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rabbit pab against bcl 2β  (Bioss)


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    Structured Review

    Bioss rabbit pab against bcl 2β
    Venetoclax promoted <t>BCL-2β</t> generation and BCL-2α/BCL-2β protein degradation in both patients’ and healthy donor (HD) PBMCs. A Schematic of the BCL-2 genomic structure with 3 exons (top) and the mRNA and protein structures of the two major BCL-2 splice isoforms, i.e., BCL-2α and BCL-2β. Although both BCL-2α and BCL-2β have 4 BH (BCL-2 homology) domains, BCL-2α includes a C-terminal transmembrane (TM) domain needed for its anti-apoptotic function at the mitochondria whereas BCL-2β lacks this domain making it a shorter, mostly cytosolic protein lacking anti-apoptotic activity. To detect BCL-2β mRNA specifically, we designed primers targeting the unique exon-exon junction only present in the BCL-2β transcript (arrows). B Automated WES analysis of venetoclax-induced BCL-2β generation and BCL-2 degradation in PBMCs from 3 trial patients (Pt), who also showed PSA responses (see Supplementary Fig. S2B). PBMCs were isolated from whole blood collected at pretreatment (Pre TX), D1 of the indicated cycles (C) or end of treatment (EoT). Note patient-specific changes in BCL-2α/β protein levels. C In healthy donor (HD) PBMCs, Venetoclax (ABT-199, 1 µM) caused time-dependent changes in BCL-2β mRNA levels. Briefly, the BCL-2β mRNA levels increased significantly at 2–4 h post-treatment (**p < 0.01) with a trend toward increase at 8 h but reduced at 24 h post treatment. Each dot represents an independent HD PBMC treated with ABT-199 (i.e., biological replicates) and the results were presented as fold change (FC) over the untreated samples (0 h). D Venetoclax (Ven) induced dynamic and donor-dependent BCL-2β and BCL-2α protein changes in HD PBMCs. In HD#1 PBMCs, venetoclax caused rapid (i.e., within 2 h) and persistent (up to 8 h) induction of BCL-2β with concomitant loss of BCL-2α leading to significant apoptosis (i.e., elevated Cl-caspase-3) such that even the loading control proteins β-actin and GAPDH were decreased/lost by 8 h. In HD#2 PBMCs, venetoclax increased BCL-2β without significant changes in BCL-2α and increased Cl-caspase within 4–8 h. In HD#3 PBMCs, venetoclax caused BCL-2β upregulation (without significant changes in BCL-2α) and increased apoptosis at around 2 h post treatment. Shown at the bottom is an image of the gel stained by Swift stain (as another loading control). Note that low levels of Cl-caspase-3 were observed in untreated (i.e., 0 h) PBMCs due to stress from the isolation process. E Quantification of BCL-2β protein levels (left) and BCL-2β/BCL-2α ratio as fold changes (FC; right) in HD PBMCs treated with venetoclax (i.e., ABT-199). Results represent the aggregated data from independent experiments (n = 3–7) exemplified in D. F Western blotting showing that both BCL-2α and BCL-2β proteins were lost in HD PBMCs at ≥ 24 h post venetoclax (Ven; 1 µM ) treatment.
    Rabbit Pab Against Bcl 2β, supplied by Bioss, used in various techniques. Bioz Stars score: 90/100, based on 3 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/rabbit+antibodies+against+bcl+2/Bcl-2+beta+Polyclonal+Antibody/pmc12662848-155-18-22
    Average 90 stars, based on 3 article reviews
    rabbit pab against bcl 2β - by Bioz Stars, 2026-09
    90/100 stars

    Images

    1) Product Images from "Phase Ib study of enzalutamide with venetoclax in patients with metastatic castration-resistant prostate cancer"

    Article Title: Phase Ib study of enzalutamide with venetoclax in patients with metastatic castration-resistant prostate cancer

