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dapi mounting media  (SouthernBiotech)


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    Structured Review

    SouthernBiotech dapi mounting media
    Dapi Mounting Media, supplied by SouthernBiotech, used in various techniques. Bioz Stars score: 96/100, based on 4680 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/fluoromount+g+mounting+media+with+dapi/DAPI+Fluoromount-G/bio_rxiv__64898__2026__03__16__711716-150-7-10
    Average 96 stars, based on 4680 article reviews
    dapi mounting media - by Bioz Stars, 2026-09
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    Related Articles

    Microscopy:

    Article Title: K v 1.1 preserves the neural stem cell pool and facilitates neuron maturation during adult hippocampal neurogenesis
    Article Snippet: .. After 3 × 10 min PBS washes, they were mounted using Fluoromount G mounting media with DAPI (Southern Biotech) on Superfrost Plus microscope slides (Fisher Scientific). ..

    Incubation:

    Article Title: Characterization of monoamine oxidase-B (MAO-B) as a biomarker of reactive astrogliosis in Alzheimer’s disease and related dementias
    Article Snippet: .. On the following day, sections were washed with TBS before incubation with secondary antibodies at 1:200 in 5%NDS/TBS for 2 h at RT, washed with TBS, and counterstained with Thioflavin-S (ThioS, Sigma, T1892) by immersion in 0.05% ThioS in 50% ethanol for 8 min, followed by differentiation with 80% ethanol for 10 s. Finally, sections were incubated with Autofluorescence Eliminator Reagent (Millipore, 2160) for 5 min at RT to quench endogenous tissue autofluorescence, cleared with serial 70% ethanol washes of 20 s each, rehydrated in TBS, and coverslipped with Fluoromount-G mounting media with DAPI (Southern Biotech, 0100-01). .. The following primary antibodies were used: rabbit anti-MAO-B monoclonal antibody (raised against amino acids 1-100 of human MAO-B, clone EPR7102, Abcam, ab133270, 1:500), mouse anti-Aβ monoclonal antibody (clone 6E10, BioLegend, 803003, 1:100), mouse anti-ALDH1L1 monoclonal antibody (clone N103/39, Millipore, MABN495, 1:500), mouse anti-CD31 monoclonal antibody (clone 89C2, Cell Signaling Technology, #3528, 1:100), mouse anti-GFAP monoclonal antibody (clone G-A-5, Sigma, G3893, 1:1000), goat anti-IBA1 polyclonal antibody (Abcam, ab107159, 1:100), mouse anti-microtubule-associated protein 2 (MAP2) monoclonal antibody (clone SMI-52, Biolegend, 801801, 1:250), mouse anti-myelin basic protein (MBP) monoclonal antibody (clone 1, Millipore, MAB382, 1:500), mouse anti-platelet derived growth factor receptor-β (PDGFRβ) monoclonal antibody (clone D-6, Santa Cruz Biotechnology, sc-374573, 1:200).

    Article Title: Characterization of the 18 kDa translocator protein (TSPO) expression in post-mortem normal and Alzheimer's disease brains.
    Article Snippet: .. On the next day, sections were washed thoroughly with TBS and incubated in secondary antibody solution consisting of donkey anti-rabbit Cy3-conjugated antibody (Jackson ImmunoResearch, 23225, 1:200) in 5% NDS in TBS for 2 h at RT, washed in TBS, covered with Fluoromount-G mounting media with DAPI (Southern Biotech, 0100-01) and the coverslips sealed with nail polish. .. Selected sections were subjected to double fluorescent immunohistochemistry with the above rabbit anti-PBR monoclonal primary antibody and either a goat anti-IBA1 polyclonal antibody (Abcam, ab107159, 1:100), a mouse anti-cluster differentiation 68 (CD68) monoclonal antibody (clone KP-1, Agilent Dako, M0814, 1:50), a mouse anti-glial fibrillary acidic protein (GFAP) monoclonal antibody (clone G-A-5, Sigma, G3893, 1:1000), a mouse anti-cluster differentiation 31 (CD31, also known as PECAM-1) monoclonal antibody (clone 89C2, Cell Signaling Technology, 3528, 1:100), a mouse anti-smooth muscle actin (SMA) monoclonal antibody (clone 1A4, Agilent Dako, M0851, 1:500), or a mouse anti-HuC/ HuD monoclonal antibody (clone 15A7.1, Millipore, MABN153, 1:100).

    Article Title: Characterization of monoamine oxidase-B (MAO-B) as a biomarker of reactive astrogliosis in Alzheimer's disease and related dementias.
    Article Snippet: .. On the following day, sections were washed with TBS before incubation with secondary antibodies at 1:200 in 5%NDS/TBS for 2 h at RT, washed with TBS, and counterstained with Thioflavin-S (ThioS, Sigma, T1892) by immersion in 0.05% ThioS in 50% ethanol for 8 min, followed by differentiation with 80% ethanol for 10 s. Finally, sections were incubated with Autofluorescence Eliminator Reagent (Millipore, 2160) for 5 min at RT to quench endogenous tissue autofluorescence, cleared with serial 70% ethanol washes of 20 s each, rehydrated in TBS, and coverslipped with Fluoromount-G mounting media with DAPI (Southern Biotech, 0100-01). .. The following primary antibodies were used: rabbit anti-MAO-B monoclonal antibody (raised against amino acids 1-100 of human MAO-B, clone EPR7102, Abcam, ab133270, 1:500), mouse anti-Aβ monoclonal antibody (clone 6E10, BioLegend, 803003, 1:100), mouse anti-ALDH1L1 monoclonal antibody (clone N103/39, Millipore, MABN495, 1:500), mouse anti-CD31 monoclonal antibody (clone 89C2, Cell Signaling Technology, #3528, 1:100), mouse anti-GFAP monoclonal antibody (clone G-A-5, Sigma, G3893, 1:1000), goat anti-IBA1 polyclonal antibody (Abcam, ab107159, 1:100), mouse anti-microtubule-associated protein 2 (MAP2) monoclonal antibody (clone SMI52, Biolegend, 801801, 1:250), mouse anti-myelin basic protein (MBP) monoclonal antibody (clone 1, Millipore, MAB382, 1:500), mouse anti-platelet derived growth factor receptor-β (PDGFRβ) monoclonal antibody (clone D-6, Santa Cruz Biotechnology, sc-374573, 1:200).



