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Jackson Laboratory pten flox
Influence of <t>Pten</t> gene deletion on mouse NSCs in vitro . (A) Verification of PTEN deletion and enhanced phosphorylation of S6 ribosomal protein. Cultured mouse spinal cord NSCs from Pten fl/fl mouse were transfected with either AAV2-GFP (GFP) or AAV2-Cre-GFP (CRE). One week after transduction, neurospheres were collected and subjected to western blot analysis. Beta-actin was probed as a loading control. (B) Representative fluorescence images of GFP-positive neurospheres (green). Scale bars: 100 μm. (C) Quantitative graphs comparing the number and size of neurospheres. Scale bars: 50 μm. (D) Representative images of NSC-derived neurons grown on either growth-permissive (laminin) or growth-inhibitory (CSPG) substrate. Neurites were visualized by immunocytochemistry using anti-βIII tubulin (magenta) antibody. Scale bars: 50 μm. (E) Quantitative graphs comparing the neurite length of NSC-derived neurons grown on either growth-permissive (laminin) or growth-inhibitory (CSPG) substrate. (F, G) Comparison of NSC survival measured by MTT assay (F) and extent of NSC death measured by far red fluorescence-based cell sorting (G). Control (GFP) or Pten -deleted (CRE) mouse NSCs were treated with NaAsO 2 to mimic a degeneration-prone injury environment. * P < 0.05, ** P < 0.01, *** P < 0.001 (unpaired Student’s t -test for C and E; two-way analysis of variance followed by post hoc Bonferroni’s multiple comparison test for F and G). Each data point represents an independent culture. CSPG: chondroitin sulfate proteoglycan; GFP: green fluorescent protein; NaAsO 2 : sodium arsenite; NSC: neural stem cells; PTEN: phosphatase and tensin homolog.
Pten Flox, supplied by Jackson Laboratory, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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1) Product Images from "Enhancing neural stem cell integration in the injured spinal cord through targeted PTEN modulation"

Article Title: Enhancing neural stem cell integration in the injured spinal cord through targeted PTEN modulation

Journal: Neural Regeneration Research

doi: 10.4103/NRR.NRR-D-24-00455

Influence of Pten gene deletion on mouse NSCs in vitro . (A) Verification of PTEN deletion and enhanced phosphorylation of S6 ribosomal protein. Cultured mouse spinal cord NSCs from Pten fl/fl mouse were transfected with either AAV2-GFP (GFP) or AAV2-Cre-GFP (CRE). One week after transduction, neurospheres were collected and subjected to western blot analysis. Beta-actin was probed as a loading control. (B) Representative fluorescence images of GFP-positive neurospheres (green). Scale bars: 100 μm. (C) Quantitative graphs comparing the number and size of neurospheres. Scale bars: 50 μm. (D) Representative images of NSC-derived neurons grown on either growth-permissive (laminin) or growth-inhibitory (CSPG) substrate. Neurites were visualized by immunocytochemistry using anti-βIII tubulin (magenta) antibody. Scale bars: 50 μm. (E) Quantitative graphs comparing the neurite length of NSC-derived neurons grown on either growth-permissive (laminin) or growth-inhibitory (CSPG) substrate. (F, G) Comparison of NSC survival measured by MTT assay (F) and extent of NSC death measured by far red fluorescence-based cell sorting (G). Control (GFP) or Pten -deleted (CRE) mouse NSCs were treated with NaAsO 2 to mimic a degeneration-prone injury environment. * P < 0.05, ** P < 0.01, *** P < 0.001 (unpaired Student’s t -test for C and E; two-way analysis of variance followed by post hoc Bonferroni’s multiple comparison test for F and G). Each data point represents an independent culture. CSPG: chondroitin sulfate proteoglycan; GFP: green fluorescent protein; NaAsO 2 : sodium arsenite; NSC: neural stem cells; PTEN: phosphatase and tensin homolog.
Figure Legend Snippet: Influence of Pten gene deletion on mouse NSCs in vitro . (A) Verification of PTEN deletion and enhanced phosphorylation of S6 ribosomal protein. Cultured mouse spinal cord NSCs from Pten fl/fl mouse were transfected with either AAV2-GFP (GFP) or AAV2-Cre-GFP (CRE). One week after transduction, neurospheres were collected and subjected to western blot analysis. Beta-actin was probed as a loading control. (B) Representative fluorescence images of GFP-positive neurospheres (green). Scale bars: 100 μm. (C) Quantitative graphs comparing the number and size of neurospheres. Scale bars: 50 μm. (D) Representative images of NSC-derived neurons grown on either growth-permissive (laminin) or growth-inhibitory (CSPG) substrate. Neurites were visualized by immunocytochemistry using anti-βIII tubulin (magenta) antibody. Scale bars: 50 μm. (E) Quantitative graphs comparing the neurite length of NSC-derived neurons grown on either growth-permissive (laminin) or growth-inhibitory (CSPG) substrate. (F, G) Comparison of NSC survival measured by MTT assay (F) and extent of NSC death measured by far red fluorescence-based cell sorting (G). Control (GFP) or Pten -deleted (CRE) mouse NSCs were treated with NaAsO 2 to mimic a degeneration-prone injury environment. * P < 0.05, ** P < 0.01, *** P < 0.001 (unpaired Student’s t -test for C and E; two-way analysis of variance followed by post hoc Bonferroni’s multiple comparison test for F and G). Each data point represents an independent culture. CSPG: chondroitin sulfate proteoglycan; GFP: green fluorescent protein; NaAsO 2 : sodium arsenite; NSC: neural stem cells; PTEN: phosphatase and tensin homolog.

Techniques Used: In Vitro, Phospho-proteomics, Cell Culture, Transfection, Transduction, Western Blot, Control, Fluorescence, Derivative Assay, Immunocytochemistry, Comparison, MTT Assay, FACS

Pten deletion enhances the survival and migration of grafted NSCs in vivo . (A) Longitudinal spinal cord section from NOD/SCID immune-deficient mice transplanted with either mouse spinal cord NSCs from Pten fl/fl mouse transfected with either AAV2-GFP (GFP) or AAV2-Cre-GFP (CRE) NSCs (green). Fluorescence signals were augmented by immunohistochemical staining using an antibody against GFP. Animals were sacrificed at 8 weeks after transplantation. Dotted rectangles in low-magnification images were magnified in the separate inset images below. Arrows indicate elongated cytoplasmic processes from Pten -deleted located far from the injection site. Scale bars: 200 μm. (B–D) Quantitative graphs comparing the number of surviving NSCs (B), areas occupied by GFP-positive grafts (C), and the longest distance of NSCs from the injection site in a rostrocaudal direction (D) between control (GFP) and Pten -deleted (CRE) NCSs. * P < 0.05, ** P < 0.01 (unpaired Student’s t -test). Each data point in all the graphs represents a single animal. GFP: Green fluorescent protein; NSC: neural stem cells.
Figure Legend Snippet: Pten deletion enhances the survival and migration of grafted NSCs in vivo . (A) Longitudinal spinal cord section from NOD/SCID immune-deficient mice transplanted with either mouse spinal cord NSCs from Pten fl/fl mouse transfected with either AAV2-GFP (GFP) or AAV2-Cre-GFP (CRE) NSCs (green). Fluorescence signals were augmented by immunohistochemical staining using an antibody against GFP. Animals were sacrificed at 8 weeks after transplantation. Dotted rectangles in low-magnification images were magnified in the separate inset images below. Arrows indicate elongated cytoplasmic processes from Pten -deleted located far from the injection site. Scale bars: 200 μm. (B–D) Quantitative graphs comparing the number of surviving NSCs (B), areas occupied by GFP-positive grafts (C), and the longest distance of NSCs from the injection site in a rostrocaudal direction (D) between control (GFP) and Pten -deleted (CRE) NCSs. * P < 0.05, ** P < 0.01 (unpaired Student’s t -test). Each data point in all the graphs represents a single animal. GFP: Green fluorescent protein; NSC: neural stem cells.

