rockland, 600-401-914, dilution 1:1000), rabbit anti-PH3 (Cell Signal Technology, 9701, dilution 1:100), and rabbit anti-Cyclin E (Santa Cruz, 33748, dilution 1:100).

    Article Title: Evidence that injury can cause Drosophila gut differentiated, polyploid enterocytes to be recruited as stem cells via paligenosis
    Article Snippet: The following antibodies were used: rabbit anti-PH3 (Cell Signaling, 1:1000), mouse anti-GFP (DHSB, 1:200), mouse anti-Cut (1:100, DHSB), mouse anti-pros (1:200, DHSB), mouse anti-lamin DmO (1:200, DHSB), Rabbit anti-GFP (1:500-1000, Abcam), chicken anti-GFP (1:1,000, Aves #GFP-1020) as primary antibodies and Alexa488- or Alexa594- or Alexa647-conjugated secondary antibodies (Molecular Probes).

    Article Title: Toll signaling controls stem cell proliferation in intestinal regeneration and tumorigenesis.
    Article Snippet: Primary antibodies used were: rabbit anti-GFP (1:3000, Proteintech, 50430-2-AP), rabbit anti-PH3 (1:800, Cell Signaling Technology, 9701 L), rabbit anti-p-Akt (1:800, Cell Signaling Technology, 4060S), mouse anti-cactus (1:100, Developmental Studies Hybridoma Bank, 3H12), rabbit anti-DCP1 (1:400, Cell Signaling Technology, 9578S), and mouse anti-dorsal (1:100, Developmental Studies Hybridoma Bank, 7A4).

    Next-Generation Sequencing:

    Article Title: CEP170 as a novel molecular link between centrosomal function and cerebral cortical development.
    Article Snippet: .. The antibodies used were: rabbit anti-CUX1 (Santa Cruz,1:200), rabbit anti-KI67 (Millipore, 1:600), rabbit anti-PH3 (cell signal, 1:500), rabbit anti-NeuN (Millipore, 1:500), anti-PAX6 (BioLegend, 1:100), anti-DCX (Abcam, 1:500), anti-TUJ1 (Abcam, 1:500), and anti-SOX2 (Millipore, 1:500) diluted in PBS-T containing 5% NGS and 5% BSA for 2 days. .. After washing out the primary antibody, anti-mouse Alexa Fluor 546 (Invitrogen, 1:500) or antirabbit Alexa Fluor 647 (Invitrogen, 1:500) were used as the secondary antibodies.

    Expressing:

    Article Title: The Drosophila proventriculus lacks stem cells but compensates for age-related cell loss via endoreplication-mediated cell growth.
    Article Snippet: Stained tissues were mounted in Vectashield (Vector Labs), except for Alexa647-labeled tissues which were mounted in Prolong Gold (Thermo Fisher Scientific). .. Rabbit anti-GFP AlexaFluor488 conjugate (Molecular Probes, 1:300) was used to visualize GFP expression, Wg expression was detected using mouse anti-Wg (Developmental Studies Hybridoma Bank 4D4, 1:100) and phospho-Histone 3 was detected using rabbit anti-PH3 (Cell Signaling Technologies 9701S, 1:500). ..

    Article Title: The Drosophila proventriculus lacks stem cells but compensates for age-related cell loss via endoreplication-mediated cell growth
    Article Snippet: Stained tissues were mounted in Vectashield (Vector Labs), except for Alexa647-labeled tissues, which were mounted in Prolong Gold (Thermo Fisher Scientific). .. Rabbit anti-GFP AlexaFluor488 conjugate (Molecular Probes, 1:300) was used to visualize GFP expression, Wg expression was detected using mouse anti-Wg (Developmental Studies Hybridoma Bank 4D4, 1:100) and phospho-Histone 3 was detected using rabbit anti-PH3 (Cell Signaling Technologies 9701S, 1:500). ..



