KCN1
KCN1 is a p300/HIF-1α interaction inhibitor with a Kd value of 345 nM for p300-CH1. KCN1 binds to the CH1 domain of p300, blocks the assembly of the p300/HIF-1α complex, and disrupts the HIF-1α-p300/CBP interaction. KCN1 inhibits cancer cell growth, induces cancer cell cycle arrest and apoptosis. KCN1 inhibits β-galactosidase activity and downregulates the expression of VEGF, Glut1, CA9 and CAIX. KCN1 exerts anticancer activity in mouse tumor xenograft models. KCN1 can be used in research related to malignant glioma, pancreatic cancer and metastatic uveal melanoma.
For research use only. We do not sell to patients.
- CAS No.: 927823-01-6
- Formula: C26H27NO5S
- Molecular Weight:465.56
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Storage:
Please store the product under the recommended conditions in the Certificate of Analysis.
All VEGFR Isoforms
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Biological Activity
Description
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p300-CH1 345 nM (Kd) |
GLUT1 |
CA IX |
CA9 |
In Vitro
KCN1 (3-60 μg/mL p300-CH1) binds to recombinant p300-CH1 peptide in SPR assays, with a KD value of approximately 345 nM[1].
KCN1 (1-100 μM; 72 h) inhibits the viability of human pancreatic cancer cell lines HPAC, Panc-1, BxPC3 and Mia Paca-2 in vitro in a dose-dependent manner, with IC50 values ranging from 14.62 μM (BxPC3) to 99.99 μM (Panc-1)[2].
KCN1 (5-50 μM; 24 h) inhibits the proliferation of human pancreatic cancer cells HPAC, Panc-1, BxPC3 and Mia Paca-2 in vitro in a dose-dependent manner, and the proliferation rate decreases by 56-88% at the concentration of 50 μM[2].
KCN1 (5-50 μM; 14 days) dose-dependently inhibits the anchorage-independent growth of human pancreatic cancer cells HPAC and Panc-1 in vitro, and reduces their colony-forming ability by 3-4 folds at the concentration of 50 μM[2].
KCN1 (1-15 μM; under hypoxia following 1 h normoxic pre-treatment) specifically inhibits HRE-dependent hypoxia-induced luciferase activity in LN229HRE-luc/lacZ human glioblastoma cells, with an IC50 of approximately 593 nM[3].
KCN1 (10 μM; administered under hypoxia following 1 h of normoxic pre-treatment) inhibits hypoxia-induced β-galactosidase activity in LN229HRE-luc/lacZ human glioblastoma cells, without affecting constitutive CMV-driven β-galactosidase activity[3].
KCN1 (10 μM; 24 h under hypoxia following 1 h pre-treatment) inhibits HRE-dependent hypoxia-induced luciferase activity in U251MG, D54MG, D645MG and LN443 human glioblastoma cell lines, exhibiting broad activity against genetically diverse gliomas[3].
KCN1 (10 μM; 24 h under hypoxia following 1 h pre-treatment) specifically inhibits HRE-dependent transcription in human glioblastoma LN229 cells, without affecting the transcriptional activities mediated by NF-κB, AP1 or p53[3].
KCN1 (25 μM; 4-24 h under normoxia or hypoxia) downregulates hypoxia-induced VEGF and Glut1 mRNA expression in LN229 human glioblastoma cells without altering constitutive β-actin mRNA levels[3].
KCN1 (25 μM; under normoxia or hypoxia) downregulates hypoxia-induced CA9 mRNA expression in U251MG human glioblastoma cells without altering constitutive β-actin mRNA levels[3].
KCN1 (10 μM; 48 h under normoxia or hypoxia) inhibits hypoxia-induced VEGF protein secretion in LN229 human glioblastoma cells under normoxic or hypoxic conditions[3].
KCN1 (10 μM; 24 h under hypoxia following 1 h pre-treatment) inhibits hypoxia-induced promoter activities of wild-type VEGF and CA9 in human glioblastoma LN229 cells, but exerts no effect on the promoter activities of HRE-mutated VEGF and CA9, confirming that its action is dependent on HRE[3].
KCN1 (10 μM; under normoxia or hypoxia) downregulates hypoxia-induced CAIX protein expression in LN229 human glioblastoma cells without altering constitutive Akt protein levels[3].
KCN1 (2.5-10 μM; incubated with nuclear extracts and HRE oligonucleotide) reduces the recruitment of p300 to HRE-bound HIF-1α in nuclear extracts of LN229 human glioblastoma under hypoxic conditions, without affecting the binding of HIF-1α to HRE[3].