Techniques Used: Migration, In Vivo, Transfection, Fluorescence, Immunohistochemical staining, Staining, Transplantation Assay, Injection, Control

Differentiation of NSCs with Pten deletion in injured spinal cord. (A, B) Representative images of the spinal cord sections where immunohistochemical staining of βIII-tubulin (Tuj1, Magenta) (A) and glial fibrillary acidic protein (GFAP, magenta) (B) was performed. Scale bars: 20 μm. (C, D) Quantitative graphs of the percent GFP positive NSCs (green) colocalized with Tuj1 (C) and GFAP (D). n = 6 for each group. Each data point in all the graphs represents a single animal. DAPI: 4′,6-Diamidino-2-phenylindole; GFAP: glial fibrillary acidic protein; GFP: green fluorescent protein; NSC: neural stem cells.
Figure Legend Snippet: Differentiation of NSCs with Pten deletion in injured spinal cord. (A, B) Representative images of the spinal cord sections where immunohistochemical staining of βIII-tubulin (Tuj1, Magenta) (A) and glial fibrillary acidic protein (GFAP, magenta) (B) was performed. Scale bars: 20 μm. (C, D) Quantitative graphs of the percent GFP positive NSCs (green) colocalized with Tuj1 (C) and GFAP (D). n = 6 for each group. Each data point in all the graphs represents a single animal. DAPI: 4′,6-Diamidino-2-phenylindole; GFAP: glial fibrillary acidic protein; GFP: green fluorescent protein; NSC: neural stem cells.

Techniques Used: Immunohistochemical staining, Staining

Influence of shRNA-mediated Pten silencing on rat NSCs in vitro . (A) Verification of a partial reduction of PTEN expression and an increase in phosphorylation of S6 ribosomal protein. Cultured rat spinal cord NSCs (Green) were transfected with either AAV2-GFP (GFP) or AAV2-shRNA targeting Pten gene (shPTEN). One week after transduction, neurospheres were collected and subjected to western blot analysis. Beta-actin was probed as a loading control. (B) Representative fluorescence images of GFP-positive neurospheres (green). Scale bars: 100 μm. (C) Quantitative graphs comparing the number and size of neurospheres. (D) Representative images of NSC-derived neurons grown on either growth-permissive (laminin) or growth-inhibitory (CSPG) substrate. Neurites were visualized by immunocytochemistry using anti-βIII tubulin (Magenta) antibody. Scale bars: 50 μm. (E) Quantitative graphs comparing the neurite length of NSC-derived neurons grown on either growth-permissive (laminin) or growth-inhibitory (CSPG) substrate. (F, G) Comparison of NSC survival measured by MTT assay (F) and extent of NSC death measured by far red fluorescence-based cell sorting (G). Control NSCs (GFP) or NSCs with Pten knockdown (shPTEN) rat NSCs were treated with sodium arsenite (NaAsO 2 ) to mimic a degeneration-prone injury environment. NS indicates not significant. (H) Representative snapshot images from the movie clips recorded during the neurosphere motility assay. Neurospheres derived from Control NSCs (GFP) or NSCs with Pten knockdown (shPTEN) rat NSCs were seeded on a 24-well culture plate and time-lapse images were obtained for 48 hours. Each snapshot was taken at the time point marked above. Scale bars: 200 μm. (I) Quantitative graphs comparing the total distance and the velocity of motile neurospheres from each group. Each data point indicates an average of at least four neurospheres from one live imaging session. Data from three live imaging sessions per group were included. Each data point represents an independent culture. * P < 0.05, ** P < 0.01, *** P < 0.001 (unpaired Student’s t -test for C, E, I; two-way analysis of variance followed by post hoc Bonferroni’s multiple comparison test for F and G). CSPG: Chondroitin sulfate proteoglycan; GFP: green fluorescent protein; NSC: neural stem cells.
Figure Legend Snippet: Influence of shRNA-mediated Pten silencing on rat NSCs in vitro . (A) Verification of a partial reduction of PTEN expression and an increase in phosphorylation of S6 ribosomal protein. Cultured rat spinal cord NSCs (Green) were transfected with either AAV2-GFP (GFP) or AAV2-shRNA targeting Pten gene (shPTEN). One week after transduction, neurospheres were collected and subjected to western blot analysis. Beta-actin was probed as a loading control. (B) Representative fluorescence images of GFP-positive neurospheres (green). Scale bars: 100 μm. (C) Quantitative graphs comparing the number and size of neurospheres. (D) Representative images of NSC-derived neurons grown on either growth-permissive (laminin) or growth-inhibitory (CSPG) substrate. Neurites were visualized by immunocytochemistry using anti-βIII tubulin (Magenta) antibody. Scale bars: 50 μm. (E) Quantitative graphs comparing the neurite length of NSC-derived neurons grown on either growth-permissive (laminin) or growth-inhibitory (CSPG) substrate. (F, G) Comparison of NSC survival measured by MTT assay (F) and extent of NSC death measured by far red fluorescence-based cell sorting (G). Control NSCs (GFP) or NSCs with Pten knockdown (shPTEN) rat NSCs were treated with sodium arsenite (NaAsO 2 ) to mimic a degeneration-prone injury environment. NS indicates not significant. (H) Representative snapshot images from the movie clips recorded during the neurosphere motility assay. Neurospheres derived from Control NSCs (GFP) or NSCs with Pten knockdown (shPTEN) rat NSCs were seeded on a 24-well culture plate and time-lapse images were obtained for 48 hours. Each snapshot was taken at the time point marked above. Scale bars: 200 μm. (I) Quantitative graphs comparing the total distance and the velocity of motile neurospheres from each group. Each data point indicates an average of at least four neurospheres from one live imaging session. Data from three live imaging sessions per group were included. Each data point represents an independent culture. * P < 0.05, ** P < 0.01, *** P < 0.001 (unpaired Student’s t -test for C, E, I; two-way analysis of variance followed by post hoc Bonferroni’s multiple comparison test for F and G). CSPG: Chondroitin sulfate proteoglycan; GFP: green fluorescent protein; NSC: neural stem cells.