    Journal: Cancer Chemotherapy and Pharmacology

    doi: 10.1007/s00280-025-04840-2

    Venetoclax promoted BCL-2β generation and BCL-2α/BCL-2β protein degradation in both patients’ and healthy donor (HD) PBMCs. A Schematic of the BCL-2 genomic structure with 3 exons (top) and the mRNA and protein structures of the two major BCL-2 splice isoforms, i.e., BCL-2α and BCL-2β. Although both BCL-2α and BCL-2β have 4 BH (BCL-2 homology) domains, BCL-2α includes a C-terminal transmembrane (TM) domain needed for its anti-apoptotic function at the mitochondria whereas BCL-2β lacks this domain making it a shorter, mostly cytosolic protein lacking anti-apoptotic activity. To detect BCL-2β mRNA specifically, we designed primers targeting the unique exon-exon junction only present in the BCL-2β transcript (arrows). B Automated WES analysis of venetoclax-induced BCL-2β generation and BCL-2 degradation in PBMCs from 3 trial patients (Pt), who also showed PSA responses (see Supplementary Fig. S2B). PBMCs were isolated from whole blood collected at pretreatment (Pre TX), D1 of the indicated cycles (C) or end of treatment (EoT). Note patient-specific changes in BCL-2α/β protein levels. C In healthy donor (HD) PBMCs, Venetoclax (ABT-199, 1 µM) caused time-dependent changes in BCL-2β mRNA levels. Briefly, the BCL-2β mRNA levels increased significantly at 2–4 h post-treatment (**p < 0.01) with a trend toward increase at 8 h but reduced at 24 h post treatment. Each dot represents an independent HD PBMC treated with ABT-199 (i.e., biological replicates) and the results were presented as fold change (FC) over the untreated samples (0 h). D Venetoclax (Ven) induced dynamic and donor-dependent BCL-2β and BCL-2α protein changes in HD PBMCs. In HD#1 PBMCs, venetoclax caused rapid (i.e., within 2 h) and persistent (up to 8 h) induction of BCL-2β with concomitant loss of BCL-2α leading to significant apoptosis (i.e., elevated Cl-caspase-3) such that even the loading control proteins β-actin and GAPDH were decreased/lost by 8 h. In HD#2 PBMCs, venetoclax increased BCL-2β without significant changes in BCL-2α and increased Cl-caspase within 4–8 h. In HD#3 PBMCs, venetoclax caused BCL-2β upregulation (without significant changes in BCL-2α) and increased apoptosis at around 2 h post treatment. Shown at the bottom is an image of the gel stained by Swift stain (as another loading control). Note that low levels of Cl-caspase-3 were observed in untreated (i.e., 0 h) PBMCs due to stress from the isolation process. E Quantification of BCL-2β protein levels (left) and BCL-2β/BCL-2α ratio as fold changes (FC; right) in HD PBMCs treated with venetoclax (i.e., ABT-199). Results represent the aggregated data from independent experiments (n = 3–7) exemplified in D. F Western blotting showing that both BCL-2α and BCL-2β proteins were lost in HD PBMCs at ≥ 24 h post venetoclax (Ven; 1 µM ) treatment.
    Figure Legend Snippet: Venetoclax promoted BCL-2β generation and BCL-2α/BCL-2β protein degradation in both patients’ and healthy donor (HD) PBMCs. A Schematic of the BCL-2 genomic structure with 3 exons (top) and the mRNA and protein structures of the two major BCL-2 splice isoforms, i.e., BCL-2α and BCL-2β. Although both BCL-2α and BCL-2β have 4 BH (BCL-2 homology) domains, BCL-2α includes a C-terminal transmembrane (TM) domain needed for its anti-apoptotic function at the mitochondria whereas BCL-2β lacks this domain making it a shorter, mostly cytosolic protein lacking anti-apoptotic activity. To detect BCL-2β mRNA specifically, we designed primers targeting the unique exon-exon junction only present in the BCL-2β transcript (arrows). B Automated WES analysis of venetoclax-induced BCL-2β generation and BCL-2 degradation in PBMCs from 3 trial patients (Pt), who also showed PSA responses (see Supplementary Fig. S2B). PBMCs were isolated from whole blood collected at pretreatment (Pre TX), D1 of the indicated cycles (C) or end of treatment (EoT). Note patient-specific changes in BCL-2α/β protein levels. C In healthy donor (HD) PBMCs, Venetoclax (ABT-199, 1 µM) caused time-dependent changes in BCL-2β mRNA levels. Briefly, the BCL-2β mRNA levels increased significantly at 2–4 h post-treatment (**p < 0.01) with a trend toward increase at 8 h but reduced at 24 h post treatment. Each dot represents an independent HD PBMC treated with ABT-199 (i.e., biological replicates) and the results were presented as fold change (FC) over the untreated samples (0 h). D Venetoclax (Ven) induced dynamic and donor-dependent BCL-2β and BCL-2α protein changes in HD PBMCs. In HD#1 PBMCs, venetoclax caused rapid (i.e., within 2 h) and persistent (up to 8 h) induction of BCL-2β with concomitant loss of BCL-2α leading to significant apoptosis (i.e., elevated Cl-caspase-3) such that even the loading control proteins β-actin and GAPDH were decreased/lost by 8 h. In HD#2 PBMCs, venetoclax increased BCL-2β without significant changes in BCL-2α and increased Cl-caspase within 4–8 h. In HD#3 PBMCs, venetoclax caused BCL-2β upregulation (without significant changes in BCL-2α) and increased apoptosis at around 2 h post treatment. Shown at the bottom is an image of the gel stained by Swift stain (as another loading control). Note that low levels of Cl-caspase-3 were observed in untreated (i.e., 0 h) PBMCs due to stress from the isolation process. E Quantification of BCL-2β protein levels (left) and BCL-2β/BCL-2α ratio as fold changes (FC; right) in HD PBMCs treated with venetoclax (i.e., ABT-199). Results represent the aggregated data from independent experiments (n = 3–7) exemplified in D. F Western blotting showing that both BCL-2α and BCL-2β proteins were lost in HD PBMCs at ≥ 24 h post venetoclax (Ven; 1 µM ) treatment.

