Caspase-9 Recombinant Rabbit Monoclonal Antibody [SZ29-01]
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Specification
Safety datasheet
Overview
Product Name
Caspase-9 Recombinant Rabbit Monoclonal Antibody [SZ29-01]
Antibody Type
Recombinant Rabbit monoclonal Antibody
Immunogen
Synthetic peptide within Human Caspase-9 aa 289-338 / 416.
Species Reactivity
Human, Mouse
Validated Applications
WB, IF-Cell, IF-Tissue, IHC-P, IP, FC
Molecular Weight
Predicted band size: 46 kDa
Positive Control
C2C12 cell lysate, NIH/3T3, HepG2 cell, A549 cell, human tonsil tissue, human cervix carcinoma tissue, human colon tissue, human colon carcinoma tissue, mouse spleen tissue.
Conjugation
unconjugated
Clone Number
SZ29-01
RRID
Product Features
Form
Liquid
Concentration
Storage Instructions
Shipped at 4℃. Store at +4℃ short term (1-2 weeks). Store at -20℃ long term.
Storage Buffer
1*TBS (pH7.4), 0.05% BSA, 40% Glycerol. Preservative: 0.05% Sodium Azide.
Isotype
IgG
Purification Method
Protein A affinity purified.
Application Dilution
-
WB
-
1:500-1:5,000
-
IF-Cell
-
1:100-1:500
-
IF-Tissue
-
1:100-1:500
-
IHC-P
-
1:400-1:5,000
-
IP
-
Use at an assay dependent concentration.
-
FC
-
1:1,000
Target
Function
Caspase-9 is an enzyme that in humans is encoded by the CASP9 gene. It is an initiator caspase, critical to the apoptotic pathway found in many tissues. Caspase-9 homologs have been identified in all mammals for which they are known to exist, such as Mus musculus and Pan troglodytes. Caspase-9 belongs to a family of caspases, cysteine-aspartic proteases involved in apoptosis and cytokine signalling. Apoptotic signals cause the release of cytochrome c from mitochondria and activation of apaf-1 (apoptosome), which then cleaves the pro-enzyme of caspase-9 into the active dimer form. Regulation of this enzyme occurs through phosphorylation by an allosteric inhibitor, inhibiting dimerization and inducing a conformational change. Correct caspase-9 function is required for apoptosis, leading to the normal development of the central nervous system. Caspase-9 has multiple additional cellular functions that are independent of its role in apoptosis. Nonapoptotic roles of caspase-9 include regulation of necroptosis, cellular differentiation, innate immune response, sensory neuron maturation, mitochondrial homeostasis, corticospinal circuit organization, and ischemic vascular injury.
Background References
1. Arango-Gonzalez B et al. Identification of a common non-apoptotic cell death mechanism in hereditary retinal degeneration. PLoS One 9:e112142 (2014).
2. Schattenberg JM et al. Increased hepatic fibrosis and JNK2-dependent liver injury in mice exhibiting hepatocyte-specific deletion of cFLIP. Am J Physiol Gastrointest Liver Physiol 303:G498-506 (2012).
Sequence Similarity
Belongs to the peptidase C14A family.
Tissue Specificity
Ubiquitous, with highest expression in the heart, moderate expression in liver, skeletal muscle, and pancreas. Low levels in all other tissues. Within the heart, specifically expressed in myocytes.
Post-translational Modification
Cleavages at Asp-315 by granzyme B and at Asp-330 by caspase-3 generate the two active subunits. Caspase-8 and -10 can also be involved in these processing events.; Phosphorylated at Thr-125 by MAPK1/ERK2. Phosphorylation at Thr-125 is sufficient to block caspase-9 processing and subsequent caspase-3 activation. Phosphorylation on Tyr-153 by ABL1/c-Abl; occurs in the response of cells to DNA damage.
Subcellular Location
Mitochondrion, cytoplasm, cytosol, nucleus.
Synonyms
Caspase9
APAF-3 antibody
APAF3 antibody
Apoptosis related cysteine peptidase antibody
Apoptotic protease Mch-6 antibody
Apoptotic protease-activating factor 3 antibody
CASP-9 antibody
CASP9 antibody
CASP9_HUMAN antibody
Caspase 9 apoptosis related cysteine peptidase antibody
ExpandCaspase9
APAF-3 antibody
APAF3 antibody
Apoptosis related cysteine peptidase antibody
Apoptotic protease Mch-6 antibody
Apoptotic protease-activating factor 3 antibody
CASP-9 antibody
CASP9 antibody
CASP9_HUMAN antibody
Caspase 9 apoptosis related cysteine peptidase antibody
Caspase 9 Dominant Negative antibody
Caspase 9c antibody
Caspase-9 antibody
Caspase-9 subunit p10 antibody
ICE LAP6 antibody
ICE like apoptotic protease 6 antibody
ICE-LAP6 antibody
ICE-like apoptotic protease 6 antibody
MCH6 antibody
PPP1R56 antibody
protein phosphatase 1, regulatory subunit 56 antibody
RNCASP9 antibody
CollapseImages
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Western blot analysis of Caspase-9 on different lysates with Rabbit anti-Caspase-9 antibody (ET1603-27) at 1/1,000 dilution.