Techniques Used: shRNA, In Vitro, Expressing, Phospho-proteomics, Cell Culture, Transfection, Transduction, Western Blot, Control, Fluorescence, Derivative Assay, Immunocytochemistry, Comparison, MTT Assay, FACS, Knockdown, Motility Assay, Imaging

Influence of shRNA-mediated Pten silencing on the survival of NSC grafts in vivo. (A, B) Representative images of the longitudinal spinal cord sections from rats transplanted with either control NSCs (GFP, Green) or NSCs with Pten knockdown (shPTEN, green). Animals were sacrificed at 2 (A) and 8 weeks (B) after transplantation. Dotted rectangles in low-magnification images were magnified in the separate inset images below. Scale bars: 200 μm. (C, D) Quantitative graphs of the success rate at 2 and 8 weeks following transplantation. n = 19 (GFP = 9, shPTEN = 10) for the 2-week survival and 19 (GFP = 11, shPTEN = 8) for the 8-week survival experiments. (E, F) Quantitative graphs to compare the number of surviving GFP-positive NSCs and the length of cellular processes between NSCs in GFP and shPTEN groups at 2 (E) and 8 weeks (F). The data from animals determined as failure were not included in these analyses. * P < 0.05, ** P < 0.01 (unpaired Student’s t -test). (G) Representative images of the serotonin (5-HT, red) axons from the brainstem growing into the lesion where NSC grafts (green) were present. Dotted rectangular regions were magnified with orthographic projections on the right side. White arrows indicate 5-HT axonal boutons colocalized with GFP-positive NSCs. Scale bars: 10 m. Each data point in all the graphs represents a single animal. 5-HT: 5-Hydroxytriptamine; GFP: green fluorescent protein; NSC: neural stem cells.
Figure Legend Snippet: Influence of shRNA-mediated Pten silencing on the survival of NSC grafts in vivo. (A, B) Representative images of the longitudinal spinal cord sections from rats transplanted with either control NSCs (GFP, Green) or NSCs with Pten knockdown (shPTEN, green). Animals were sacrificed at 2 (A) and 8 weeks (B) after transplantation. Dotted rectangles in low-magnification images were magnified in the separate inset images below. Scale bars: 200 μm. (C, D) Quantitative graphs of the success rate at 2 and 8 weeks following transplantation. n = 19 (GFP = 9, shPTEN = 10) for the 2-week survival and 19 (GFP = 11, shPTEN = 8) for the 8-week survival experiments. (E, F) Quantitative graphs to compare the number of surviving GFP-positive NSCs and the length of cellular processes between NSCs in GFP and shPTEN groups at 2 (E) and 8 weeks (F). The data from animals determined as failure were not included in these analyses. * P < 0.05, ** P < 0.01 (unpaired Student’s t -test). (G) Representative images of the serotonin (5-HT, red) axons from the brainstem growing into the lesion where NSC grafts (green) were present. Dotted rectangular regions were magnified with orthographic projections on the right side. White arrows indicate 5-HT axonal boutons colocalized with GFP-positive NSCs. Scale bars: 10 m. Each data point in all the graphs represents a single animal. 5-HT: 5-Hydroxytriptamine; GFP: green fluorescent protein; NSC: neural stem cells.

Techniques Used: shRNA, In Vivo, Control, Knockdown, Transplantation Assay

Pten silencing leads to extensive migration of NSCs and elongation of neurites from NSC-derived neurons in vivo . (A, B) Representative images of the longitudinal spinal cord sections showing rostrocaudal migration of grafted NSCs (green) from the epicenter at 2 (A) and 8 weeks (B) after transplantation. Compared to control NSCs (GFP), NSCs with Pten knockdown (shPTEN) exhibited extensive migration, especially at 8 weeks following transplantation. Dotted rectangles in low-magnification images were magnified in the separate inset images below. Scale bars: 200 μm. White arrows indicate the elongated morphology of NSCs at the leading edge of the migration. (C, D) Quantitative graphs comparing the migration distance between control NSCs (GFP) or NSCs with Pten knockdown (shPTEN) at 2 (C) and 8 weeks (D). Only the data from the animals with graft success were included. (E) Immunohistochemical localization of neurofilament positive axons (magenta) growing from grafted NSCs (green) in the spinal cord at 8 weeks after transplantation. Antibodies against medium-chain NFM were used as a marker of axons. White arrows indicate GFP-positive graft-derived processes colocalized with NFM. Scale bars: 50 μm. (F) A quantitative graph of the length of NFM-positive elongated progresses growing from GFP-positive grafts. n = 5 and 6 for control GFP and shPTEN groups. * P < 0.05, ** P < 0.01 (unpaired Student’s t -test). Each data point in all the graphs represents a single animal. GFP: Green fluorescent protein; NFM: neurofilament M; NSC: neural stem cells.
Figure Legend Snippet: Pten silencing leads to extensive migration of NSCs and elongation of neurites from NSC-derived neurons in vivo . (A, B) Representative images of the longitudinal spinal cord sections showing rostrocaudal migration of grafted NSCs (green) from the epicenter at 2 (A) and 8 weeks (B) after transplantation. Compared to control NSCs (GFP), NSCs with Pten knockdown (shPTEN) exhibited extensive migration, especially at 8 weeks following transplantation. Dotted rectangles in low-magnification images were magnified in the separate inset images below. Scale bars: 200 μm. White arrows indicate the elongated morphology of NSCs at the leading edge of the migration. (C, D) Quantitative graphs comparing the migration distance between control NSCs (GFP) or NSCs with Pten knockdown (shPTEN) at 2 (C) and 8 weeks (D). Only the data from the animals with graft success were included. (E) Immunohistochemical localization of neurofilament positive axons (magenta) growing from grafted NSCs (green) in the spinal cord at 8 weeks after transplantation. Antibodies against medium-chain NFM were used as a marker of axons. White arrows indicate GFP-positive graft-derived processes colocalized with NFM. Scale bars: 50 μm. (F) A quantitative graph of the length of NFM-positive elongated progresses growing from GFP-positive grafts. n = 5 and 6 for control GFP and shPTEN groups. * P < 0.05, ** P < 0.01 (unpaired Student’s t -test). Each data point in all the graphs represents a single animal. GFP: Green fluorescent protein; NFM: neurofilament M; NSC: neural stem cells.

Techniques Used: Migration, Derivative Assay, In Vivo, Transplantation Assay, Control, Knockdown, Immunohistochemical staining, Marker