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    SouthernBiotech dapi mounting media
    Dapi Mounting Media, supplied by SouthernBiotech, 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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    SouthernBiotech dapi fluoromount g mounting media
    (a) Each dot represents a tardigrade embryo that was fixed along a timeline from 0 to 125 minutes post-laying (mpl). Dots to the left of zero on the timeline represent those that were cut out of gravid adults directly into fixative solution. Embryos were then stained with <t>DAPI</t> and imaged using a scanning confocal microscope. During analysis, embryos were categorized into one of five groups depending on the number and orientation of visible chromosomes. Uncategorized embryos are shown in gray. Representative images of DAPI staining within embryos, one for each category, are shown. The arrow points to a polar body. Scale bars are 5um. (b) Live embryos were imaged every 5min with Differential Interference Contrast (DIC), and the relative timing of when they were laid was recorded. Each line indicates the timeline of a single embryo progressing through meiosis, starting from the time it was laid. Orange squares indicate the first time DNA migrated to the periphery, and green diamonds indicate the second time DNA migrated to the periphery. Blue circles indicate the first time a polar body was visible (characterized by a membrane surrounding DNA at the periphery). Only embryos where a polar body was ultimately visible were included. Finally, images of a single representative embryo are shown over time as it proceeds through meiosis, with symbols marking the events corresponding to the above timelines. The arrow points to a polar body. Scale bars are 5um. (c) Model of modified meiosis cytology in H. exemplaris . Inferred homologous chromosomes are differentially colored, purple and orange. Light gray surrounding the chromosomes represents the area visible by DIC imaging. Meiosis I metaphase and anaphase occur but do not conclude with polar body cytokinesis. Meiosis II then proceeds as normal, resulting in a single polar body. Alt text: Timelines ranging from 0 to 130 minutes post-laying, symbols depicting replicates of imaged H. exemplaris embryos, and representative images for different phases of modified meiosis are shown for each of two microscopy experiments (panels a and b).
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    SouthernBiotech fluoromount g mounting media with dapi
    (A) Vitamin A deprivation model. Pregnant dams were fed vitamin A–deficient (Vit A–) or vitamin A–replete (Vit A+) diets during gestation. Offspring were maintained on the maternal diet for at least 8 weeks. (B) Single cell RNA sequencing (scRNA-seq) was performed on a single cell suspension from the mouse small intestine. Live cells were bar-coded and sequenced, and cells annotated as epithelial cells were analyzed and are displayed as a two-dimensional reduction plot (UMAP). Both Vit A+ and Vit A– cells are plotted (n=3 mice per group). (C) Distribution of epithelial cell subsets from Vit A+ and Vit A– mice (n=3) projected on the same UMAP as in (B). (D) Heatmap of average normalized expression of known vitamin A-responsive genes from the scRNA-seq analysis of IECs. (E) Volcano plot of vitamin A-dependent changes in gene expression in IECs analyzed by scRNA-seq. Reg3b and Reg3g are highlighted in red. (F) Density plots of Reg3b and Reg3g expression in IECs analyzed by scRNA-seq. (G) The gut microbiota induces expression of the antibacterial proteins REG3β and REG3γ. Microbial molecular patterns activate a dendritic cell–ILC3 signaling relay that drives IL-22 production, which induces Reg3b and Reg3g expression in IECs. (H) qPCR analysis of Reg3g and Reg3b transcript abundance in small intestines from conventional mice fed Vit A+ (n=12) and Vit A– (n=14) diets, and germ-free mice fed a Vit A+ diet (n=9). Mice were from three independent litters. Each data point represents one mouse. (I) Immunofluorescence microscopy of REG3G in the distal small intestine of Vit A+ or Vit A– mice. Sections were stained for REG3G (red) and counterstained with <t>DAPI</t> (blue). Scale bar, 100 μm. Images are representative of three mice per group. (J) Mean fluorescence intensities of at least 65 villi were determined across three mice in each dietary group. Vit A+, vitamin A+; Vit A–, vitamin A–; wk, weeks; scRNA-seq, single cell RNA sequencing; IEC, intestinal epithelial cell; UMAP, Uniform Manifold Approximation and Projection; qPCR, quantitative real-time PCR; REG3B, regenerating islet-derived protein 3β; REG3G, regenerating islet-derived protein 3γ; Conv, conventional; GF, germ-free. Means ± SEM are plotted; ***p < 0.001 by Mann-Whitney test. See also .
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    SouthernBiotech dapi mounting media 156
    (A) Vitamin A deprivation model. Pregnant dams were fed vitamin A–deficient (Vit A–) or vitamin A–replete (Vit A+) diets during gestation. Offspring were maintained on the maternal diet for at least 8 weeks. (B) Single cell RNA sequencing (scRNA-seq) was performed on a single cell suspension from the mouse small intestine. Live cells were bar-coded and sequenced, and cells annotated as epithelial cells were analyzed and are displayed as a two-dimensional reduction plot (UMAP). Both Vit A+ and Vit A– cells are plotted (n=3 mice per group). (C) Distribution of epithelial cell subsets from Vit A+ and Vit A– mice (n=3) projected on the same UMAP as in (B). (D) Heatmap of average normalized expression of known vitamin A-responsive genes from the scRNA-seq analysis of IECs. (E) Volcano plot of vitamin A-dependent changes in gene expression in IECs analyzed by scRNA-seq. Reg3b and Reg3g are highlighted in red. (F) Density plots of Reg3b and Reg3g expression in IECs analyzed by scRNA-seq. (G) The gut microbiota induces expression of the antibacterial proteins REG3β and REG3γ. Microbial molecular patterns activate a dendritic cell–ILC3 signaling relay that drives IL-22 production, which induces Reg3b and Reg3g expression in IECs. (H) qPCR analysis of Reg3g and Reg3b transcript abundance in small intestines from conventional mice fed Vit A+ (n=12) and Vit A– (n=14) diets, and germ-free mice fed a Vit A+ diet (n=9). Mice were from three independent litters. Each data point represents one mouse. (I) Immunofluorescence microscopy of REG3G in the distal small intestine of Vit A+ or Vit A– mice. Sections were stained for REG3G (red) and counterstained with <t>DAPI</t> (blue). Scale bar, 100 μm. Images are representative of three mice per group. (J) Mean fluorescence intensities of at least 65 villi were determined across three mice in each dietary group. Vit A+, vitamin A+; Vit A–, vitamin A–; wk, weeks; scRNA-seq, single cell RNA sequencing; IEC, intestinal epithelial cell; UMAP, Uniform Manifold Approximation and Projection; qPCR, quantitative real-time PCR; REG3B, regenerating islet-derived protein 3β; REG3G, regenerating islet-derived protein 3γ; Conv, conventional; GF, germ-free. Means ± SEM are plotted; ***p < 0.001 by Mann-Whitney test. See also .
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    SouthernBiotech mounting media
    (A) Vitamin A deprivation model. Pregnant dams were fed vitamin A–deficient (Vit A–) or vitamin A–replete (Vit A+) diets during gestation. Offspring were maintained on the maternal diet for at least 8 weeks. (B) Single cell RNA sequencing (scRNA-seq) was performed on a single cell suspension from the mouse small intestine. Live cells were bar-coded and sequenced, and cells annotated as epithelial cells were analyzed and are displayed as a two-dimensional reduction plot (UMAP). Both Vit A+ and Vit A– cells are plotted (n=3 mice per group). (C) Distribution of epithelial cell subsets from Vit A+ and Vit A– mice (n=3) projected on the same UMAP as in (B). (D) Heatmap of average normalized expression of known vitamin A-responsive genes from the scRNA-seq analysis of IECs. (E) Volcano plot of vitamin A-dependent changes in gene expression in IECs analyzed by scRNA-seq. Reg3b and Reg3g are highlighted in red. (F) Density plots of Reg3b and Reg3g expression in IECs analyzed by scRNA-seq. (G) The gut microbiota induces expression of the antibacterial proteins REG3β and REG3γ. Microbial molecular patterns activate a dendritic cell–ILC3 signaling relay that drives IL-22 production, which induces Reg3b and Reg3g expression in IECs. (H) qPCR analysis of Reg3g and Reg3b transcript abundance in small intestines from conventional mice fed Vit A+ (n=12) and Vit A– (n=14) diets, and germ-free mice fed a Vit A+ diet (n=9). Mice were from three independent litters. Each data point represents one mouse. (I) Immunofluorescence microscopy of REG3G in the distal small intestine of Vit A+ or Vit A– mice. Sections were stained for REG3G (red) and counterstained with <t>DAPI</t> (blue). Scale bar, 100 μm. Images are representative of three mice per group. (J) Mean fluorescence intensities of at least 65 villi were determined across three mice in each dietary group. Vit A+, vitamin A+; Vit A–, vitamin A–; wk, weeks; scRNA-seq, single cell RNA sequencing; IEC, intestinal epithelial cell; UMAP, Uniform Manifold Approximation and Projection; qPCR, quantitative real-time PCR; REG3B, regenerating islet-derived protein 3β; REG3G, regenerating islet-derived protein 3γ; Conv, conventional; GF, germ-free. Means ± SEM are plotted; ***p < 0.001 by Mann-Whitney test. See also .
    Mounting Media, supplied by SouthernBiotech, 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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    (A) Vitamin A deprivation model. Pregnant dams were fed vitamin A–deficient (Vit A–) or vitamin A–replete (Vit A+) diets during gestation. Offspring were maintained on the maternal diet for at least 8 weeks. (B) Single cell RNA sequencing (scRNA-seq) was performed on a single cell suspension from the mouse small intestine. Live cells were bar-coded and sequenced, and cells annotated as epithelial cells were analyzed and are displayed as a two-dimensional reduction plot (UMAP). Both Vit A+ and Vit A– cells are plotted (n=3 mice per group). (C) Distribution of epithelial cell subsets from Vit A+ and Vit A– mice (n=3) projected on the same UMAP as in (B). (D) Heatmap of average normalized expression of known vitamin A-responsive genes from the scRNA-seq analysis of IECs. (E) Volcano plot of vitamin A-dependent changes in gene expression in IECs analyzed by scRNA-seq. Reg3b and Reg3g are highlighted in red. (F) Density plots of Reg3b and Reg3g expression in IECs analyzed by scRNA-seq. (G) The gut microbiota induces expression of the antibacterial proteins REG3β and REG3γ. Microbial molecular patterns activate a dendritic cell–ILC3 signaling relay that drives IL-22 production, which induces Reg3b and Reg3g expression in IECs. (H) qPCR analysis of Reg3g and Reg3b transcript abundance in small intestines from conventional mice fed Vit A+ (n=12) and Vit A– (n=14) diets, and germ-free mice fed a Vit A+ diet (n=9). Mice were from three independent litters. Each data point represents one mouse. (I) Immunofluorescence microscopy of REG3G in the distal small intestine of Vit A+ or Vit A– mice. Sections were stained for REG3G (red) and counterstained with <t>DAPI</t> (blue). Scale bar, 100 μm. Images are representative of three mice per group. (J) Mean fluorescence intensities of at least 65 villi were determined across three mice in each dietary group. Vit A+, vitamin A+; Vit A–, vitamin A–; wk, weeks; scRNA-seq, single cell RNA sequencing; IEC, intestinal epithelial cell; UMAP, Uniform Manifold Approximation and Projection; qPCR, quantitative real-time PCR; REG3B, regenerating islet-derived protein 3β; REG3G, regenerating islet-derived protein 3γ; Conv, conventional; GF, germ-free. Means ± SEM are plotted; ***p < 0.001 by Mann-Whitney test. See also .
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    Image Search Results