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    (A) Schematic representation of the transgenes used to generate the control (Ac-G) and the acinar-derived pancreatic tumour model (Ac-K). (B-E) 5-day zebrafish larvae expressing the protein GFP ( B,D ) or GFP-KRAS G12D ( C,E ) in the acinar cells of the pancreas. White asterisk indicates gut autofluorescence. White arrows indicate the fluorescent heart, marked by the cmlc2:GFP reporter. Panels D and E show magnified views of the pancreata outlined with white dashed lines in panels B and C. i: principal islet, a: acinar cells. Scale bars : 200 µm. (F-G) Representative photographs of male zebrafish showing a marked abdominal protrusion, indicative of tumour presence ( G, white arrow), compared to a control male ( F ). Scale bars: 2mm. (H-I) Dissected digestive systems of an adult control zebrafish ( H ), showing a healthy pancreas (P, white dashes) or of an Ac-K p53 m/m fish ( I ) with a pancreatic tumour (T, yellow dashes). L: liver, G: gut, S: spleen, P: pancreas, T: tumour. Scale bars: 2mm. (J) Tumour incidence across various TP53 backgrounds. K-L: Hematoxylin and eosin (HE) staining of transversal sections of control pancreas (K) and Ac-K p53 m/m tumour (L) with close-up regions (K’,L’) outlined by black boxes. M-N : Immunofluorescence staining <t>with</t> <t>phospho-histone</t> <t>H3</t> <t>(pH3)</t> antibody on control (M ) and tumoral tissue sections (N). Control and tumoral pancreatic tissues are surrounded by green dashes. L; Liver, G; gut, d; extrapancreatic duct, i; principal islet, a; acinar cells. Scale bars: 200 µm. O : Quantification of pH3-positive cells in four Ac-K p53 m/m tumours compared to six control pancreas (3 p53 +/+ ; 1 p53 +/m , 2 p53 m/m ). The percentage of pH3 positive cells was calculated as the ratio of the pH3-positive area to the DAPI-positive area, based on the mean of two independent sections per fish. Each point represents an individual fish. Data are presented as mean ± SD; **P = 0.0095, determined using the Mann–Whitney test.
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    Cell Signaling Technology Inc rabbit anti phospho histone h3 ph3
    (A) Schematic representation of the transgenes used to generate the control (Ac-G) and the acinar-derived pancreatic tumour model (Ac-K). (B-E) 5-day zebrafish larvae expressing the protein GFP ( B,D ) or GFP-KRAS G12D ( C,E ) in the acinar cells of the pancreas. White asterisk indicates gut autofluorescence. White arrows indicate the fluorescent heart, marked by the cmlc2:GFP reporter. Panels D and E show magnified views of the pancreata outlined with white dashed lines in panels B and C. i: principal islet, a: acinar cells. Scale bars : 200 µm. (F-G) Representative photographs of male zebrafish showing a marked abdominal protrusion, indicative of tumour presence ( G, white arrow), compared to a control male ( F ). Scale bars: 2mm. (H-I) Dissected digestive systems of an adult control zebrafish ( H ), showing a healthy pancreas (P, white dashes) or of an Ac-K p53 m/m fish ( I ) with a pancreatic tumour (T, yellow dashes). L: liver, G: gut, S: spleen, P: pancreas, T: tumour. Scale bars: 2mm. (J) Tumour incidence across various TP53 backgrounds. K-L: Hematoxylin and eosin (HE) staining of transversal sections of control pancreas (K) and Ac-K p53 m/m tumour (L) with close-up regions (K’,L’) outlined by black boxes. M-N : Immunofluorescence staining <t>with</t> <t>phospho-histone</t> <t>H3</t> <t>(pH3)</t> antibody on control (M ) and tumoral tissue sections (N). Control and tumoral pancreatic tissues are surrounded by green dashes. L; Liver, G; gut, d; extrapancreatic duct, i; principal islet, a; acinar cells. Scale bars: 200 µm. O : Quantification of pH3-positive cells in four Ac-K p53 m/m tumours compared to six control pancreas (3 p53 +/+ ; 1 p53 +/m , 2 p53 m/m ). The percentage of pH3 positive cells was calculated as the ratio of the pH3-positive area to the DAPI-positive area, based on the mean of two independent sections per fish. Each point represents an individual fish. Data are presented as mean ± SD; **P = 0.0095, determined using the Mann–Whitney test.
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    Cell Signaling Technology Inc rabbit anti ph3 s10
    (A) Comparison of Mad2 localization in control prometaphase and anaphase cells and mitotic fused cells undergoing premature mitotic exit. Mad2 can be detected at some kinetochores despite the presence of nuclear envelope membranes. (B) Time lapse of cerulean-Cyclin B1 transiently transfected in LLC-PK1 cells expressing H2B-mCherry after cell-cell fusion. Cyclin B1 was not degraded during induced mitotic exit of the mitotic cell. (C) Analysis of <t>pH3-s10</t> in fixed prometaphase control cells and at different time points after cell-cell fusion. At 30 minutes after cell-cell fusion there is a mixed population of cells with high (second panel) and low (third panel) pH3-s10 levels, despite the presence of nuclear envelope membranes. At 60 minutes after cell-cell fusion, most cells show very low levels of pH3-s10. Magenta squares show magnification of nuclear envelope membranes around chromosomes. (D) Quantification of pH3-s10 in telophase control cells and at several time points after cell-cell fusion. Control, n=19 cells; 20 min, n=20 cells; 30 min, n=22 cells; 40 min, n=27 cells; 50 min, n=32 cells and 60 min, n=26 cells. Note that only 50 and 60 minutes after cell-cell fusion the levels of pH3-s10 become similar to control levels. Statistics, non-parametric Mann-Whitney test. Time is h:min. Scale bar is 10μm.
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    Image Search Results