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Influence of <t>Pten</t> gene deletion on mouse NSCs in vitro . (A) Verification of PTEN deletion and enhanced phosphorylation of S6 ribosomal protein. Cultured mouse spinal cord NSCs from Pten fl/fl mouse were transfected with either AAV2-GFP (GFP) or AAV2-Cre-GFP (CRE). One week after transduction, neurospheres were collected and subjected to western blot analysis. Beta-actin was probed as a loading control. (B) Representative fluorescence images of GFP-positive neurospheres (green). Scale bars: 100 μm. (C) Quantitative graphs comparing the number and size of neurospheres. Scale bars: 50 μm. (D) Representative images of NSC-derived neurons grown on either growth-permissive (laminin) or growth-inhibitory (CSPG) substrate. Neurites were visualized by immunocytochemistry using anti-βIII tubulin (magenta) antibody. Scale bars: 50 μm. (E) Quantitative graphs comparing the neurite length of NSC-derived neurons grown on either growth-permissive (laminin) or growth-inhibitory (CSPG) substrate. (F, G) Comparison of NSC survival measured by MTT assay (F) and extent of NSC death measured by far red fluorescence-based cell sorting (G). Control (GFP) or Pten -deleted (CRE) mouse NSCs were treated with NaAsO 2 to mimic a degeneration-prone injury environment. * P < 0.05, ** P < 0.01, *** P < 0.001 (unpaired Student’s t -test for C and E; two-way analysis of variance followed by post hoc Bonferroni’s multiple comparison test for F and G). Each data point represents an independent culture. CSPG: chondroitin sulfate proteoglycan; GFP: green fluorescent protein; NaAsO 2 : sodium arsenite; NSC: neural stem cells; PTEN: phosphatase and tensin homolog.
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Loss of Brg1 and <t>Pten</t> in pancreatic ductal cells induces ITPN and invasive carcinoma formation. ( A ) Schematic illustration of pancreatic ductal cell-specific genetic recombination in HPB mice. Brg1 <t>flox</t> mice and/or Pten flox mice were crossed with Hnf1b CreERT2 mice to generate Hnf1b CreERT2 ( H ), Hnf1b CreERT2 ; Pten flox/flox ( HP ), Hnf1b CreERT2 ; Brg1 flox/flox ( HB ), and Hnf1b CreERT2 ; Pten flox/flox ; Brg1 flox/flox ( HPB ) mice. ( B ) Experimental scheme of tamoxifen-induced genetic recombination. The arrowheads indicate tamoxifen administration. The pancreatic duct was analyzed 42 days after the first tamoxifen administration. ( C ) Macroscopic pancreatic images of H, HB, HP, and HPB mice. HPB mice exhibited a dilated pancreatic duct ( arrowheads ) and an atrophic surrounding pancreas with jaundice, whereas H, HB, HP mice appeared normal. Scale bars, 10 mm. n = 4 per group. ( D ) Representative images of H&E staining of the pancreas from H, HP, HB, and HPB mice. In HPB mice, the ductal cell proliferation led to papillary tumour formation in the pancreatic duct, resembling human ITPN. Scale bars, 200 μm (low magnification) and 50 μm (high magnification). n = 4 per group. ( E ) Histological images of H&E staining of HPB mice. Invasive carcinoma components ( arrowheads ) are observed in HPB mice 42 days after the first tamoxifen administration. Scale bars, 100 μm (low magnification) and 20 μm (high magnification). n = 4. ( F ) Immunohistochemistry of mucin (MUC) staining in HPB mice. The pancreatic ductal cells of HPB mice were negative for MUC2 and MUC5AC, whereas positive for MUC1. Scale bar, 20 μm. n = 4 per group.
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( A ) Schematic diagram of spontaneously developed prostate tumors followed up to 12 months of age in genetically engineered mouse models. Tamoxifen was administered at 8 weeks of age to induce Cre-mediated recombination in prostate epithelial cells. ( B ) Prostate weight analysis in Rcc2 -cKO, <t>Pten</t> -cKO, and Rcc2/Pten -cKO mice compared with scrambled control mice at 6-, 8-, 10-, and 12-months after tamoxifen treatment. ( C ) Kaplan–Meier curves of mPIN incidences up to 40 weeks of age. At 20, 25, 30, 35, and 40 weeks of age, 5 mice per time point were sacrificed for pathological analysis. ( D ) Histological analysis of prostate tissues in Rcc2/Pten -cKO mice up to 12 months after tamoxifen treatment. Scale bars: 500 μm (left), 50 μm (right). ( E ) IHC staining in mouse prostate tissues with anti-mouse PTEN, RCC2, AR, E-cadherin, and Vimentin antibodies in Rcc2 -cKO, Pten -cKO, and Rcc2/Pten -cKO mice compared with scrambled control mice at 6 months after tamoxifen treatment. Scale bars: 200 μm. ( F ) Incidence of lung metastasis in Rcc2/Pten -cKO mice compared with Pten -cKO mice at 12 months after tamoxifen treatment. ( G ) Representative IHC staining of lung metastatic lesions with anti-PSA antibody, confirming the prostatic origin of metastatic tumors. Data are presented as means ± SD. Scale bars in Case 1: 500 μm (left); 200 μm (middle); 50 μm (right). Scale bars in Case 2: 500 μm (left); 100 μm (middle); 50 μm (right). ( B ) P values were determined by 1-way ANOVA with Tukey’s multiple comparisons test. ( C and F ) The log-rank test was used to analyze tumor development or metastasis and compare the distribution of time to event between groups. AR, androgen receptor; cKO, conditional knockout; mPIN, mouse prostatic intraepithelial neoplasia; i.p., intraperitoneal injection; PSA, prostate-specific antigen. All experiments were repeated twice.
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( A ) Schematic diagram of spontaneously developed prostate tumors followed up to 12 months of age in genetically engineered mouse models. Tamoxifen was administered at 8 weeks of age to induce Cre-mediated recombination in prostate epithelial cells. ( B ) Prostate weight analysis in Rcc2 -cKO, <t>Pten</t> -cKO, and Rcc2/Pten -cKO mice compared with scrambled control mice at 6-, 8-, 10-, and 12-months after tamoxifen treatment. ( C ) Kaplan–Meier curves of mPIN incidences up to 40 weeks of age. At 20, 25, 30, 35, and 40 weeks of age, 5 mice per time point were sacrificed for pathological analysis. ( D ) Histological analysis of prostate tissues in Rcc2/Pten -cKO mice up to 12 months after tamoxifen treatment. Scale bars: 500 μm (left), 50 μm (right). ( E ) IHC staining in mouse prostate tissues with anti-mouse PTEN, RCC2, AR, E-cadherin, and Vimentin antibodies in Rcc2 -cKO, Pten -cKO, and Rcc2/Pten -cKO mice compared with scrambled control mice at 6 months after tamoxifen treatment. Scale bars: 200 μm. ( F ) Incidence of lung metastasis in Rcc2/Pten -cKO mice compared with Pten -cKO mice at 12 months after tamoxifen treatment. ( G ) Representative IHC staining of lung metastatic lesions with anti-PSA antibody, confirming the prostatic origin of metastatic tumors. Data are presented as means ± SD. Scale bars in Case 1: 500 μm (left); 200 μm (middle); 50 μm (right). Scale bars in Case 2: 500 μm (left); 100 μm (middle); 50 μm (right). ( B ) P values were determined by 1-way ANOVA with Tukey’s multiple comparisons test. ( C and F ) The log-rank test was used to analyze tumor development or metastasis and compare the distribution of time to event between groups. AR, androgen receptor; cKO, conditional knockout; mPIN, mouse prostatic intraepithelial neoplasia; i.p., intraperitoneal injection; PSA, prostate-specific antigen. All experiments were repeated twice.
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Influence of Pten gene deletion on mouse NSCs in vitro . (A) Verification of PTEN deletion and enhanced phosphorylation of S6 ribosomal protein. Cultured mouse spinal cord NSCs from Pten fl/fl mouse were transfected with either AAV2-GFP (GFP) or AAV2-Cre-GFP (CRE). One week after transduction, neurospheres were collected and subjected to western blot analysis. Beta-actin was probed as a loading control. (B) Representative fluorescence images of GFP-positive neurospheres (green). Scale bars: 100 μm. (C) Quantitative graphs comparing the number and size of neurospheres. Scale bars: 50 μm. (D) Representative images of NSC-derived neurons grown on either growth-permissive (laminin) or growth-inhibitory (CSPG) substrate. Neurites were visualized by immunocytochemistry using anti-βIII tubulin (magenta) antibody. Scale bars: 50 μm. (E) Quantitative graphs comparing the neurite length of NSC-derived neurons grown on either growth-permissive (laminin) or growth-inhibitory (CSPG) substrate. (F, G) Comparison of NSC survival measured by MTT assay (F) and extent of NSC death measured by far red fluorescence-based cell sorting (G). Control (GFP) or Pten -deleted (CRE) mouse NSCs were treated with NaAsO 2 to mimic a degeneration-prone injury environment. * P < 0.05, ** P < 0.01, *** P < 0.001 (unpaired Student’s t -test for C and E; two-way analysis of variance followed by post hoc Bonferroni’s multiple comparison test for F and G). Each data point represents an independent culture. CSPG: chondroitin sulfate proteoglycan; GFP: green fluorescent protein; NaAsO 2 : sodium arsenite; NSC: neural stem cells; PTEN: phosphatase and tensin homolog.