Lane 1: NIH/3T3 (Mouse fibroblast) cell lysates
Lane 2: C2C12 (Mouse myoblast) cell lysates
Lysates/proteins at 20 µg/Lane.
Exposure time: 24 seconds; ECL: K1801
Blocking: 5% NFDM/TBST, 1 hour at room temperature
Primary antibody: ET1603-27, 1/1,000 in 5% NFDM/TBST, overnight at 4 ℃
Secondary antibody: Goat anti-Rabbit IgG-HRP (HA1001), 1/50,000 in 5% NFDM/TBST, 1 hour at room temperature
Predicted band size: 46 kDa
Observed band size: 50 kDa -
Immunocytochemistry analysis of NIH/3T3 cells labeling Caspase-9 with Rabbit anti-Caspase-9 antibody (ET1603-27) at 1/100 dilution.
Cells were fixed in 4% paraformaldehyde for 20 minutes at room temperature, permeabilized with 0.1% Triton X-100 in PBS for 5 minutes at room temperature, then blocked with 1% BSA in 10% negative goat serum for 1 hour at room temperature. Cells were then incubated with Rabbit anti-Caspase-9 antibody (ET1603-27) at 1/100 dilution in 1% BSA in PBST overnight at 4 ℃. Goat Anti-Rabbit IgG H&L (iFluor™ 488, HA1121) was used as the secondary antibody at 1/1,000 dilution. PBS instead of the primary antibody was used as the secondary antibody only control. Nuclear DNA was labelled in blue with DAPI.
Beta tubulin (M1305-2, red) was stained at 1/100 dilution overnight at +4℃. Goat Anti-Mouse IgG H&L (iFluor™ 594, HA1126) was used as the secondary antibody at 1/1,000 dilution. -
Immunohistochemical analysis of paraffin-embedded human cervix carcinoma tissue with Rabbit anti-Caspase-9 antibody (ET1603-27) at 1/400 dilution.
The section was pre-treated using heat mediated antigen retrieval with sodium citrate buffer (pH 6.0) (high pressure) for 2 minutes. The tissues were blocked in 1% BSA for 20 minutes at room temperature, washed with ddH2O and PBS, and then probed with the primary antibody (ET1603-27) at 1/400 dilution for 1 hour at room temperature. The detection was performed using an HRP conjugated compact polymer system. DAB was used as the chromogen. Tissues were counterstained with hematoxylin and mounted with DPX. -
Immunohistochemical analysis of paraffin-embedded human colon tissue with Rabbit anti-Caspase-9 antibody (ET1603-27) at 1/5,000 dilution.
The section was pre-treated using heat mediated antigen retrieval with sodium citrate buffer (pH 6.0) (high pressure) for 2 minutes. The tissues were blocked in 1% BSA for 20 minutes at room temperature, washed with ddH2O and PBS, and then probed with the primary antibody (ET1603-27) at 1/5,000 dilution for 1 hour at room temperature. The detection was performed using an HRP conjugated compact polymer system. DAB was used as the chromogen. Tissues were counterstained with hematoxylin and mounted with DPX. -
Immunohistochemical analysis of paraffin-embedded human colon carcinoma tissue with Rabbit anti-Caspase-9 antibody (ET1603-27) at 1/400 dilution.
The section was pre-treated using heat mediated antigen retrieval with sodium citrate buffer (pH 6.0) (high pressure) for 2 minutes. The tissues were blocked in 1% BSA for 20 minutes at room temperature, washed with ddH2O and PBS, and then probed with the primary antibody (ET1603-27) at 1/400 dilution for 1 hour at room temperature. The detection was performed using an HRP conjugated compact polymer system. DAB was used as the chromogen. Tissues were counterstained with hematoxylin and mounted with DPX. -
Immunohistochemical analysis of paraffin-embedded mouse spleen tissue with Rabbit anti-Caspase-9 antibody (ET1603-27) at 1/5,000 dilution.