KCN1 (10 μM; 24 h under hypoxia following 1 h pre-treatment) reduces the recruitment of p300 and CBP by endogenous CA9 HRE in LN229 human glioblastoma cells under hypoxic conditions, without affecting the binding of HIF-1α to CA9 HRE[3].
KCN1 (5-50 μM; 48 h) induces mild apoptosis in HPAC human pancreatic cancer cells in vitro, whereas no apoptosis is detected in Panc-1, BxPC3 or Mia Paca-2 cells even at concentrations up to 50 μM[2].
KCN1 (5-50 μM; 24 h) induces G1 phase cell cycle arrest in human pancreatic cancer cell lines HPAC, Panc-1, BxPC3 and Mia Paca-2 in a dose-dependent manner in vitro, with significant effects starting at concentrations of 5 μM (HPAC, BxPC3, Mia Paca-2) or 12.5 μM (Panc-1)[2].
KCN1 (5-50 μM; 12-24 h) regulates the expression of cell cycle-related proteins in human pancreatic cancer cell lines HPAC, Panc-1, BxPC3 and Mia Paca-2 in vitro, reduces the levels of pro-proliferative regulatory factors and increases the levels of cyclin-dependent kinase inhibitors[2].
MedChemExpress (MCE) has not independently confirmed the accuracy of these methods. They are for reference only. Further protocols information, click here.
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Cell Line:HPAC, Panc-1, BxPC3, Mia Paca-2
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Concentration:0, 1, 5, 12.5, 25, 50, 100 μM
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Incubation Time:72 h
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Result:Inhibited cell growth in a dose-dependent manner.
Reduced cell viability by 83% in HPAC, 53% in Panc-1, 81% in BxPC3, and 61% in Mia Paca-2 cells at 100 μM.
Exhibited IC50 values of 17.91 μM for HPAC, 99.99 μM for Panc-1, 14.62 μM for BxPC3, and 69.91 μM for Mia Paca-2 cells.
Showed time-course sensitivity ranking as BxPC3 > HPAC > Mia Paca-2 > Panc-1.
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Cell Line:HPAC, Panc-1, BxPC3, Mia Paca-2
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Concentration:0, 5, 12.5, 50 μM
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Incubation Time:24 h
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Result:Inhibited cell proliferation in a dose-dependent manner across all four cell lines.
Reduced proliferation by 80% in HPAC, 56% in Panc-1, 88% in BxPC3, and 60% in Mia Paca-2 cells at 50 μM.
Showed BxPC3 cells as the most sensitive at the highest concentration.
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Cell Line:HPAC, Panc-1, BxPC3, Mia Paca-2
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Concentration:0, 5, 12.5, 50 μM
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Incubation Time:48 h
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Result:Showed negligible or weak apoptotic effects across all four cell lines.
Induced a 1.4-fold increase in the apoptotic index in HPAC cells at 50 μM.
Caused no detectable apoptotic activity in Panc-1, BxPC3, or Mia Paca-2 cells.
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Cell Line:HPAC, Panc-1, BxPC3, Mia Paca-2
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Concentration:0, 5, 12.5, 50 μM
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Incubation Time:24 h
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Result:Induced dose-dependent G1 phase cell cycle arrest in all four cell lines.
Triggered significant arrest starting at 5 μM in HPAC (P<0.01), BxPC3 (P<0.01), and Mia Paca-2 (P<0.01) cells, and at 12.5 μM in Panc-1 (P<0.01) cells.
Increased G1 phase percentages to 68.8% (HPAC), 53.3% (Panc-1), 70.8% (BxPC3), and 58.9% (Mia Paca-2) at 50 μM, compared to control values of 39.4%, 39.5%, 45.1%, and 46.7%, respectively.
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Cell Line:HPAC, Panc-1, BxPC3, Mia Paca-2
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Concentration:0, 5, 12.5, 50 μM
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Incubation Time:12 h, 24 h
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Result:Decreased expression of cell cycle regulators E2F1, Cdk2, Cdk4, Cdk6, Cdc25c, Cyclin D1, and Cyclin E in all four cell lines.
Increased expression of p21 and p27 in all four cell lines, regardless of incubation duration.
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Cell Line:LN229 human glioblastoma cells
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Concentration:10 μM
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Incubation Time:48 h under normoxia or hypoxia
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Result:Significantly reduced hypoxia-induced VEGF protein secretion into conditioned media.
Had minimal effect on VEGF levels under normoxia.