    (a) Each dot represents a tardigrade embryo that was fixed along a timeline from 0 to 125 minutes post-laying (mpl). Dots to the left of zero on the timeline represent those that were cut out of gravid adults directly into fixative solution. Embryos were then stained with DAPI and imaged using a scanning confocal microscope. During analysis, embryos were categorized into one of five groups depending on the number and orientation of visible chromosomes. Uncategorized embryos are shown in gray. Representative images of DAPI staining within embryos, one for each category, are shown. The arrow points to a polar body. Scale bars are 5um. (b) Live embryos were imaged every 5min with Differential Interference Contrast (DIC), and the relative timing of when they were laid was recorded. Each line indicates the timeline of a single embryo progressing through meiosis, starting from the time it was laid. Orange squares indicate the first time DNA migrated to the periphery, and green diamonds indicate the second time DNA migrated to the periphery. Blue circles indicate the first time a polar body was visible (characterized by a membrane surrounding DNA at the periphery). Only embryos where a polar body was ultimately visible were included. Finally, images of a single representative embryo are shown over time as it proceeds through meiosis, with symbols marking the events corresponding to the above timelines. The arrow points to a polar body. Scale bars are 5um. (c) Model of modified meiosis cytology in H. exemplaris . Inferred homologous chromosomes are differentially colored, purple and orange. Light gray surrounding the chromosomes represents the area visible by DIC imaging. Meiosis I metaphase and anaphase occur but do not conclude with polar body cytokinesis. Meiosis II then proceeds as normal, resulting in a single polar body. Alt text: Timelines ranging from 0 to 130 minutes post-laying, symbols depicting replicates of imaged H. exemplaris embryos, and representative images for different phases of modified meiosis are shown for each of two microscopy experiments (panels a and b).