    Techniques Used: Activity Assay, Isolation, Control, Staining, Western Blot

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    Saline:

    Article Title: Effects of compound 21, a non-peptide angiotensin II type 2 receptor agonist, on general anesthesia-induced cerebral injury in neonatal rats
    Article Snippet: .. The membranes were blocked with Tris-buffered saline containing 0.1% Tween 20 and 5% fat-free milk for 2 h at room temperature, and were subsequently incubated overnight at 4°C with rabbit antibodies against Bcl-2 (1:1,500; cat. no. bs-0032R; BIOSS, Beijing, China) and GAPDH (cat. no. A007; 1:1,000; ABclonal Biotech Co., Ltd., Woburn, MA, USA). .. Following this, membranes were incubated with peroxidase-conjugated goat anti-rabbit immunoglobulin G (1:5,000; cat. no. TA140003; OriGene Technologies, Inc., Beijing, China) for 2 h at room temperature.

    Article Title: Effects of compound 21, a non‑peptide angiotensin II type 2 receptor agonist, on general anesthesia‑induced cerebral injury in neonatal rats.
    Article Snippet: .. The membranes were blocked with Tris-buffered saline containing 0.1% Tween 20 and 5% fat-free milk for 2 h at room temperature, and were subsequently incubated overnight at 4 ̊C with rabbit antibodies against Bcl-2 (1:1,500; cat. no. bs-0032R; BIOSS, Beijing, China) and GAPDH (cat. no. A007; 1:1,000; ABclonal Biotech Co., Ltd., Woburn, MA, USA). .. Following this, membranes were incubated with peroxidase-conjugated goat anti-rabbit immunoglobulin G (1:5,000; cat. no. TA140003; OriGene Figure 1.