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Cell Line:LN229 human glioblastoma cells
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Concentration:10 μM
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Incubation Time:under normoxia or hypoxia
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Result:Significantly reduced hypoxia-induced CAIX protein levels.
Had no effect on Akt protein levels.
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Cell Line:LN229 human glioblastoma cells
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Concentration:25 μM
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Incubation Time:12, 24, 36, 48 h under hypoxia
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Result:Did not significantly alter HIF-1α, HIF-1β, or p300 protein levels in hypoxic LN229 cells across all tested time points.
Parmacokinetics
In Vivo
KCN1 (60 mg/kg, i.p.; 5 days per week for 10 consecutive weeks) potently inhibits the growth of subcutaneous glioblastoma xenografts in athymic nu/nu nude mice, while also suppressing HIF activity and VEGF production in tumors, with extremely low systemic toxicity[3].
MedChemExpress (MCE) has not independently confirmed the accuracy of these methods. They are for reference only.
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Animal Model:nu/nu (female, 4-6 weeks old, subcutaneous xenograft model)[2]
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Dosage:30 mg/kg; 60 mg/kg
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Administration:i.p.; 5 days/week; 6 weeks
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Result:Achieved 43% tumor growth inhibition at 30 mg/kg dose.
Achieved 57% tumor growth inhibition at 60 mg/kg dose.
Showed no significant differences in body weight between treated mice and controls.
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Animal Model:Athymic nu/nu nude mice (subcutaneous xenograft via flank injection of 5×106 LN229HRE-luc/lacZ human glioblastoma cells)[3]
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Dosage:60 mg/kg (prevention treatment); 60 mg/kg (pre-established acute treatment); 60 mg/kg (pre-established late treatment)
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Administration:i.p.; 5 days per week; 10 weeks (prevention treatment); i.p.; single dose (pre-established acute treatment); i.p.; 5 days per week (pre-established late treatment)
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Result:Reduced average tumor volume by >4-fold compared to vehicle controls after 10 weeks of treatment.
Induced complete regression in 10 out of 42 tumors after 4-6 weeks, and stable disease in 6 additional tumors.
Lowered average tumor weight by ~3-fold compared to controls.
Significantly reduced tumor growth rates.
Showed significant anti-tumor activity in pre-established tumors (~26 mm3), though less potent than when used as a prevention agent.
Significantly reduced in vivo expression of hypoxia-inducible genes Angptl4, CA9, and VEGF in pre-established tumors after a single dose.
Reduced average tumor HIF-dependent luciferase activity and average tumor VEGF protein levels compared to controls after 10 weeks of treatment.
Was well tolerated with no signs of significant systemic toxicity; reversible liver swelling was observed, likely related to the formulation.
Chemical Information
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CAS No. 927823-01-6
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Molecular Weight 465.56
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Formula C26H27NO5S
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SMILES
O=S(C1=CC=C(C(OC)=C1)OC)(N(C2=CC=CC=C2)CC3=CC4=C(C=C3)OC(C)(C)C=C4)=O
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Shipping
Room temperature in continental US; may vary elsewhere.
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Storage
Please store the product under the recommended conditions in the Certificate of Analysis.
Protocols
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RNA extraction experimental
By lysing cells, releasing RNA, and removing impurities such as proteins and DNA, high-purity RNA products are finally obtained. The commonly used traditional method is the guanidine isothiocyanate/phenol/chloroform method (Trizol), which is suitable for a variety of animal materials including animal tissues, microorganisms, cultured cells, etc., and most plant materials.
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Annexin V plus membrane-impermeant dye apoptosis staining
Annexin V-based apoptosis assays rely on the detection of phosphatidylserine (PS) externalization from the inner leaflet of the plasma membrane to the outer leaflet, an early biochemical hallmark of apoptosis. Fluorescently labeled Annexin V binds PS in a calcium-dependent manner, enabling identification of early apoptotic cells by flow cytometry or fluorescence microscopy. When combined with a membrane-impermeant DNA-binding dye (e. g. , propidium iodide), this approach allows discrimination between viable (Annexin V−/dye−), early apoptotic (Annexin V+/dye−), and late apoptotic or necrotic (Annexin V+/dye+) cell populations by assessing membrane integrity and PS exposure.
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BrdU Incorporation Assay
Bromodeoxyuridine (BrdU) incorporation assay is based on the principle that BrdU, a thymidine analog, is incorporated into newly synthesized DNA during the S phase of the cell cycle, thereby serving as a marker of DNA replication and cellular proliferation. Incorporated BrdU can be detected using anti-BrdU antibodies following DNA denaturation, enabling visualization or quantification of proliferating cells through immunochemical detection methods such as immunofluorescence or immunohistochemistry.