The section was pre-treated using heat mediated antigen retrieval with sodium citrate buffer (pH 6.0) (high pressure) for 2 minutes. The tissues were blocked in 1% BSA for 20 minutes at room temperature, washed with ddH2O and PBS, and then probed with the primary antibody (ET1603-27) at 1/5,000 dilution for 1 hour at room temperature. The detection was performed using an HRP conjugated compact polymer system. DAB was used as the chromogen. Tissues were counterstained with hematoxylin and mounted with DPX. -
Flow cytometric analysis of NIH/3T3 cells labeling Caspase-9.
Cells were fixed and permeabilized. Then stained with the primary antibody (ET1603-27, 1μg/mL) (red) compared with Rabbit IgG Isotype Control (green). After incubation of the primary antibody at +4℃ for an hour, the cells were stained with a iFluor™ 488 conjugate-Goat anti-Rabbit IgG Secondary antibody (HA1121) at 1/1,000 dilution for 30 minutes at +4℃. Unlabelled sample was used as a control (cells without incubation with primary antibody; black).
Please note: All products are "FOR RESEARCH USE ONLY AND ARE NOT INTENDED FOR DIAGNOSTIC OR THERAPEUTIC USE"
Citation
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IF: 14.5
Application: WB
Reactivity: Mouse
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IF: 5.4
Application: WB
Reactivity: Mouse
Publish date: 2025 Sept
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Ethanol-induced liver injury is alleviated by chrysin via increasing MRP2 transporter expression and enhancing the Nrf2-mediated adaptive response
Journal: Naunyn-Schmiedebergs Archives Of Pharmacology
DOI: 10.1007/s00210-025-04774-9
IF: 3.1
Application: WB
Reactivity: Human
Publish date: 2025 Oct
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Journal: Bioorganic Chemistry
DOI: 10.1016/j.bioorg.2025.109210
IF: 4.7
Application: WB
Reactivity: Human
Publish date: 2025 Nov
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Uric Acid Stimulates PINK1/Parkin-Mediated Mitophagy via Nrf2/HO-1 Pathway to Protect Against Neuronal Apoptosis in Alzheimer’s Disease
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DOI: 10.1089/ars.2024.0837
IF: 6.1
Application: WB
Reactivity: Mouse
Publish date: 2025 Jun
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DOI: 10.1016/j.bmc.2025.118324
IF: 3
Application: WB
Reactivity: Human
Publish date: 2025 Jul
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Journal: Molecular And Cellular Biochemistry
DOI: 10.1007/s11010-025-05350-8
IF: 3.7
Application: WB
Reactivity: Rat
Publish date: 2025 Jul
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Decomposable STING nanoagonist-amplified oncolytic virotherapy through remodeling the immunosuppressive microenvironment of triple-negative breast cancer
Journal: Journal Of Materials Chemistry B
DOI: 10.1039/D4TB02565B
IF: 6.1
Application: WB
Reactivity: Mouse
Publish date: 2025 Feb
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Mechanism of triiodothyronine alleviating acute alcoholic liver injury and delaying alcoholic liver fibrosis progression
Journal: Human & Experimental Toxicology
DOI: 10.1177/09603271251332505
IF: 2.7
Application: WB
Reactivity: Mouse
Publish date: 2025 Apr
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Pyrroloquinoline Quinone Alleviates Mitochondria Damage in Radiation-Induced Lung Injury in a MOTS-c-Dependent Manner
Journal: Journal Of Agricultural And Food Chemistry
DOI:
IF: 5.7
Application: WB
Reactivity: Mouse
Publish date: 2024 Sep
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DNA ligase III mediates deoxynivalenol exposure-induced DNA damage in intestinal epithelial cells by regulating oxidative stress and interaction with PCNA
Journal: International Journal Of Biological Macromolecules
DOI:
IF: 7.7
Application: WB
Reactivity: Pig
Publish date: 2024 Nov
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The Mitochondrial-Derived Peptide MOTS-c Alleviates Radiation Pneumonitis via an Nrf2-Dependent Mechanism
Journal: Antioxidants
DOI:
IF: 7.7
Application: WB
Reactivity: Mouse
Publish date: 2024 May
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Liquiritin reduces chondrocyte apoptosis through P53/PUMA signaling pathway to alleviate osteoarthritis
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IF: 6.1
Application: WB
Reactivity: Mouse
Publish date: 2024 Mar
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Protein phosphatase SCP4 regulates cartilage development and endochondral osteogenesis via FoxO3a dephosphorylation
Journal: Cell Proliferation
DOI: 10.1111/cpr.13691
IF: 5.9
Application: WB,IHC-P
Reactivity: Mouse
Publish date: 2024 Jun
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HNRNP I promotes IRAK1 degradation to reduce podocyte apoptosis and inflammatory response alleviating renal injury in diabetic nephropathy
Journal: Immunobiology
DOI:
IF: 2.5
Application: WB
Reactivity: Human
Publish date: 2024 Jul