Journal: Neural Regeneration Research

Article Title: Enhancing neural stem cell integration in the injured spinal cord through targeted PTEN modulation

doi: 10.4103/NRR.NRR-D-24-00455

Figure Lengend Snippet: Influence of Pten gene deletion on mouse NSCs in vitro . (A) Verification of PTEN deletion and enhanced phosphorylation of S6 ribosomal protein. Cultured mouse spinal cord NSCs from Pten fl/fl mouse were transfected with either AAV2-GFP (GFP) or AAV2-Cre-GFP (CRE). One week after transduction, neurospheres were collected and subjected to western blot analysis. Beta-actin was probed as a loading control. (B) Representative fluorescence images of GFP-positive neurospheres (green). Scale bars: 100 μm. (C) Quantitative graphs comparing the number and size of neurospheres. Scale bars: 50 μm. (D) Representative images of NSC-derived neurons grown on either growth-permissive (laminin) or growth-inhibitory (CSPG) substrate. Neurites were visualized by immunocytochemistry using anti-βIII tubulin (magenta) antibody. Scale bars: 50 μm. (E) Quantitative graphs comparing the neurite length of NSC-derived neurons grown on either growth-permissive (laminin) or growth-inhibitory (CSPG) substrate. (F, G) Comparison of NSC survival measured by MTT assay (F) and extent of NSC death measured by far red fluorescence-based cell sorting (G). Control (GFP) or Pten -deleted (CRE) mouse NSCs were treated with NaAsO 2 to mimic a degeneration-prone injury environment. * P < 0.05, ** P < 0.01, *** P < 0.001 (unpaired Student’s t -test for C and E; two-way analysis of variance followed by post hoc Bonferroni’s multiple comparison test for F and G). Each data point represents an independent culture. CSPG: chondroitin sulfate proteoglycan; GFP: green fluorescent protein; NaAsO 2 : sodium arsenite; NSC: neural stem cells; PTEN: phosphatase and tensin homolog.

Article Snippet: Pten flox (B6.129S4- Pten tm1Hwu /J, Stock No. 006440, RRID: IMSR_JAX:006440) and ROSA26-STOP-EYFP (B6.129X1- Gt(ROSA)26Sor tm1(EYFP)Cos /J, Stock No. 006148, RRID: IMSR_GPT:T006148) mice lines were purchased from the Jackson Laboratory, Bar Harbor, ME, USA.

Techniques: In Vitro, Phospho-proteomics, Cell Culture, Transfection, Transduction, Western Blot, Control, Fluorescence, Derivative Assay, Immunocytochemistry, Comparison, MTT Assay, FACS

Pten deletion enhances the survival and migration of grafted NSCs in vivo . (A) Longitudinal spinal cord section from NOD/SCID immune-deficient mice transplanted with either mouse spinal cord NSCs from Pten fl/fl mouse transfected with either AAV2-GFP (GFP) or AAV2-Cre-GFP (CRE) NSCs (green). Fluorescence signals were augmented by immunohistochemical staining using an antibody against GFP. Animals were sacrificed at 8 weeks after transplantation. Dotted rectangles in low-magnification images were magnified in the separate inset images below. Arrows indicate elongated cytoplasmic processes from Pten -deleted located far from the injection site. Scale bars: 200 μm. (B–D) Quantitative graphs comparing the number of surviving NSCs (B), areas occupied by GFP-positive grafts (C), and the longest distance of NSCs from the injection site in a rostrocaudal direction (D) between control (GFP) and Pten -deleted (CRE) NCSs. * P < 0.05, ** P < 0.01 (unpaired Student’s t -test). Each data point in all the graphs represents a single animal. GFP: Green fluorescent protein; NSC: neural stem cells.

Journal: Neural Regeneration Research

Article Title: Enhancing neural stem cell integration in the injured spinal cord through targeted PTEN modulation

doi: 10.4103/NRR.NRR-D-24-00455

Figure Lengend Snippet: Pten deletion enhances the survival and migration of grafted NSCs in vivo . (A) Longitudinal spinal cord section from NOD/SCID immune-deficient mice transplanted with either mouse spinal cord NSCs from Pten fl/fl mouse transfected with either AAV2-GFP (GFP) or AAV2-Cre-GFP (CRE) NSCs (green). Fluorescence signals were augmented by immunohistochemical staining using an antibody against GFP. Animals were sacrificed at 8 weeks after transplantation. Dotted rectangles in low-magnification images were magnified in the separate inset images below. Arrows indicate elongated cytoplasmic processes from Pten -deleted located far from the injection site. Scale bars: 200 μm. (B–D) Quantitative graphs comparing the number of surviving NSCs (B), areas occupied by GFP-positive grafts (C), and the longest distance of NSCs from the injection site in a rostrocaudal direction (D) between control (GFP) and Pten -deleted (CRE) NCSs. * P < 0.05, ** P < 0.01 (unpaired Student’s t -test). Each data point in all the graphs represents a single animal. GFP: Green fluorescent protein; NSC: neural stem cells.

Article Snippet: Pten flox (B6.129S4- Pten tm1Hwu /J, Stock No. 006440, RRID: IMSR_JAX:006440) and ROSA26-STOP-EYFP (B6.129X1- Gt(ROSA)26Sor tm1(EYFP)Cos /J, Stock No. 006148, RRID: IMSR_GPT:T006148) mice lines were purchased from the Jackson Laboratory, Bar Harbor, ME, USA.

Techniques: Migration, In Vivo, Transfection, Fluorescence, Immunohistochemical staining, Staining, Transplantation Assay, Injection, Control

Differentiation of NSCs with Pten deletion in injured spinal cord. (A, B) Representative images of the spinal cord sections where immunohistochemical staining of βIII-tubulin (Tuj1, Magenta) (A) and glial fibrillary acidic protein (GFAP, magenta) (B) was performed. Scale bars: 20 μm. (C, D) Quantitative graphs of the percent GFP positive NSCs (green) colocalized with Tuj1 (C) and GFAP (D). n = 6 for each group. Each data point in all the graphs represents a single animal. DAPI: 4′,6-Diamidino-2-phenylindole; GFAP: glial fibrillary acidic protein; GFP: green fluorescent protein; NSC: neural stem cells.

Journal: Neural Regeneration Research

Article Title: Enhancing neural stem cell integration in the injured spinal cord through targeted PTEN modulation

doi: 10.4103/NRR.NRR-D-24-00455

Figure Lengend Snippet: Differentiation of NSCs with Pten deletion in injured spinal cord. (A, B) Representative images of the spinal cord sections where immunohistochemical staining of βIII-tubulin (Tuj1, Magenta) (A) and glial fibrillary acidic protein (GFAP, magenta) (B) was performed. Scale bars: 20 μm. (C, D) Quantitative graphs of the percent GFP positive NSCs (green) colocalized with Tuj1 (C) and GFAP (D). n = 6 for each group. Each data point in all the graphs represents a single animal. DAPI: 4′,6-Diamidino-2-phenylindole; GFAP: glial fibrillary acidic protein; GFP: green fluorescent protein; NSC: neural stem cells.