    Journal: bioRxiv

    Article Title: Modified meiosis in the tardigrade Hypsibius exemplaris maintains heterozygosity across the genome

    doi: 10.64898/2026.03.11.711151

    Figure Lengend Snippet: (a) Each dot represents a tardigrade embryo that was fixed along a timeline from 0 to 125 minutes post-laying (mpl). Dots to the left of zero on the timeline represent those that were cut out of gravid adults directly into fixative solution. Embryos were then stained with DAPI and imaged using a scanning confocal microscope. During analysis, embryos were categorized into one of five groups depending on the number and orientation of visible chromosomes. Uncategorized embryos are shown in gray. Representative images of DAPI staining within embryos, one for each category, are shown. The arrow points to a polar body. Scale bars are 5um. (b) Live embryos were imaged every 5min with Differential Interference Contrast (DIC), and the relative timing of when they were laid was recorded. Each line indicates the timeline of a single embryo progressing through meiosis, starting from the time it was laid. Orange squares indicate the first time DNA migrated to the periphery, and green diamonds indicate the second time DNA migrated to the periphery. Blue circles indicate the first time a polar body was visible (characterized by a membrane surrounding DNA at the periphery). Only embryos where a polar body was ultimately visible were included. Finally, images of a single representative embryo are shown over time as it proceeds through meiosis, with symbols marking the events corresponding to the above timelines. The arrow points to a polar body. Scale bars are 5um. (c) Model of modified meiosis cytology in H. exemplaris . Inferred homologous chromosomes are differentially colored, purple and orange. Light gray surrounding the chromosomes represents the area visible by DIC imaging. Meiosis I metaphase and anaphase occur but do not conclude with polar body cytokinesis. Meiosis II then proceeds as normal, resulting in a single polar body. Alt text: Timelines ranging from 0 to 130 minutes post-laying, symbols depicting replicates of imaged H. exemplaris embryos, and representative images for different phases of modified meiosis are shown for each of two microscopy experiments (panels a and b).

