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MAB4703
Sigma-AldrichAnti-Caspase 3 Antibody, large subunit & proform, clone 4-1-18
Anti-Caspase 3 Antibody, large subunit & proform, clone 4-1-18 detects level of Caspase 3 & has been published & validated for use in WB, IH(P).
More>>Anti-Caspase 3 Antibody, large subunit & proform, clone 4-1-18 detects level of Caspase 3 & has been published & validated for use in WB, IH(P). Less<<
SDB (Sicherheitsdatenblätter), Analysenzertifikate und Qualitätszertifikate, Dossiers, Broschüren und andere verfügbare Dokumente.
Anti-Caspase 3 Antibody, large subunit & proform, clone 4-1-18 detects level of Caspase 3 & has been published & validated for use in WB, IH(P).
Key Applications
Western Blotting
Immunohistochemistry (Paraffin)
Application Notes
Western blot: 1:1000. The antibody will detect a band at 32 kDa corresponding to the inactive unprocessed form of caspase 3 as well as a 17-22 kDa band corresponding to the large subunit of active caspase 3.
Immunohistochemistry (frozen and paraffin): 1:500.
Optimal working dilutions must be determined by end user.
Biological Information
Immunogen
Recombinant full-length human caspase-3 protein
Epitope
large subunit & proform
Clone
4-1-18
Concentration
Please refer to the Certificate of Analysis for the lot-specific concentration.
Host
Mouse
Specificity
Recognizes the full length 32 kDa caspase-3 protein. Highly specific to caspase-3 and shows no cross-reaction with other caspase family members. Caspase-3 is ubiquitously expressed and like other caspases is synthesized as an inactive proenzyme. Upon activation, caspase-3 is cleaved generating two smaller subunits of 17 kDa and 12 kDa. Caspase-3 is one of the most extensively studied enzyme in apoptosis. Activation of caspase-3 occurs in response to a variety of apoptotic inducers.
This gene encodes a protein which is a member of the cysteine-aspartic acid protease (caspase) family. Sequential activation of caspases plays a central role in the execution-phase of cell apoptosis. Caspases exist as inactive proenzymes which undergo proteolytic processing at conserved aspartic residues to produce two subunits, large and small, that dimerize to form the active enzyme. This protein cleaves and activates caspases 6, 7 and 9, and the protein itself is processed by caspases 8, 9 and 10. It is the predominant caspase involved in the cleavage of amyloid-beta 4A precursor protein, which is associated with neuronal death in Alzheimer's disease. Alternative splicing of this gene results in two transcript variants that encode the same protein.
FUNCTION: SwissProt: P42574 # Involved in the activation cascade of caspases responsible for apoptosis execution. At the onset of apoptosis it proteolytically cleaves poly(ADP-ribose) polymerase (PARP) at a '216-Asp- -Gly-217' bond. Cleaves and activates sterol regulatory element binding proteins (SREBPs) between the basic helix-loop- helix leucine zipper domain and the membrane attachment domain. Cleaves and activates caspase-6, -7 and -9. Involved in the cleavage of huntingtin. SIZE: 277 amino acids; 31608 Da SUBUNIT: Heterotetramer that consists of two anti-parallel arranged heterodimers, each one formed by a 17 kDa (p17) and a 12 kDa (p12) subunit. SUBCELLULAR LOCATION: Cytoplasm. TISSUE SPECIFICITY: Highly expressed in lung, spleen, heart, liver and kidney. Moderate levels in brain and skeletal muscle, and low in testis. Also found in many cell lines, highest expression in cells of the immune system. PTM: Cleavage by granzyme B, caspase-6, caspase-8 and caspase-10 generates the two active subunits. Additional processing of the propeptides is likely due to the autocatalytic activity of the activated protease. Active heterodimers between the small subunit of caspase-7 protease and the large subunit of caspase-3 also occur and vice versa. SIMILARITY: SwissProt: P42574 ## Belongs to the peptidase C14 family.