    Incubation:

    Article Title: Effects of compound 21, a non-peptide angiotensin II type 2 receptor agonist, on general anesthesia-induced cerebral injury in neonatal rats
    Article Snippet: .. The membranes were blocked with Tris-buffered saline containing 0.1% Tween 20 and 5% fat-free milk for 2 h at room temperature, and were subsequently incubated overnight at 4°C with rabbit antibodies against Bcl-2 (1:1,500; cat. no. bs-0032R; BIOSS, Beijing, China) and GAPDH (cat. no. A007; 1:1,000; ABclonal Biotech Co., Ltd., Woburn, MA, USA). .. Following this, membranes were incubated with peroxidase-conjugated goat anti-rabbit immunoglobulin G (1:5,000; cat. no. TA140003; OriGene Technologies, Inc., Beijing, China) for 2 h at room temperature.

    Article Title: Effects of compound 21, a non‑peptide angiotensin II type 2 receptor agonist, on general anesthesia‑induced cerebral injury in neonatal rats.
    Article Snippet: .. The membranes were blocked with Tris-buffered saline containing 0.1% Tween 20 and 5% fat-free milk for 2 h at room temperature, and were subsequently incubated overnight at 4 ̊C with rabbit antibodies against Bcl-2 (1:1,500; cat. no. bs-0032R; BIOSS, Beijing, China) and GAPDH (cat. no. A007; 1:1,000; ABclonal Biotech Co., Ltd., Woburn, MA, USA). .. Following this, membranes were incubated with peroxidase-conjugated goat anti-rabbit immunoglobulin G (1:5,000; cat. no. TA140003; OriGene Figure 1.



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    Bioss rabbit pab against bcl 2β
    Venetoclax promoted <t>BCL-2β</t> generation and BCL-2α/BCL-2β protein degradation in both patients’ and healthy donor (HD) PBMCs. A Schematic of the BCL-2 genomic structure with 3 exons (top) and the mRNA and protein structures of the two major BCL-2 splice isoforms, i.e., BCL-2α and BCL-2β. Although both BCL-2α and BCL-2β have 4 BH (BCL-2 homology) domains, BCL-2α includes a C-terminal transmembrane (TM) domain needed for its anti-apoptotic function at the mitochondria whereas BCL-2β lacks this domain making it a shorter, mostly cytosolic protein lacking anti-apoptotic activity. To detect BCL-2β mRNA specifically, we designed primers targeting the unique exon-exon junction only present in the BCL-2β transcript (arrows). B Automated WES analysis of venetoclax-induced BCL-2β generation and BCL-2 degradation in PBMCs from 3 trial patients (Pt), who also showed PSA responses (see Supplementary Fig. S2B). PBMCs were isolated from whole blood collected at pretreatment (Pre TX), D1 of the indicated cycles (C) or end of treatment (EoT). Note patient-specific changes in BCL-2α/β protein levels. C In healthy donor (HD) PBMCs, Venetoclax (ABT-199, 1 µM) caused time-dependent changes in BCL-2β mRNA levels. Briefly, the BCL-2β mRNA levels increased significantly at 2–4 h post-treatment (**p < 0.01) with a trend toward increase at 8 h but reduced at 24 h post treatment. Each dot represents an independent HD PBMC treated with ABT-199 (i.e., biological replicates) and the results were presented as fold change (FC) over the untreated samples (0 h). D Venetoclax (Ven) induced dynamic and donor-dependent BCL-2β and BCL-2α protein changes in HD PBMCs. In HD#1 PBMCs, venetoclax caused rapid (i.e., within 2 h) and persistent (up to 8 h) induction of BCL-2β with concomitant loss of BCL-2α leading to significant apoptosis (i.e., elevated Cl-caspase-3) such that even the loading control proteins β-actin and GAPDH were decreased/lost by 8 h. In HD#2 PBMCs, venetoclax increased BCL-2β without significant changes in BCL-2α and increased Cl-caspase within 4–8 h. In HD#3 PBMCs, venetoclax caused BCL-2β upregulation (without significant changes in BCL-2α) and increased apoptosis at around 2 h post treatment. Shown at the bottom is an image of the gel stained by Swift stain (as another loading control). Note that low levels of Cl-caspase-3 were observed in untreated (i.e., 0 h) PBMCs due to stress from the isolation process. E Quantification of BCL-2β protein levels (left) and BCL-2β/BCL-2α ratio as fold changes (FC; right) in HD PBMCs treated with venetoclax (i.e., ABT-199). Results represent the aggregated data from independent experiments (n = 3–7) exemplified in D. F Western blotting showing that both BCL-2α and BCL-2β proteins were lost in HD PBMCs at ≥ 24 h post venetoclax (Ven; 1 µM ) treatment.
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    Image Search Results