Article Snippet: Pten flox (B6.129S4- Pten tm1Hwu /J, Stock No. 006440, RRID: IMSR_JAX:006440) and ROSA26-STOP-EYFP (B6.129X1- Gt(ROSA)26Sor tm1(EYFP)Cos /J, Stock No. 006148, RRID: IMSR_GPT:T006148) mice lines were purchased from the Jackson Laboratory, Bar Harbor, ME, USA.

Techniques: Immunohistochemical staining, Staining

Influence of shRNA-mediated Pten silencing on rat NSCs in vitro . (A) Verification of a partial reduction of PTEN expression and an increase in phosphorylation of S6 ribosomal protein. Cultured rat spinal cord NSCs (Green) were transfected with either AAV2-GFP (GFP) or AAV2-shRNA targeting Pten gene (shPTEN). One week after transduction, neurospheres were collected and subjected to western blot analysis. Beta-actin was probed as a loading control. (B) Representative fluorescence images of GFP-positive neurospheres (green). Scale bars: 100 μm. (C) Quantitative graphs comparing the number and size of neurospheres. (D) Representative images of NSC-derived neurons grown on either growth-permissive (laminin) or growth-inhibitory (CSPG) substrate. Neurites were visualized by immunocytochemistry using anti-βIII tubulin (Magenta) antibody. Scale bars: 50 μm. (E) Quantitative graphs comparing the neurite length of NSC-derived neurons grown on either growth-permissive (laminin) or growth-inhibitory (CSPG) substrate. (F, G) Comparison of NSC survival measured by MTT assay (F) and extent of NSC death measured by far red fluorescence-based cell sorting (G). Control NSCs (GFP) or NSCs with Pten knockdown (shPTEN) rat NSCs were treated with sodium arsenite (NaAsO 2 ) to mimic a degeneration-prone injury environment. NS indicates not significant. (H) Representative snapshot images from the movie clips recorded during the neurosphere motility assay. Neurospheres derived from Control NSCs (GFP) or NSCs with Pten knockdown (shPTEN) rat NSCs were seeded on a 24-well culture plate and time-lapse images were obtained for 48 hours. Each snapshot was taken at the time point marked above. Scale bars: 200 μm. (I) Quantitative graphs comparing the total distance and the velocity of motile neurospheres from each group. Each data point indicates an average of at least four neurospheres from one live imaging session. Data from three live imaging sessions per group were included. Each data point represents an independent culture. * P < 0.05, ** P < 0.01, *** P < 0.001 (unpaired Student’s t -test for C, E, I; two-way analysis of variance followed by post hoc Bonferroni’s multiple comparison test for F and G). CSPG: Chondroitin sulfate proteoglycan; GFP: green fluorescent protein; NSC: neural stem cells.

Journal: Neural Regeneration Research

Article Title: Enhancing neural stem cell integration in the injured spinal cord through targeted PTEN modulation

doi: 10.4103/NRR.NRR-D-24-00455

Figure Lengend Snippet: Influence of shRNA-mediated Pten silencing on rat NSCs in vitro . (A) Verification of a partial reduction of PTEN expression and an increase in phosphorylation of S6 ribosomal protein. Cultured rat spinal cord NSCs (Green) were transfected with either AAV2-GFP (GFP) or AAV2-shRNA targeting Pten gene (shPTEN). One week after transduction, neurospheres were collected and subjected to western blot analysis. Beta-actin was probed as a loading control. (B) Representative fluorescence images of GFP-positive neurospheres (green). Scale bars: 100 μm. (C) Quantitative graphs comparing the number and size of neurospheres. (D) Representative images of NSC-derived neurons grown on either growth-permissive (laminin) or growth-inhibitory (CSPG) substrate. Neurites were visualized by immunocytochemistry using anti-βIII tubulin (Magenta) antibody. Scale bars: 50 μm. (E) Quantitative graphs comparing the neurite length of NSC-derived neurons grown on either growth-permissive (laminin) or growth-inhibitory (CSPG) substrate. (F, G) Comparison of NSC survival measured by MTT assay (F) and extent of NSC death measured by far red fluorescence-based cell sorting (G). Control NSCs (GFP) or NSCs with Pten knockdown (shPTEN) rat NSCs were treated with sodium arsenite (NaAsO 2 ) to mimic a degeneration-prone injury environment. NS indicates not significant. (H) Representative snapshot images from the movie clips recorded during the neurosphere motility assay. Neurospheres derived from Control NSCs (GFP) or NSCs with Pten knockdown (shPTEN) rat NSCs were seeded on a 24-well culture plate and time-lapse images were obtained for 48 hours. Each snapshot was taken at the time point marked above. Scale bars: 200 μm. (I) Quantitative graphs comparing the total distance and the velocity of motile neurospheres from each group. Each data point indicates an average of at least four neurospheres from one live imaging session. Data from three live imaging sessions per group were included. Each data point represents an independent culture. * P < 0.05, ** P < 0.01, *** P < 0.001 (unpaired Student’s t -test for C, E, I; two-way analysis of variance followed by post hoc Bonferroni’s multiple comparison test for F and G). CSPG: Chondroitin sulfate proteoglycan; GFP: green fluorescent protein; NSC: neural stem cells.

Article Snippet: Pten flox (B6.129S4- Pten tm1Hwu /J, Stock No. 006440, RRID: IMSR_JAX:006440) and ROSA26-STOP-EYFP (B6.129X1- Gt(ROSA)26Sor tm1(EYFP)Cos /J, Stock No. 006148, RRID: IMSR_GPT:T006148) mice lines were purchased from the Jackson Laboratory, Bar Harbor, ME, USA.

Techniques: shRNA, In Vitro, Expressing, Phospho-proteomics, Cell Culture, Transfection, Transduction, Western Blot, Control, Fluorescence, Derivative Assay, Immunocytochemistry, Comparison, MTT Assay, FACS, Knockdown, Motility Assay, Imaging

Influence of shRNA-mediated Pten silencing on the survival of NSC grafts in vivo. (A, B) Representative images of the longitudinal spinal cord sections from rats transplanted with either control NSCs (GFP, Green) or NSCs with Pten knockdown (shPTEN, green). Animals were sacrificed at 2 (A) and 8 weeks (B) after transplantation. Dotted rectangles in low-magnification images were magnified in the separate inset images below. Scale bars: 200 μm. (C, D) Quantitative graphs of the success rate at 2 and 8 weeks following transplantation. n = 19 (GFP = 9, shPTEN = 10) for the 2-week survival and 19 (GFP = 11, shPTEN = 8) for the 8-week survival experiments. (E, F) Quantitative graphs to compare the number of surviving GFP-positive NSCs and the length of cellular processes between NSCs in GFP and shPTEN groups at 2 (E) and 8 weeks (F). The data from animals determined as failure were not included in these analyses. * P < 0.05, ** P < 0.01 (unpaired Student’s t -test). (G) Representative images of the serotonin (5-HT, red) axons from the brainstem growing into the lesion where NSC grafts (green) were present. Dotted rectangular regions were magnified with orthographic projections on the right side. White arrows indicate 5-HT axonal boutons colocalized with GFP-positive NSCs. Scale bars: 10 m. Each data point in all the graphs represents a single animal. 5-HT: 5-Hydroxytriptamine; GFP: green fluorescent protein; NSC: neural stem cells.