Physicochemical Information
Dimensions
Materials Information
Toxicological Information
Safety Information according to GHS
Safety Information
Product Usage Statements
Usage Statement
Unless otherwise stated in our catalog or other company documentation accompanying the product(s), our products are intended for research use only and are not to be used for any other purpose, which includes but is not limited to, unauthorized commercial uses, in vitro diagnostic uses, ex vivo or in vivo therapeutic uses or any type of consumption or application to humans or animals.
Storage and Shipping Information
Storage Conditions
Maintain refrigerated at 2-8°C in undiluted aliquots for up to 12 months.
Packaging Information
Material Size
100 µg
Transport Information
Supplemental Information
Specifications
Global Trade Item Number
Bestellnummer
GTIN
MAB4703
04053252359224
Documentation
Anti-Caspase 3 Antibody, large subunit & proform, clone 4-1-18 SDB
Cassia alata leaf extract induces cytotoxicity in A549 lung cancer cells via a mechanism that is caspase 8 dependent. A Levy,A Lewis The West Indian medical journal
60
2010
We present optimal perfusion conditions for the growth of primary mouse embryonic fibroblasts (mEFs) and mouse embryonic stem cells (mESCs) using a microfluidic perfusion culture system. In an effort to balance nutrient renewal while ensuring the presence of cell secreted factors, we found that the optimal perfusion rate for culturing primary embryonic fibroblasts (mEFs) in our experimental setting is 10 nL/min with an average flow velocity 0.55 microm/s in the microchannel. Primary mEFs may have a greater dependence on cell secreted factors when compared to their immortalized counterpart 3T3 fibroblasts cultured under similar conditions. Both the seeding density and the perfusion rate are critical for the proliferation of primary cells. A week long cultivation of mEFs and mESCs using the microculture system exhibited similar morphology and viability to those grown in a petri dish. Both mEFs and mESCs were analyzed using fluorescence immunoassays to determine their proliferative status and protein expression. Our results demonstrate that a perfusion-based microculture environment is capable of supporting the highly proliferative status of pluripotent embryonic stem cells.
The marine lipopeptide somocystinamide A triggers apoptosis via caspase 8. Wrasidlo, W; Mielgo, A; Torres, VA; Barbero, S; Stoletov, K; Suyama, TL; Klemke, RL; Gerwick, WH; Carson, DA; Stupack, DG Proceedings of the National Academy of Sciences of the United States of America
105
2313-8
2008
Screening for novel anticancer drugs in chemical libraries isolated from marine organisms, we identified the lipopeptide somocystinamide A (ScA) as a pluripotent inhibitor of angiogenesis and tumor cell proliferation. The antiproliferative activity was largely attributable to induction of programmed cell death. Sensitivity to ScA was significantly increased among cells expressing caspase 8, whereas siRNA knockdown of caspase 8 increased survival after exposure to ScA. ScA rapidly and efficiently partitioned into liposomes while retaining full antiproliferative activity. Consistent with the induction of apoptosis via the lipid compartment, we noted accumulation and aggregation of ceramide in treated cells and subsequent colocalization with caspase 8. Angiogenic endothelial cells were extremely sensitive to ScA. Picomolar concentrations of ScA disrupted proliferation and endothelial tubule formation in vitro. Systemic treatment of zebrafish or local treatment of the chick chorioallantoic membrane with ScA resulted in dose-dependent inhibition of angiogenesis, whereas topical treatment blocked tumor growth among caspase-8-expressing tumors. Together, the results reveal an unexpected mechanism of action for this unique lipopeptide and suggest future development of this and similar agents as antiangiogenesis and anticancer drugs.
Millipore’s Caspase Antibodies, proteins, and assays have been well validated and published. See below for a comprehensive list of our Caspase products, based on the expertise of Upstate & Chemicon. Weitere Informationen >>