    Venetoclax promoted BCL-2β generation and BCL-2α/BCL-2β protein degradation in both patients’ and healthy donor (HD) PBMCs. A Schematic of the BCL-2 genomic structure with 3 exons (top) and the mRNA and protein structures of the two major BCL-2 splice isoforms, i.e., BCL-2α and BCL-2β. Although both BCL-2α and BCL-2β have 4 BH (BCL-2 homology) domains, BCL-2α includes a C-terminal transmembrane (TM) domain needed for its anti-apoptotic function at the mitochondria whereas BCL-2β lacks this domain making it a shorter, mostly cytosolic protein lacking anti-apoptotic activity. To detect BCL-2β mRNA specifically, we designed primers targeting the unique exon-exon junction only present in the BCL-2β transcript (arrows). B Automated WES analysis of venetoclax-induced BCL-2β generation and BCL-2 degradation in PBMCs from 3 trial patients (Pt), who also showed PSA responses (see Supplementary Fig. S2B). PBMCs were isolated from whole blood collected at pretreatment (Pre TX), D1 of the indicated cycles (C) or end of treatment (EoT). Note patient-specific changes in BCL-2α/β protein levels. C In healthy donor (HD) PBMCs, Venetoclax (ABT-199, 1 µM) caused time-dependent changes in BCL-2β mRNA levels. Briefly, the BCL-2β mRNA levels increased significantly at 2–4 h post-treatment (**p < 0.01) with a trend toward increase at 8 h but reduced at 24 h post treatment. Each dot represents an independent HD PBMC treated with ABT-199 (i.e., biological replicates) and the results were presented as fold change (FC) over the untreated samples (0 h). D Venetoclax (Ven) induced dynamic and donor-dependent BCL-2β and BCL-2α protein changes in HD PBMCs. In HD#1 PBMCs, venetoclax caused rapid (i.e., within 2 h) and persistent (up to 8 h) induction of BCL-2β with concomitant loss of BCL-2α leading to significant apoptosis (i.e., elevated Cl-caspase-3) such that even the loading control proteins β-actin and GAPDH were decreased/lost by 8 h. In HD#2 PBMCs, venetoclax increased BCL-2β without significant changes in BCL-2α and increased Cl-caspase within 4–8 h. In HD#3 PBMCs, venetoclax caused BCL-2β upregulation (without significant changes in BCL-2α) and increased apoptosis at around 2 h post treatment. Shown at the bottom is an image of the gel stained by Swift stain (as another loading control). Note that low levels of Cl-caspase-3 were observed in untreated (i.e., 0 h) PBMCs due to stress from the isolation process. E Quantification of BCL-2β protein levels (left) and BCL-2β/BCL-2α ratio as fold changes (FC; right) in HD PBMCs treated with venetoclax (i.e., ABT-199). Results represent the aggregated data from independent experiments (n = 3–7) exemplified in D. F Western blotting showing that both BCL-2α and BCL-2β proteins were lost in HD PBMCs at ≥ 24 h post venetoclax (Ven; 1 µM ) treatment.