    Article Snippet: Embryos were then mounted onto slides with 28.41μm glass beads (Whitehouse Scientific MS0028) and approximately 2uL of DAPI fluoromount-G mounting media (Southern Biotech 0100-20).

    Techniques: Staining, Microscopy, Membrane, Modification, Imaging

    (A) Vitamin A deprivation model. Pregnant dams were fed vitamin A–deficient (Vit A–) or vitamin A–replete (Vit A+) diets during gestation. Offspring were maintained on the maternal diet for at least 8 weeks. (B) Single cell RNA sequencing (scRNA-seq) was performed on a single cell suspension from the mouse small intestine. Live cells were bar-coded and sequenced, and cells annotated as epithelial cells were analyzed and are displayed as a two-dimensional reduction plot (UMAP). Both Vit A+ and Vit A– cells are plotted (n=3 mice per group). (C) Distribution of epithelial cell subsets from Vit A+ and Vit A– mice (n=3) projected on the same UMAP as in (B). (D) Heatmap of average normalized expression of known vitamin A-responsive genes from the scRNA-seq analysis of IECs. (E) Volcano plot of vitamin A-dependent changes in gene expression in IECs analyzed by scRNA-seq. Reg3b and Reg3g are highlighted in red. (F) Density plots of Reg3b and Reg3g expression in IECs analyzed by scRNA-seq. (G) The gut microbiota induces expression of the antibacterial proteins REG3β and REG3γ. Microbial molecular patterns activate a dendritic cell–ILC3 signaling relay that drives IL-22 production, which induces Reg3b and Reg3g expression in IECs. (H) qPCR analysis of Reg3g and Reg3b transcript abundance in small intestines from conventional mice fed Vit A+ (n=12) and Vit A– (n=14) diets, and germ-free mice fed a Vit A+ diet (n=9). Mice were from three independent litters. Each data point represents one mouse. (I) Immunofluorescence microscopy of REG3G in the distal small intestine of Vit A+ or Vit A– mice. Sections were stained for REG3G (red) and counterstained with DAPI (blue). Scale bar, 100 μm. Images are representative of three mice per group. (J) Mean fluorescence intensities of at least 65 villi were determined across three mice in each dietary group. Vit A+, vitamin A+; Vit A–, vitamin A–; wk, weeks; scRNA-seq, single cell RNA sequencing; IEC, intestinal epithelial cell; UMAP, Uniform Manifold Approximation and Projection; qPCR, quantitative real-time PCR; REG3B, regenerating islet-derived protein 3β; REG3G, regenerating islet-derived protein 3γ; Conv, conventional; GF, germ-free. Means ± SEM are plotted; ***p < 0.001 by Mann-Whitney test. See also .

    Journal: bioRxiv

    Article Title: Epithelial sensing of vitamin A shapes intestinal antimicrobial defense

    doi: 10.64898/2026.03.08.710399

    Figure Lengend Snippet: (A) Vitamin A deprivation model. Pregnant dams were fed vitamin A–deficient (Vit A–) or vitamin A–replete (Vit A+) diets during gestation. Offspring were maintained on the maternal diet for at least 8 weeks. (B) Single cell RNA sequencing (scRNA-seq) was performed on a single cell suspension from the mouse small intestine. Live cells were bar-coded and sequenced, and cells annotated as epithelial cells were analyzed and are displayed as a two-dimensional reduction plot (UMAP). Both Vit A+ and Vit A– cells are plotted (n=3 mice per group). (C) Distribution of epithelial cell subsets from Vit A+ and Vit A– mice (n=3) projected on the same UMAP as in (B). (D) Heatmap of average normalized expression of known vitamin A-responsive genes from the scRNA-seq analysis of IECs. (E) Volcano plot of vitamin A-dependent changes in gene expression in IECs analyzed by scRNA-seq. Reg3b and Reg3g are highlighted in red. (F) Density plots of Reg3b and Reg3g expression in IECs analyzed by scRNA-seq. (G) The gut microbiota induces expression of the antibacterial proteins REG3β and REG3γ. Microbial molecular patterns activate a dendritic cell–ILC3 signaling relay that drives IL-22 production, which induces Reg3b and Reg3g expression in IECs. (H) qPCR analysis of Reg3g and Reg3b transcript abundance in small intestines from conventional mice fed Vit A+ (n=12) and Vit A– (n=14) diets, and germ-free mice fed a Vit A+ diet (n=9). Mice were from three independent litters. Each data point represents one mouse. (I) Immunofluorescence microscopy of REG3G in the distal small intestine of Vit A+ or Vit A– mice. Sections were stained for REG3G (red) and counterstained with DAPI (blue). Scale bar, 100 μm. Images are representative of three mice per group. (J) Mean fluorescence intensities of at least 65 villi were determined across three mice in each dietary group. Vit A+, vitamin A+; Vit A–, vitamin A–; wk, weeks; scRNA-seq, single cell RNA sequencing; IEC, intestinal epithelial cell; UMAP, Uniform Manifold Approximation and Projection; qPCR, quantitative real-time PCR; REG3B, regenerating islet-derived protein 3β; REG3G, regenerating islet-derived protein 3γ; Conv, conventional; GF, germ-free. Means ± SEM are plotted; ***p < 0.001 by Mann-Whitney test. See also .

    Article Snippet: Slides were washed three times with PBS and mounted using Fluoromount-G Mounting Media with DAPI (SouthernBiotech 0100-20) to label nuclei.