    (A) Schematic representation of the transgenes used to generate the control (Ac-G) and the acinar-derived pancreatic tumour model (Ac-K). (B-E) 5-day zebrafish larvae expressing the protein GFP ( B,D ) or GFP-KRAS G12D ( C,E ) in the acinar cells of the pancreas. White asterisk indicates gut autofluorescence. White arrows indicate the fluorescent heart, marked by the cmlc2:GFP reporter. Panels D and E show magnified views of the pancreata outlined with white dashed lines in panels B and C. i: principal islet, a: acinar cells. Scale bars : 200 µm. (F-G) Representative photographs of male zebrafish showing a marked abdominal protrusion, indicative of tumour presence ( G, white arrow), compared to a control male ( F ). Scale bars: 2mm. (H-I) Dissected digestive systems of an adult control zebrafish ( H ), showing a healthy pancreas (P, white dashes) or of an Ac-K p53 m/m fish ( I ) with a pancreatic tumour (T, yellow dashes). L: liver, G: gut, S: spleen, P: pancreas, T: tumour. Scale bars: 2mm. (J) Tumour incidence across various TP53 backgrounds. K-L: Hematoxylin and eosin (HE) staining of transversal sections of control pancreas (K) and Ac-K p53 m/m tumour (L) with close-up regions (K’,L’) outlined by black boxes. M-N : Immunofluorescence staining with phospho-histone H3 (pH3) antibody on control (M ) and tumoral tissue sections (N). Control and tumoral pancreatic tissues are surrounded by green dashes. L; Liver, G; gut, d; extrapancreatic duct, i; principal islet, a; acinar cells. Scale bars: 200 µm. O : Quantification of pH3-positive cells in four Ac-K p53 m/m tumours compared to six control pancreas (3 p53 +/+ ; 1 p53 +/m , 2 p53 m/m ). The percentage of pH3 positive cells was calculated as the ratio of the pH3-positive area to the DAPI-positive area, based on the mean of two independent sections per fish. Each point represents an individual fish. Data are presented as mean ± SD; **P = 0.0095, determined using the Mann–Whitney test.

    Journal: bioRxiv

    Article Title: Single-Cell Cross-Species Profiling identifies Conserved Transcriptional Networks in Early Pancreatic Tumourigenesis

    doi: 10.64898/2026.03.03.708839

    Figure Lengend Snippet: (A) Schematic representation of the transgenes used to generate the control (Ac-G) and the acinar-derived pancreatic tumour model (Ac-K). (B-E) 5-day zebrafish larvae expressing the protein GFP ( B,D ) or GFP-KRAS G12D ( C,E ) in the acinar cells of the pancreas. White asterisk indicates gut autofluorescence. White arrows indicate the fluorescent heart, marked by the cmlc2:GFP reporter. Panels D and E show magnified views of the pancreata outlined with white dashed lines in panels B and C. i: principal islet, a: acinar cells. Scale bars : 200 µm. (F-G) Representative photographs of male zebrafish showing a marked abdominal protrusion, indicative of tumour presence ( G, white arrow), compared to a control male ( F ). Scale bars: 2mm. (H-I) Dissected digestive systems of an adult control zebrafish ( H ), showing a healthy pancreas (P, white dashes) or of an Ac-K p53 m/m fish ( I ) with a pancreatic tumour (T, yellow dashes). L: liver, G: gut, S: spleen, P: pancreas, T: tumour. Scale bars: 2mm. (J) Tumour incidence across various TP53 backgrounds. K-L: Hematoxylin and eosin (HE) staining of transversal sections of control pancreas (K) and Ac-K p53 m/m tumour (L) with close-up regions (K’,L’) outlined by black boxes. M-N : Immunofluorescence staining with phospho-histone H3 (pH3) antibody on control (M ) and tumoral tissue sections (N). Control and tumoral pancreatic tissues are surrounded by green dashes. L; Liver, G; gut, d; extrapancreatic duct, i; principal islet, a; acinar cells. Scale bars: 200 µm. O : Quantification of pH3-positive cells in four Ac-K p53 m/m tumours compared to six control pancreas (3 p53 +/+ ; 1 p53 +/m , 2 p53 m/m ). The percentage of pH3 positive cells was calculated as the ratio of the pH3-positive area to the DAPI-positive area, based on the mean of two independent sections per fish. Each point represents an individual fish. Data are presented as mean ± SD; **P = 0.0095, determined using the Mann–Whitney test.