    Journal: Cancer Chemotherapy and Pharmacology

    Article Title: Phase Ib study of enzalutamide with venetoclax in patients with metastatic castration-resistant prostate cancer

    doi: 10.1007/s00280-025-04840-2

    Figure Lengend Snippet: Venetoclax promoted BCL-2β generation and BCL-2α/BCL-2β protein degradation in both patients’ and healthy donor (HD) PBMCs. A Schematic of the BCL-2 genomic structure with 3 exons (top) and the mRNA and protein structures of the two major BCL-2 splice isoforms, i.e., BCL-2α and BCL-2β. Although both BCL-2α and BCL-2β have 4 BH (BCL-2 homology) domains, BCL-2α includes a C-terminal transmembrane (TM) domain needed for its anti-apoptotic function at the mitochondria whereas BCL-2β lacks this domain making it a shorter, mostly cytosolic protein lacking anti-apoptotic activity. To detect BCL-2β mRNA specifically, we designed primers targeting the unique exon-exon junction only present in the BCL-2β transcript (arrows). B Automated WES analysis of venetoclax-induced BCL-2β generation and BCL-2 degradation in PBMCs from 3 trial patients (Pt), who also showed PSA responses (see Supplementary Fig. S2B). PBMCs were isolated from whole blood collected at pretreatment (Pre TX), D1 of the indicated cycles (C) or end of treatment (EoT). Note patient-specific changes in BCL-2α/β protein levels. C In healthy donor (HD) PBMCs, Venetoclax (ABT-199, 1 µM) caused time-dependent changes in BCL-2β mRNA levels. Briefly, the BCL-2β mRNA levels increased significantly at 2–4 h post-treatment (**p < 0.01) with a trend toward increase at 8 h but reduced at 24 h post treatment. Each dot represents an independent HD PBMC treated with ABT-199 (i.e., biological replicates) and the results were presented as fold change (FC) over the untreated samples (0 h). D Venetoclax (Ven) induced dynamic and donor-dependent BCL-2β and BCL-2α protein changes in HD PBMCs. In HD#1 PBMCs, venetoclax caused rapid (i.e., within 2 h) and persistent (up to 8 h) induction of BCL-2β with concomitant loss of BCL-2α leading to significant apoptosis (i.e., elevated Cl-caspase-3) such that even the loading control proteins β-actin and GAPDH were decreased/lost by 8 h. In HD#2 PBMCs, venetoclax increased BCL-2β without significant changes in BCL-2α and increased Cl-caspase within 4–8 h. In HD#3 PBMCs, venetoclax caused BCL-2β upregulation (without significant changes in BCL-2α) and increased apoptosis at around 2 h post treatment. Shown at the bottom is an image of the gel stained by Swift stain (as another loading control). Note that low levels of Cl-caspase-3 were observed in untreated (i.e., 0 h) PBMCs due to stress from the isolation process. E Quantification of BCL-2β protein levels (left) and BCL-2β/BCL-2α ratio as fold changes (FC; right) in HD PBMCs treated with venetoclax (i.e., ABT-199). Results represent the aggregated data from independent experiments (n = 3–7) exemplified in D. F Western blotting showing that both BCL-2α and BCL-2β proteins were lost in HD PBMCs at ≥ 24 h post venetoclax (Ven; 1 µM ) treatment.

    Article Snippet: The following primary antibodies were used at 1:1000 dilution: mouse mAb against BCL-2 (Cell Signaling Technology, cat# 15,071), rabbit pAb against BCL-2β (Bioss Antibodies, Woburn, MA, USA, cat# bs-15534R), rabbit pAb to cleaved CASP3 (Cell Signaling Technology, cat#9661), rabbit mAb to GAPDH (Cell Signaling Technology, cat#2118, clone 14C10), and rabbit mAb to β-actin (clone 13E5, HRP Conjugate; cat#5125).