Journal: Neural Regeneration Research

Article Title: Enhancing neural stem cell integration in the injured spinal cord through targeted PTEN modulation

doi: 10.4103/NRR.NRR-D-24-00455

Figure Lengend Snippet: Influence of shRNA-mediated Pten silencing on the survival of NSC grafts in vivo. (A, B) Representative images of the longitudinal spinal cord sections from rats transplanted with either control NSCs (GFP, Green) or NSCs with Pten knockdown (shPTEN, green). Animals were sacrificed at 2 (A) and 8 weeks (B) after transplantation. Dotted rectangles in low-magnification images were magnified in the separate inset images below. Scale bars: 200 μm. (C, D) Quantitative graphs of the success rate at 2 and 8 weeks following transplantation. n = 19 (GFP = 9, shPTEN = 10) for the 2-week survival and 19 (GFP = 11, shPTEN = 8) for the 8-week survival experiments. (E, F) Quantitative graphs to compare the number of surviving GFP-positive NSCs and the length of cellular processes between NSCs in GFP and shPTEN groups at 2 (E) and 8 weeks (F). The data from animals determined as failure were not included in these analyses. * P < 0.05, ** P < 0.01 (unpaired Student’s t -test). (G) Representative images of the serotonin (5-HT, red) axons from the brainstem growing into the lesion where NSC grafts (green) were present. Dotted rectangular regions were magnified with orthographic projections on the right side. White arrows indicate 5-HT axonal boutons colocalized with GFP-positive NSCs. Scale bars: 10 m. Each data point in all the graphs represents a single animal. 5-HT: 5-Hydroxytriptamine; GFP: green fluorescent protein; NSC: neural stem cells.

Article Snippet: Pten flox (B6.129S4- Pten tm1Hwu /J, Stock No. 006440, RRID: IMSR_JAX:006440) and ROSA26-STOP-EYFP (B6.129X1- Gt(ROSA)26Sor tm1(EYFP)Cos /J, Stock No. 006148, RRID: IMSR_GPT:T006148) mice lines were purchased from the Jackson Laboratory, Bar Harbor, ME, USA.

Techniques: shRNA, In Vivo, Control, Knockdown, Transplantation Assay

Pten silencing leads to extensive migration of NSCs and elongation of neurites from NSC-derived neurons in vivo . (A, B) Representative images of the longitudinal spinal cord sections showing rostrocaudal migration of grafted NSCs (green) from the epicenter at 2 (A) and 8 weeks (B) after transplantation. Compared to control NSCs (GFP), NSCs with Pten knockdown (shPTEN) exhibited extensive migration, especially at 8 weeks following transplantation. Dotted rectangles in low-magnification images were magnified in the separate inset images below. Scale bars: 200 μm. White arrows indicate the elongated morphology of NSCs at the leading edge of the migration. (C, D) Quantitative graphs comparing the migration distance between control NSCs (GFP) or NSCs with Pten knockdown (shPTEN) at 2 (C) and 8 weeks (D). Only the data from the animals with graft success were included. (E) Immunohistochemical localization of neurofilament positive axons (magenta) growing from grafted NSCs (green) in the spinal cord at 8 weeks after transplantation. Antibodies against medium-chain NFM were used as a marker of axons. White arrows indicate GFP-positive graft-derived processes colocalized with NFM. Scale bars: 50 μm. (F) A quantitative graph of the length of NFM-positive elongated progresses growing from GFP-positive grafts. n = 5 and 6 for control GFP and shPTEN groups. * P < 0.05, ** P < 0.01 (unpaired Student’s t -test). Each data point in all the graphs represents a single animal. GFP: Green fluorescent protein; NFM: neurofilament M; NSC: neural stem cells.

Journal: Neural Regeneration Research

Article Title: Enhancing neural stem cell integration in the injured spinal cord through targeted PTEN modulation

doi: 10.4103/NRR.NRR-D-24-00455

Figure Lengend Snippet: Pten silencing leads to extensive migration of NSCs and elongation of neurites from NSC-derived neurons in vivo . (A, B) Representative images of the longitudinal spinal cord sections showing rostrocaudal migration of grafted NSCs (green) from the epicenter at 2 (A) and 8 weeks (B) after transplantation. Compared to control NSCs (GFP), NSCs with Pten knockdown (shPTEN) exhibited extensive migration, especially at 8 weeks following transplantation. Dotted rectangles in low-magnification images were magnified in the separate inset images below. Scale bars: 200 μm. White arrows indicate the elongated morphology of NSCs at the leading edge of the migration. (C, D) Quantitative graphs comparing the migration distance between control NSCs (GFP) or NSCs with Pten knockdown (shPTEN) at 2 (C) and 8 weeks (D). Only the data from the animals with graft success were included. (E) Immunohistochemical localization of neurofilament positive axons (magenta) growing from grafted NSCs (green) in the spinal cord at 8 weeks after transplantation. Antibodies against medium-chain NFM were used as a marker of axons. White arrows indicate GFP-positive graft-derived processes colocalized with NFM. Scale bars: 50 μm. (F) A quantitative graph of the length of NFM-positive elongated progresses growing from GFP-positive grafts. n = 5 and 6 for control GFP and shPTEN groups. * P < 0.05, ** P < 0.01 (unpaired Student’s t -test). Each data point in all the graphs represents a single animal. GFP: Green fluorescent protein; NFM: neurofilament M; NSC: neural stem cells.

Article Snippet: Pten flox (B6.129S4- Pten tm1Hwu /J, Stock No. 006440, RRID: IMSR_JAX:006440) and ROSA26-STOP-EYFP (B6.129X1- Gt(ROSA)26Sor tm1(EYFP)Cos /J, Stock No. 006148, RRID: IMSR_GPT:T006148) mice lines were purchased from the Jackson Laboratory, Bar Harbor, ME, USA.

Techniques: Migration, Derivative Assay, In Vivo, Transplantation Assay, Control, Knockdown, Immunohistochemical staining, Marker

Loss of Brg1 and Pten in pancreatic ductal cells induces ITPN and invasive carcinoma formation. ( A ) Schematic illustration of pancreatic ductal cell-specific genetic recombination in HPB mice. Brg1 flox mice and/or Pten flox mice were crossed with Hnf1b CreERT2 mice to generate Hnf1b CreERT2 ( H ), Hnf1b CreERT2 ; Pten flox/flox ( HP ), Hnf1b CreERT2 ; Brg1 flox/flox ( HB ), and Hnf1b CreERT2 ; Pten flox/flox ; Brg1 flox/flox ( HPB ) mice. ( B ) Experimental scheme of tamoxifen-induced genetic recombination. The arrowheads indicate tamoxifen administration. The pancreatic duct was analyzed 42 days after the first tamoxifen administration. ( C ) Macroscopic pancreatic images of H, HB, HP, and HPB mice. HPB mice exhibited a dilated pancreatic duct ( arrowheads ) and an atrophic surrounding pancreas with jaundice, whereas H, HB, HP mice appeared normal. Scale bars, 10 mm. n = 4 per group. ( D ) Representative images of H&E staining of the pancreas from H, HP, HB, and HPB mice. In HPB mice, the ductal cell proliferation led to papillary tumour formation in the pancreatic duct, resembling human ITPN. Scale bars, 200 μm (low magnification) and 50 μm (high magnification). n = 4 per group. ( E ) Histological images of H&E staining of HPB mice. Invasive carcinoma components ( arrowheads ) are observed in HPB mice 42 days after the first tamoxifen administration. Scale bars, 100 μm (low magnification) and 20 μm (high magnification). n = 4. ( F ) Immunohistochemistry of mucin (MUC) staining in HPB mice. The pancreatic ductal cells of HPB mice were negative for MUC2 and MUC5AC, whereas positive for MUC1. Scale bar, 20 μm. n = 4 per group.