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Somatic Cell Culture
A method of simulating the in vivo environment in vitro to maintain the cell growth, differentation and main functions.
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CCK-8/WST-8 Cell Proliferation Assay
The CCK-8/WST-8 assay is based on the reduction of the water-soluble tetrazolium salt WST-8 to a water-soluble formazan product by cellular dehydrogenases in metabolically active cells, where the generated formazan amount is proportional to the number of living cells and is quantified by measuring absorbance in the visible range, providing a colorimetric readout for cell viability and proliferation assessment. This class of tetrazolium-based assays improves upon earlier MTT-based systems by producing a water-soluble formazan, eliminating the need for organic solubilization steps and enabling direct spectrophotometric measurement in culture medium.
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Protocol for Cell Cycle
Cell-cycle analysis by flow cytometry measures DNA content in single cells to estimate the fraction of cells in G0/G1, S, and G2/M phases. Propidium iodide intercalates into DNA, and after RNA removal with RNase, fluorescence intensity reflects cellular DNA content: 2N cells are assigned to G0/G1, cells between 2N and 4N to S phase, and 4N cells to G2/M. DNA-content analysis alone cannot reliably separate G0 from G1 or G2 from M. Ki-67 can distinguish quiescent G0 cells from cycling cells, EdU or BrdU incorporation marks active DNA synthesis in S phase, and phospho-histone H3 staining identifies mitotic cells within the 4N population.
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Cell Counting-Based Growth Curve Assay
Cell counting-based growth curve assays quantify cell proliferation by directly measuring changes in viable cell number over time using manual or automated counting methods such as hemocytometer-based counting or instrument-assisted cell enumeration, enabling construction of growth curves that reflect population expansion dynamics in response to culture conditions. A widely used approach is trypan blue exclusion with hemocytometer counting, where membrane-compromised (non-viable) cells take up the dye, allowing discrimination between viable and non-viable cells while simultaneously enabling total cell number quantification. Repeated sampling across time points allows estimation of proliferation rate, growth phases, and comparative growth kinetics between experimental conditions.
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Cell Viability Determination by MTT Colorimetric Assay
The following protocol uses the MTT colorimetric assay as a classic literature-established method for assessing cell viability/metabolic activity in cultured mammalian cells. MTT[3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide] is reduced by metabolically active cells to a colored formazan product; the amount of formazan is quantified spectrophotometrically and provides an indirect measure of metabolically active viable cells. Importantly, MTT reduction reflects cellular oxidoreductase/metabolic activity rather than an absolute direct count of living cells, so changes in cellular metabolism can alter the signal independently of cell number.
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Apoptosis
Apoptosis, also called programmed cell death, is generally characterized by distinct morphological characteristics.
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TUNEL staining for apoptotic DNA fragmentation
TUNEL staining detects DNA strand breaks by using terminal deoxynucleotidyl transferase to add labeled nucleotides to exposed 3′-OH DNA termini, generating either microscopic staining in fixed cells or tissue sections, or fluorescence/cytometric signal in cell suspensions. TUNEL positivity reflects DNA fragmentation but should not be interpreted alone as definitive apoptosis, because TUNEL can also label necrotic, autolytic, mechanically damaged, or DNA-repair-associated DNA breaks.
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Flow cytometric DNA-content cell-cycle staining
Flow cytometric DNA-content cell-cycle staining measures the fluorescence intensity of DNA-bound fluorochromes in single cells or nuclei to estimate DNA content distributions, allowing assignment of populations to G0/G1, S, and G2/M phases by DNA histogram deconvolution. Propidium iodide (PI) intercalates into DNA, and PI fluorescence is proportional to cellular DNA content when staining is performed under conditions that make DNA accessible and minimize non-DNA signal. Cells with G2/M DNA content are expected to show approximately twice the fluorescence intensity of G0/G1 cells, while S-phase cells occupy intermediate fluorescence values. PI-based DNA-content analysis can also detect cells with fractional DNA content, often reported as sub-G1, when DNA fragmentation and extraction during staining reduce retained DNA signal in apoptotic cells. DAPI is an alternative DNA fluorochrome for univariate DNA-content analysis, while bivariate approaches combining DNA content with proliferation
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Protocol for Cell Counting and Cell Density Analysis
Cell counting and cell-density analysis estimate the number of cells in a known volume or field area. Manual hemocytometer counting uses a chamber of defined geometry to convert counted cells into cells/mL, while automated counters and image-analysis workflows detect cell objects from optical, brightfield, fluorescence, impedance, or digital-image features. Trypan blue viability counting is based on dye exclusion: viable cells with intact membranes exclude dye, while non-viable cells with compromised membranes stain blue. The readout is total cell density, viable-cell density, dead-cell density, and percent viability. Cell density can also be estimated from microscopy images by counting objects per image area, from flow cytometry using calibrated volume or reference particles, or from in situ microscopy in bioreactors after calibration against reference methods such as hemocytometer or flow cytometry.