    Techniques: Activity Assay, Isolation, Control, Staining, Western Blot

    Lactate intervention ameliorated hepatic ischemia-reperfusion injury in mice. A The strategy of lactate pretreatment in the mouse HIRI model. B , C Lactate content in plasma and tissue ( B ) and serum ALT/AST ( C ) in mice of SHAM, HIRI and HIRI with lactate pretreatment. D Representative H&E staining of liver sections. Percentages of necrotic areas and Suzuki scores were quantified (scale bar, 100 μm and 400 μm). E Western blot analysis of BCL2, BAX, cleaved Caspase-3, cleaved PARP, phospho-MLKL, MLKL, phospho-RIPK3, RIPK3 and β-ACTIN in liver tissue of HIRI mice with or without lactate pretreatment. Densitometric analysis was performed as follows: cleaved Caspase-3 and cleaved PARP were normalized to β-ACTIN; the BCL2/BAX ratio was calculated from BCL2 and BAX band intensities; and phospho-RIPK3 and phospho-MLKL were expressed as phospho/total protein ratios. F Relative mRNA levels of inflammation, chemotaxis and apoptosis related genes in liver tissue of HIRI mice with or without lactate pretreatment. Data shown represent mean ± SD. Each group included five-six biologically independent replicates. B and C One-way ANOVA followed by Tukey’s correction. D-F Two-tailed unpaired Student’s t test. * p < 0.05 , ** p < 0.01, *** p < 0.005, **** p < 0.001, ns, no significance

    Journal: Cell Communication and Signaling : CCS

    Article Title: Lactate attenuates hepatic ischemia-reperfusion injury by reducing intrahepatic inflammation and suppressing hepatocyte-neutrophil interaction via the IL-33/ST2 pathway

    doi: 10.1186/s12964-026-02662-0

    Figure Lengend Snippet: Lactate intervention ameliorated hepatic ischemia-reperfusion injury in mice. A The strategy of lactate pretreatment in the mouse HIRI model. B , C Lactate content in plasma and tissue ( B ) and serum ALT/AST ( C ) in mice of SHAM, HIRI and HIRI with lactate pretreatment. D Representative H&E staining of liver sections. Percentages of necrotic areas and Suzuki scores were quantified (scale bar, 100 μm and 400 μm). E Western blot analysis of BCL2, BAX, cleaved Caspase-3, cleaved PARP, phospho-MLKL, MLKL, phospho-RIPK3, RIPK3 and β-ACTIN in liver tissue of HIRI mice with or without lactate pretreatment. Densitometric analysis was performed as follows: cleaved Caspase-3 and cleaved PARP were normalized to β-ACTIN; the BCL2/BAX ratio was calculated from BCL2 and BAX band intensities; and phospho-RIPK3 and phospho-MLKL were expressed as phospho/total protein ratios. F Relative mRNA levels of inflammation, chemotaxis and apoptosis related genes in liver tissue of HIRI mice with or without lactate pretreatment. Data shown represent mean ± SD. Each group included five-six biologically independent replicates. B and C One-way ANOVA followed by Tukey’s correction. D-F Two-tailed unpaired Student’s t test. * p < 0.05 , ** p < 0.01, *** p < 0.005, **** p < 0.001, ns, no significance

    Article Snippet: Primary antibodies against BCL2 (diluted 1:1000, 3498T, Cell signaling technology, Danvers, USA), BAX (diluted 1:1000, 14796T, Cell signaling technology), cleaved Caspase-3 (diluted 1:1000, 9664T, Cell signaling technology), cleaved PARP (diluted 1:1000, 5625T, Cell signaling technology), phospho MLKL (diluted 1:1000, 37333T, Cell signaling technology), MLKL (diluted 1:1000, 37705T, Cell signaling technology), phospho RIPK3 (diluted 1:1000, 91702T, Cell signaling technology), RIPK3 (diluted 1:1000, 95702T, Cell signaling technology), phospho AKT (diluted 1:2000, 4060T, Cell signaling technology), total-AKT (diluted 1:1000, 4691T, Cell signaling technology), phospho STAT3 (diluted 1:2000, 9145T, Cell signaling technology), total-STAT3 (diluted 1:1000, 12640T, Cell signaling technology) and β-ACTIN (diluted 1:5000, ab6276, Abcam) were used.

    Techniques: Clinical Proteomics, Staining, Western Blot, Chemotaxis Assay, Two Tailed Test