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Recombinant human protein TCFL5-activated NRSN2-AS1 promotes esophageal cancer progression via the microRNA-874-5p/RELT regulatory axis
Journal: International Journal Of Biological Macromolecules
DOI:
IF: 7.7
Application: WB
Reactivity: Human
Publish date: 2024 Jul
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HDAC1 Promotes Mitochondrial Pathway Apoptosis and Inhibits the Endoplasmic Reticulum Stress Response in High Glucose-Treated Schwann Cells via Decreased U4 Spliceosomal RNA
Journal: Neurochemical Research
DOI:
IF: 3.7
Application: WB
Reactivity: Rat
Publish date: 2024 Jul
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Tripartite motif-containing 32 regulated by miR-6236-p5 inhibited silica-induced apoptosis of alveolar macrophages
Journal: Toxicology
DOI: 10.1016/j.tox.2024.154042
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Application: WB
Reactivity: Mouse
Publish date: 2024 Dec
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DOI:
IF: 6.7
Application: WB
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Publish date: 2024 Aug
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Synthesis, biological activities and mechanistic studies of C20-ketone pachysandra alkaloids as anti-hepatocellular carcinoma agents
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DOI:
IF: 3.9
Application: WB
Reactivity: Human
Publish date: 2024 Aug
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Apoptosis and DNA damage mediated by ROS involved in male reproductive toxicity in mice induced by Nickel
Journal: Ecotoxicology And Environmental Safety
DOI:
IF: 6.8
Application: WB
Reactivity: Mouse
Publish date: 2023 Nov
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Confusoside, a dihydrochalcone glucoside, prevents acetaminophen-induced liver injury by modulating the Nrf2/NF-κB/caspase signaling pathway
Journal: Food & Function
DOI:
IF: 6.1
Application: WB
Reactivity: Mouse
Publish date: 2023 Mar
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Inhibition of STX17–SNAP29–VAMP8 complex formation by costunolide sensitizes ovarian cancer cells to cisplatin via the AMPK/mTOR signaling pathway
Journal: Biochemical Pharmacology
DOI:
IF: 5.8
Application: WB
Reactivity: Human
Publish date: 2023 Jun
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DOI:
IF: 14.026
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Publish date: 2023 Jan
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Journal: Experimental Biology And Medicine
DOI:
IF: 3.2
Application: WB
Reactivity: Mouse
Publish date: 2023 Feb
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Journal: Chemical Biology & Drug Design
DOI:
IF: 3
Application: WB
Reactivity: Mouse
Publish date: 2023 Dec
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Analysis of RIOK2 Functions in Mediating the Toxic Effects of Deoxynivalenol in Porcine Intestinal Epithelial Cells
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DOI:
IF: 6.208
Application: WB
Reactivity: Pig
Publish date: 2022 Oct
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Genome-wide transcriptional profiling and functional analysis reveal miR-330-MAPK15 axis involving in cellular responses to deoxynivalenol exposure
Journal: Chemosphere
DOI:
IF: 8.8
Application: WB
Reactivity: PIG
Publish date: 2022 Jul
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Melatonin Ameliorates the Toxicity Induced by Deoxynivalenol in Murine Ovary Granulosa Cells by Antioxidative and Anti-Inflammatory Effects. Antioxidants (Basel, Switzerland), 10(7), 1045.
Journal: Antioxidants
DOI:
IF:
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Reactivity: Mouse
Publish date: 2021 Jun
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Isorhamnetin Promotes MKN-45 Gastric Cancer Cell Apoptosis by Inhibiting PI3K-Mediated Adaptive Autophagy in a Hypoxic Environment
Journal: Journal Of Agricultural And Food Chemistry
DOI:
IF: 5.279
Application: WB
Reactivity: Human
Publish date: 2021 Jul
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Copper sulfate-induced endoplasmic reticulum stress promotes hepatic apoptosis by activating CHOP, JNK and caspase-12 signaling pathways
Journal: Ecotoxicology And Environmental Safety
DOI:
IF: 6.291
Application: WB
Reactivity: Mouse
Publish date: 2020 Mar
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Sini decoction ameliorates sepsis-induced acute lung injury via regulating ACE2-Ang (1-7)-Mas axis and inhibiting the MAPK signaling pathway
Journal: Biomedicine & Pharmacotherapy
DOI:
IF: 3.457
Application: WB
Reactivity: Human
Publish date: 2019 Jul
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Sini decoction alleviates E. coli induced acute lung injury in mice via equilibrating ACE-AngII-AT1R and ACE2-Ang-(1-7)-Mas axis
Journal: Life Sciences
DOI:
IF: 3.234
Application: WB
Reactivity: Mouse
Publish date: 2018 Sep
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