Journal: Cellular and Molecular Gastroenterology and Hepatology

Article Title: Loss of Brg1 and Pten in Pancreatic Ductal Cells Forms Intraductal Tubulopapillary Neoplasm via the YAP/TAZ Pathway

doi: 10.1016/j.jcmgh.2025.101639

Figure Lengend Snippet: Loss of Brg1 and Pten in pancreatic ductal cells induces ITPN and invasive carcinoma formation. ( A ) Schematic illustration of pancreatic ductal cell-specific genetic recombination in HPB mice. Brg1 flox mice and/or Pten flox mice were crossed with Hnf1b CreERT2 mice to generate Hnf1b CreERT2 ( H ), Hnf1b CreERT2 ; Pten flox/flox ( HP ), Hnf1b CreERT2 ; Brg1 flox/flox ( HB ), and Hnf1b CreERT2 ; Pten flox/flox ; Brg1 flox/flox ( HPB ) mice. ( B ) Experimental scheme of tamoxifen-induced genetic recombination. The arrowheads indicate tamoxifen administration. The pancreatic duct was analyzed 42 days after the first tamoxifen administration. ( C ) Macroscopic pancreatic images of H, HB, HP, and HPB mice. HPB mice exhibited a dilated pancreatic duct ( arrowheads ) and an atrophic surrounding pancreas with jaundice, whereas H, HB, HP mice appeared normal. Scale bars, 10 mm. n = 4 per group. ( D ) Representative images of H&E staining of the pancreas from H, HP, HB, and HPB mice. In HPB mice, the ductal cell proliferation led to papillary tumour formation in the pancreatic duct, resembling human ITPN. Scale bars, 200 μm (low magnification) and 50 μm (high magnification). n = 4 per group. ( E ) Histological images of H&E staining of HPB mice. Invasive carcinoma components ( arrowheads ) are observed in HPB mice 42 days after the first tamoxifen administration. Scale bars, 100 μm (low magnification) and 20 μm (high magnification). n = 4. ( F ) Immunohistochemistry of mucin (MUC) staining in HPB mice. The pancreatic ductal cells of HPB mice were negative for MUC2 and MUC5AC, whereas positive for MUC1. Scale bar, 20 μm. n = 4 per group.

Article Snippet: Experimental animals were generated by crossing Hnf1b-CreERT2 mice (a gift from Jorge Ferrer, Imperial College), Brg1 flox mice, and Pten flox mice (Stock No. 004597; Jackson Laboratory).

Techniques: Staining, Immunohistochemistry

( A ) Schematic diagram of spontaneously developed prostate tumors followed up to 12 months of age in genetically engineered mouse models. Tamoxifen was administered at 8 weeks of age to induce Cre-mediated recombination in prostate epithelial cells. ( B ) Prostate weight analysis in Rcc2 -cKO, Pten -cKO, and Rcc2/Pten -cKO mice compared with scrambled control mice at 6-, 8-, 10-, and 12-months after tamoxifen treatment. ( C ) Kaplan–Meier curves of mPIN incidences up to 40 weeks of age. At 20, 25, 30, 35, and 40 weeks of age, 5 mice per time point were sacrificed for pathological analysis. ( D ) Histological analysis of prostate tissues in Rcc2/Pten -cKO mice up to 12 months after tamoxifen treatment. Scale bars: 500 μm (left), 50 μm (right). ( E ) IHC staining in mouse prostate tissues with anti-mouse PTEN, RCC2, AR, E-cadherin, and Vimentin antibodies in Rcc2 -cKO, Pten -cKO, and Rcc2/Pten -cKO mice compared with scrambled control mice at 6 months after tamoxifen treatment. Scale bars: 200 μm. ( F ) Incidence of lung metastasis in Rcc2/Pten -cKO mice compared with Pten -cKO mice at 12 months after tamoxifen treatment. ( G ) Representative IHC staining of lung metastatic lesions with anti-PSA antibody, confirming the prostatic origin of metastatic tumors. Data are presented as means ± SD. Scale bars in Case 1: 500 μm (left); 200 μm (middle); 50 μm (right). Scale bars in Case 2: 500 μm (left); 100 μm (middle); 50 μm (right). ( B ) P values were determined by 1-way ANOVA with Tukey’s multiple comparisons test. ( C and F ) The log-rank test was used to analyze tumor development or metastasis and compare the distribution of time to event between groups. AR, androgen receptor; cKO, conditional knockout; mPIN, mouse prostatic intraepithelial neoplasia; i.p., intraperitoneal injection; PSA, prostate-specific antigen. All experiments were repeated twice.

Journal: The Journal of Clinical Investigation

Article Title: RCC2 and CD24 cooperate to modulate prostate cancer progression through vimentin ubiquitination and β -catenin activation

doi: 10.1172/JCI192883

Figure Lengend Snippet: ( A ) Schematic diagram of spontaneously developed prostate tumors followed up to 12 months of age in genetically engineered mouse models. Tamoxifen was administered at 8 weeks of age to induce Cre-mediated recombination in prostate epithelial cells. ( B ) Prostate weight analysis in Rcc2 -cKO, Pten -cKO, and Rcc2/Pten -cKO mice compared with scrambled control mice at 6-, 8-, 10-, and 12-months after tamoxifen treatment. ( C ) Kaplan–Meier curves of mPIN incidences up to 40 weeks of age. At 20, 25, 30, 35, and 40 weeks of age, 5 mice per time point were sacrificed for pathological analysis. ( D ) Histological analysis of prostate tissues in Rcc2/Pten -cKO mice up to 12 months after tamoxifen treatment. Scale bars: 500 μm (left), 50 μm (right). ( E ) IHC staining in mouse prostate tissues with anti-mouse PTEN, RCC2, AR, E-cadherin, and Vimentin antibodies in Rcc2 -cKO, Pten -cKO, and Rcc2/Pten -cKO mice compared with scrambled control mice at 6 months after tamoxifen treatment. Scale bars: 200 μm. ( F ) Incidence of lung metastasis in Rcc2/Pten -cKO mice compared with Pten -cKO mice at 12 months after tamoxifen treatment. ( G ) Representative IHC staining of lung metastatic lesions with anti-PSA antibody, confirming the prostatic origin of metastatic tumors. Data are presented as means ± SD. Scale bars in Case 1: 500 μm (left); 200 μm (middle); 50 μm (right). Scale bars in Case 2: 500 μm (left); 100 μm (middle); 50 μm (right). ( B ) P values were determined by 1-way ANOVA with Tukey’s multiple comparisons test. ( C and F ) The log-rank test was used to analyze tumor development or metastasis and compare the distribution of time to event between groups. AR, androgen receptor; cKO, conditional knockout; mPIN, mouse prostatic intraepithelial neoplasia; i.p., intraperitoneal injection; PSA, prostate-specific antigen. All experiments were repeated twice.

Article Snippet: To generate genetically engineered mouse models, Rcc2 and Pten floxed mice (The Jackson Laboratory) were crossed with Nkx3-1 CreERT2 knock-in mice (National Cancer Institute Mouse Model Deposit) that express Cre recombinase under tamoxifen-inducible control on a C57BL/6 background.

Techniques: Control, Immunohistochemistry, Knock-Out, Injection