    Techniques: Single Cell, RNA Sequencing, Suspension, Expressing, Gene Expression, Immunofluorescence, Microscopy, Staining, Fluorescence, Real-time Polymerase Chain Reaction, Derivative Assay, MANN-WHITNEY

    (A) Mass spectrometry measurement of retinol from serum of mice fed provided a Vit A+ (n=9) or Vit A– (n=14) diet as described in . Each dot represents one mouse, and the limit of detection (L.O.D.) is indicated. (B) Expression of marker genes among small intestinal cell populations as determined by scRNA-seq. (C) Immunofluorescence microscopy of REG3G in small intestine sections from Vit A+ mice, with comparison to an isotype control antibody. Sections were stained for REG3G (red) and counterstained with DAPI (blue) to detect nuclei. Scale bar, 100 μ m. (D) Representative images of small intestinal crypts of mice fed a Vit A+ or Vit A– diet. Paneth cells were identified by their distinctive morphology and the presence of dense secretory granules (white arrowheads). Scale bar, 50 μ m. (E) Enumeration of Paneth cells identified in crypts from Vit A+ (60 crypts counted across 5 mice) and Vit A–mice (94 crypts counted across four mice). (F) Immunofluorescence microscopy of lipid A (bacteria) and UEA-I (mucus) in small intestine sections from Vit A+ mice and Vit A- mice. The tissue was counterstained with DAPI to detect nuclei. The mucus barrier is outlined with a white dotted line and examples of positive lipid A staining are indicated by white arrow heads. Vit A, vitamin A; L.O.D., limit of detection; REG3G, regenerating islet-derived protein 3γ; Ctrl, control; UEA-I, Ulex Europaeus Agglutinin I. Means ± SEM are plotted; ns, not significant by Mann-Whitney test.

    Journal: bioRxiv

    Article Title: Epithelial sensing of vitamin A shapes intestinal antimicrobial defense

    doi: 10.64898/2026.03.08.710399

    Figure Lengend Snippet: (A) Mass spectrometry measurement of retinol from serum of mice fed provided a Vit A+ (n=9) or Vit A– (n=14) diet as described in . Each dot represents one mouse, and the limit of detection (L.O.D.) is indicated. (B) Expression of marker genes among small intestinal cell populations as determined by scRNA-seq. (C) Immunofluorescence microscopy of REG3G in small intestine sections from Vit A+ mice, with comparison to an isotype control antibody. Sections were stained for REG3G (red) and counterstained with DAPI (blue) to detect nuclei. Scale bar, 100 μ m. (D) Representative images of small intestinal crypts of mice fed a Vit A+ or Vit A– diet. Paneth cells were identified by their distinctive morphology and the presence of dense secretory granules (white arrowheads). Scale bar, 50 μ m. (E) Enumeration of Paneth cells identified in crypts from Vit A+ (60 crypts counted across 5 mice) and Vit A–mice (94 crypts counted across four mice). (F) Immunofluorescence microscopy of lipid A (bacteria) and UEA-I (mucus) in small intestine sections from Vit A+ mice and Vit A- mice. The tissue was counterstained with DAPI to detect nuclei. The mucus barrier is outlined with a white dotted line and examples of positive lipid A staining are indicated by white arrow heads. Vit A, vitamin A; L.O.D., limit of detection; REG3G, regenerating islet-derived protein 3γ; Ctrl, control; UEA-I, Ulex Europaeus Agglutinin I. Means ± SEM are plotted; ns, not significant by Mann-Whitney test.

    Article Snippet: Slides were washed three times with PBS and mounted using Fluoromount-G Mounting Media with DAPI (SouthernBiotech 0100-20) to label nuclei.

    Techniques: Mass Spectrometry, Expressing, Marker, Immunofluorescence, Microscopy, Comparison, Control, Staining, Bacteria, Derivative Assay, MANN-WHITNEY

    (A) HT-29 cells were treated with 1 μ M retinol and/or 100 ng/mL IL-22. REG3G transcripts were quantified by qPCR 18 hours later. Each data point represents one experimental replicate (n=6 per group). (B) Retinol is converted to RA through a two-step enzymatic reaction catalyzed by retinol/alcohol dehydrogenases and retinaldehyde/aldehyde dehydrogenases. Disulfiram inhibits aldehyde dehydrogenase enzymatic activity (including RALDH). (C) HT-29 cells were treated with 1 μ M RA and/or 100 ng/mL IL-22 in the presence of vehicle or 100 μ M disulfiram. REG3G transcripts were quantified by qPCR after 18 hours. Each data point represents an independent experimental replicate (n=6 per group). (D) qPCR analysis of REG3G transcripts in HT-29 cells treated with retinol and IL-22 in the presence or absence of disulfiram. Each data point represents one experimental replicate (n=4 per group). (E) qPCR analysis of REG3G transcripts in HT-29 cells treated with retinol and IL-22 in the presence of disulfiram, with rescue by RA. Each data point represents an independent experimental replicate (n=4 per group). (F) The Rdh7 -/- mouse carries a global deletion of the gene encoding RDH7, which catalyzes the first step in the retinol-to-RA conversion. Rdh7 μIEC mice harbor an IEC–specific deletion of Rdh7 , generated by crossing Rdh7 fl/fl mice with Villin-Cre transgenic mice. (G) qPCR analysis of Reg3g transcripts in the small intestines of conventional wild-type (n=5) and Rdh7 -/- (n=5) mice, and germ-free wild-type (n=21) mice. Each data point represents one mouse. (H) Immunoblot of REG3G in small intestines from conventional wild-type (n=3) and Rdh7 -/- (n=3) mice. ACTIN was the loading control. Each lane is from one mouse. (I) qPCR analysis of Reg3g transcripts in small intestines from six litters of conventional Rdh7 fl/fl (n=11) and Rdh7 μIEC (n=13) mice and germ-free wild-type (n=21) mice. Each data point represents one mouse. (J) Rdh7 μIEC mice received two intraperitoneal injections of vehicle or retinoic acid (1 μ M), administered 12 hours apart. Mice were sacrificed 12 hours after the last injection. (K) qPCR analysis of Reg3g transcripts in the intestines of two litters of Rdh7 fl/fl (n=3) and Rdh7 μIEC (n=6) littermates injected intraperitoneally with RA or vehicle. Each data point represents one mouse. (L) Immunofluorescence microscopy of REG3G in the small intestines of Rdh7 fl/fl and Rdh7 μIEC littermates injected via the intraperitoneal route with retinoic acid (RA) or vehicle. Sections were stained for REG3G (red) and counterstained with DAPI (blue). Scale bar, 100 μm. Images are representative of at least three fields per sample from two independent experiments (three littermates per group). (M) Mean fluorescence intensities of at least 150 villi from the images represented in (L) were quantified across at least two mice in each experimental group. IEC, intestinal epithelial cell; REG3G, regenerating islet-derived protein 3γ; qPCR, quantitative real-time PCR; RDH, retinol dehydrogenase; RALDH, retinaldehyde dehydrogenase; Conv, conventional; GF, germ-free; i.p., intraperitoneal; RA, retinoic acid. Means ± SEM are plotted; *p < 0.05; **p < 0.01; ***p < 0.001; ns, not significant by Mann-Whitney test. See also .