    Article Snippet: Immunofluorescence staining was performed with anti-GFP (rabbit, Cell Signalling #2956S 1:200), anti-Caveolin-1(rabbit, Cell Signalling #3238 1:250), anti-α-Amylase (rabbit, Cell Signalling #3796 1:200), anti-Phospho-Histone H3 (pH3) antibodies (rabbit, Cell Signalling #3377T 1:200) overnight at 4°C followed by rabbit HRP SignalStain Boost (Cell Signalling #8114), and Tyramide-FITC, Tyramide-Cy3 (TSA Plus Cyanine 3 System #NEL744001KT Akoya BioSciences) or Tyramide-Cy5 substrate (TSA Plus Cyanine 5 System #NEL745001KT Akoya BioSciences).

    Techniques: Control, Derivative Assay, Expressing, Staining, Immunofluorescence, MANN-WHITNEY

    (A) Comparison of Mad2 localization in control prometaphase and anaphase cells and mitotic fused cells undergoing premature mitotic exit. Mad2 can be detected at some kinetochores despite the presence of nuclear envelope membranes. (B) Time lapse of cerulean-Cyclin B1 transiently transfected in LLC-PK1 cells expressing H2B-mCherry after cell-cell fusion. Cyclin B1 was not degraded during induced mitotic exit of the mitotic cell. (C) Analysis of pH3-s10 in fixed prometaphase control cells and at different time points after cell-cell fusion. At 30 minutes after cell-cell fusion there is a mixed population of cells with high (second panel) and low (third panel) pH3-s10 levels, despite the presence of nuclear envelope membranes. At 60 minutes after cell-cell fusion, most cells show very low levels of pH3-s10. Magenta squares show magnification of nuclear envelope membranes around chromosomes. (D) Quantification of pH3-s10 in telophase control cells and at several time points after cell-cell fusion. Control, n=19 cells; 20 min, n=20 cells; 30 min, n=22 cells; 40 min, n=27 cells; 50 min, n=32 cells and 60 min, n=26 cells. Note that only 50 and 60 minutes after cell-cell fusion the levels of pH3-s10 become similar to control levels. Statistics, non-parametric Mann-Whitney test. Time is h:min. Scale bar is 10μm.

    Journal: bioRxiv

    Article Title: Live dynamics of induced cell-cell fusion between mitotic and interphasic cells

    doi: 10.64898/2026.01.27.700572

    Figure Lengend Snippet: (A) Comparison of Mad2 localization in control prometaphase and anaphase cells and mitotic fused cells undergoing premature mitotic exit. Mad2 can be detected at some kinetochores despite the presence of nuclear envelope membranes. (B) Time lapse of cerulean-Cyclin B1 transiently transfected in LLC-PK1 cells expressing H2B-mCherry after cell-cell fusion. Cyclin B1 was not degraded during induced mitotic exit of the mitotic cell. (C) Analysis of pH3-s10 in fixed prometaphase control cells and at different time points after cell-cell fusion. At 30 minutes after cell-cell fusion there is a mixed population of cells with high (second panel) and low (third panel) pH3-s10 levels, despite the presence of nuclear envelope membranes. At 60 minutes after cell-cell fusion, most cells show very low levels of pH3-s10. Magenta squares show magnification of nuclear envelope membranes around chromosomes. (D) Quantification of pH3-s10 in telophase control cells and at several time points after cell-cell fusion. Control, n=19 cells; 20 min, n=20 cells; 30 min, n=22 cells; 40 min, n=27 cells; 50 min, n=32 cells and 60 min, n=26 cells. Note that only 50 and 60 minutes after cell-cell fusion the levels of pH3-s10 become similar to control levels. Statistics, non-parametric Mann-Whitney test. Time is h:min. Scale bar is 10μm.

    Article Snippet: Primary mouse mab414 (1:1000; ab24609, Abcam), mouse anti-α-Tubulin (1:500, DM1A, sigma), mouse anti-Mad2 (1:100, sc-65492, Santa Cruz) and rabbit anti-pH3-s10 (1:200, 3377, Cell Signaling).

    Techniques: Comparison, Control, Transfection, Expressing, MANN-WHITNEY