    Journal: bioRxiv

    Article Title: Epithelial sensing of vitamin A shapes intestinal antimicrobial defense

    doi: 10.64898/2026.03.08.710399

    Figure Lengend Snippet: (A) HT-29 cells were treated with 1 μ M retinol and/or 100 ng/mL IL-22. REG3G transcripts were quantified by qPCR 18 hours later. Each data point represents one experimental replicate (n=6 per group). (B) Retinol is converted to RA through a two-step enzymatic reaction catalyzed by retinol/alcohol dehydrogenases and retinaldehyde/aldehyde dehydrogenases. Disulfiram inhibits aldehyde dehydrogenase enzymatic activity (including RALDH). (C) HT-29 cells were treated with 1 μ M RA and/or 100 ng/mL IL-22 in the presence of vehicle or 100 μ M disulfiram. REG3G transcripts were quantified by qPCR after 18 hours. Each data point represents an independent experimental replicate (n=6 per group). (D) qPCR analysis of REG3G transcripts in HT-29 cells treated with retinol and IL-22 in the presence or absence of disulfiram. Each data point represents one experimental replicate (n=4 per group). (E) qPCR analysis of REG3G transcripts in HT-29 cells treated with retinol and IL-22 in the presence of disulfiram, with rescue by RA. Each data point represents an independent experimental replicate (n=4 per group). (F) The Rdh7 -/- mouse carries a global deletion of the gene encoding RDH7, which catalyzes the first step in the retinol-to-RA conversion. Rdh7 μIEC mice harbor an IEC–specific deletion of Rdh7 , generated by crossing Rdh7 fl/fl mice with Villin-Cre transgenic mice. (G) qPCR analysis of Reg3g transcripts in the small intestines of conventional wild-type (n=5) and Rdh7 -/- (n=5) mice, and germ-free wild-type (n=21) mice. Each data point represents one mouse. (H) Immunoblot of REG3G in small intestines from conventional wild-type (n=3) and Rdh7 -/- (n=3) mice. ACTIN was the loading control. Each lane is from one mouse. (I) qPCR analysis of Reg3g transcripts in small intestines from six litters of conventional Rdh7 fl/fl (n=11) and Rdh7 μIEC (n=13) mice and germ-free wild-type (n=21) mice. Each data point represents one mouse. (J) Rdh7 μIEC mice received two intraperitoneal injections of vehicle or retinoic acid (1 μ M), administered 12 hours apart. Mice were sacrificed 12 hours after the last injection. (K) qPCR analysis of Reg3g transcripts in the intestines of two litters of Rdh7 fl/fl (n=3) and Rdh7 μIEC (n=6) littermates injected intraperitoneally with RA or vehicle. Each data point represents one mouse. (L) Immunofluorescence microscopy of REG3G in the small intestines of Rdh7 fl/fl and Rdh7 μIEC littermates injected via the intraperitoneal route with retinoic acid (RA) or vehicle. Sections were stained for REG3G (red) and counterstained with DAPI (blue). Scale bar, 100 μm. Images are representative of at least three fields per sample from two independent experiments (three littermates per group). (M) Mean fluorescence intensities of at least 150 villi from the images represented in (L) were quantified across at least two mice in each experimental group. IEC, intestinal epithelial cell; REG3G, regenerating islet-derived protein 3γ; qPCR, quantitative real-time PCR; RDH, retinol dehydrogenase; RALDH, retinaldehyde dehydrogenase; Conv, conventional; GF, germ-free; i.p., intraperitoneal; RA, retinoic acid. Means ± SEM are plotted; *p < 0.05; **p < 0.01; ***p < 0.001; ns, not significant by Mann-Whitney test. See also .

    Article Snippet: Slides were washed three times with PBS and mounted using Fluoromount-G Mounting Media with DAPI (SouthernBiotech 0100-20) to label nuclei.

    Techniques: Activity Assay, Generated, Transgenic Assay, Western Blot, Control, Injection, Immunofluorescence, Microscopy, Staining, Fluorescence, Derivative Assay, Real-time Polymerase Chain Reaction, MANN-WHITNEY

    (A) Vitamin A-derived retinol is metabolized to RA, which activates retinoic acid receptors (RARs). RARs bind target gene promoters to drive RA-dependent transcription. (B) HT-29 cells (human intestinal epithelial cells) were treated with the RAR antagonist BMS493 or the RAR agonist Ch55 and simultaneously stimulated overnight with RA and IL-22. REG3G transcripts were quantified by qPCR. Each data point represents an independent experimental replicate (n=6 per group). (C) HCT-116, a transfection-competent human intestinal epithelial cell line expressing RARA and RARG , was treated for 24 hours with an siRNA targeting either gene and then stimulated overnight with retinol and IL-22. REG3G transcripts were quantified by qPCR. Each data point represents an independent experimental replicate (n=4 per group). (D) IEC-specific disruption of RAR signaling using a dominant-negative RAR (dnRAR) knock-in allele. dnRAR mice harbor a loxP -flanked STOP cassette upstream of a dominant-negative RAR open reading frame. The dnRAR is derived from a mutant human RARα (RAR403) lacking the ligand-dependent transactivation domain and functions as a pan-RAR inhibitor. Crossing dnRAR mice with Villin-Cre transgenic mice excises the STOP cassette in IECs, resulting in IEC-selective expression of dnRAR and inhibition of RAR signaling. (E) qPCR analysis of Reg3g expression in small intestines of conventional dnRAR fl/fl (n=12) and dnRAR IEC (n=17) mice from five litters, and germ-free wild-type mice (n=21). (F) Immunofluorescence microscopy of REG3G in small intestines of dnRAR fl/fl and dnRAR IEC mice. Sections were stained for REG3G and counterstained with DAPI. Scale bar, 100 μ m. Images are representative of at least three fields per sample and two independent experiments (three littermates per group). (G) Mean fluorescence intensities of at least 150 villi from the images represented in (F) were quantified across at least two mice of each genotype. RAR, retinoic acid receptor; RA, retinoic acid; IEC, intestinal epithelial cell; REG3G, regenerating islet-derived protein 3γ; siRNA, small interfering RNA; dnRAR, dominant negative retinoic acid receptor; Conv, conventional; GF, germ-free. Means ± SEM are plotted; *p < 0.05; **p < 0.01; ***p<0.001; ns, not significant by Mann-Whitney test. See also .

    Journal: bioRxiv

    Article Title: Epithelial sensing of vitamin A shapes intestinal antimicrobial defense

    doi: 10.64898/2026.03.08.710399

    Figure Lengend Snippet: (A) Vitamin A-derived retinol is metabolized to RA, which activates retinoic acid receptors (RARs). RARs bind target gene promoters to drive RA-dependent transcription. (B) HT-29 cells (human intestinal epithelial cells) were treated with the RAR antagonist BMS493 or the RAR agonist Ch55 and simultaneously stimulated overnight with RA and IL-22. REG3G transcripts were quantified by qPCR. Each data point represents an independent experimental replicate (n=6 per group). (C) HCT-116, a transfection-competent human intestinal epithelial cell line expressing RARA and RARG , was treated for 24 hours with an siRNA targeting either gene and then stimulated overnight with retinol and IL-22. REG3G transcripts were quantified by qPCR. Each data point represents an independent experimental replicate (n=4 per group). (D) IEC-specific disruption of RAR signaling using a dominant-negative RAR (dnRAR) knock-in allele. dnRAR mice harbor a loxP -flanked STOP cassette upstream of a dominant-negative RAR open reading frame. The dnRAR is derived from a mutant human RARα (RAR403) lacking the ligand-dependent transactivation domain and functions as a pan-RAR inhibitor. Crossing dnRAR mice with Villin-Cre transgenic mice excises the STOP cassette in IECs, resulting in IEC-selective expression of dnRAR and inhibition of RAR signaling. (E) qPCR analysis of Reg3g expression in small intestines of conventional dnRAR fl/fl (n=12) and dnRAR IEC (n=17) mice from five litters, and germ-free wild-type mice (n=21). (F) Immunofluorescence microscopy of REG3G in small intestines of dnRAR fl/fl and dnRAR IEC mice. Sections were stained for REG3G and counterstained with DAPI. Scale bar, 100 μ m. Images are representative of at least three fields per sample and two independent experiments (three littermates per group). (G) Mean fluorescence intensities of at least 150 villi from the images represented in (F) were quantified across at least two mice of each genotype. RAR, retinoic acid receptor; RA, retinoic acid; IEC, intestinal epithelial cell; REG3G, regenerating islet-derived protein 3γ; siRNA, small interfering RNA; dnRAR, dominant negative retinoic acid receptor; Conv, conventional; GF, germ-free. Means ± SEM are plotted; *p < 0.05; **p < 0.01; ***p<0.001; ns, not significant by Mann-Whitney test. See also .

    Article Snippet: Slides were washed three times with PBS and mounted using Fluoromount-G Mounting Media with DAPI (SouthernBiotech 0100-20) to label nuclei.

    Techniques: Derivative Assay, Transfection, Expressing, Disruption, Dominant Negative Mutation, Knock-In, Mutagenesis, Transgenic Assay, Inhibition, Immunofluorescence, Microscopy, Staining, Fluorescence, Small Interfering RNA, MANN-WHITNEY