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Patient-Derived Xenograft (PDX)
Patient-derived xenograft (PDX) models are generated by engrafting primary human tumor tissue directly into immunodeficient mice, allowing in vivo propagation of patient tumor biology without initial in vitro adaptation. These models are used to preserve key histopathological and molecular characteristics of the original tumor and enable assessment of tumor growth dynamics and therapeutic response in a living organism. The biological readout is tumor engraftment and subsequent growth in the murine host, which reflects the ability of human tumor cells to survive, vascularize, and expand in an immunocompromised microenvironment.
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Apoptosis Solutions
Apoptosis is a regulated, generally non-lytic cell-death pathway that removes unwanted, damaged, infected, or abnormal cells through coordinated morphological changes, caspase activation, DNA fragmentation, and membrane remodeling. The intrinsic apoptosis pathway is controlled mainly by mitochondrial outer membrane permeabilization, BCL-2 family proteins, cytochrome c release, apoptosome formation, caspase-9 activation, and downstream executioner caspase-3/7 activation. The extrinsic apoptosis pathway is initiated by death receptors such as Fas, TNFR, and TRAIL receptors, which recruit adaptor proteins and activate caspase-8 before engaging executioner caspases or mitochondrial amplification through BID cleavage. Apoptosis is linked to many phenotypes, including cancer cell killing, tissue homeostasis, immune regulation, neurodegeneration, infection response, and treatment-induced cytotoxicity; unresolved questions include how apoptosis interacts with necroptosis, pyroptosis, ferroptos
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Splenic/Portal-Vein Liver Metastasis Xenograft
Splenic and portal-vein liver metastasis xenograft models deliver tumor cells into the portal circulation so that cells reach the liver first and form hepatic metastatic lesions; splenic injection uses the spleen as an access route to the portal system, while direct portal-vein injection introduces cells into the portal vein without requiring splenectomy. The assay detects liver colonization, intrahepatic tumor growth, tumor distribution, treatment response, survival, and liver-metastasis microenvironment changes; readouts include bioluminescence or fluorescence imaging, gross liver nodule counts, liver weight or tumor burden, histology, and survival.
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MTT Cell Proliferation Assay
The MTT assay is a colorimetric endpoint assay for estimating viable cell number, cell growth, cytotoxicity, or cell activation in cultured mammalian cells. Living cells reduce the yellow tetrazolium salt MTT into purple/blue formazan, while dead cells do not generate the same signal; the resulting color can be quantified with a multiwell spectrophotometer. MTT reduction is commonly interpreted as a readout of metabolic activity that often correlates with viable cell number, but it should not be treated as a direct cell-counting method unless the assay is optimized for the cell type and experimental condition. Studies show that MTT reduction can involve mitochondrial and non-mitochondrial reducing systems, and formazan may accumulate in intracellular lipid droplets rather than simply marking mitochondria.
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Subcutaneous Cell-Line-Derived Xenograft
Subcutaneous cell-line-derived xenograft (CDX) models are established by implanting cultured human cancer cell lines into immunodeficient mice, where the injected cells form localized tumors that can be monitored in vivo as a measure of tumorigenic potential, growth kinetics, and treatment response. These models are widely used in oncology research because they allow reproducible tumor formation and enable comparative assessment of tumor growth between different cell lines or genetic manipulations in a controlled in vivo microenvironment. Subcutaneous implantation of cancer cells in immunodeficient mice is a standard approach for evaluating tumor growth behavior and therapeutic response across multiple cancer types, including prostate, esophageal, pancreatic, and colon cancer models.
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Orthotopic Cell-Line Xenograft
Orthotopic cell-line xenograft models involve implantation of human cancer cell lines into the anatomically corresponding organ of immunodeficient mice to reproduce tumor growth within a native microenvironment, enabling more clinically relevant tumor behavior compared with subcutaneous models. These models are widely used because orthotopic placement better recapitulates tumor progression, including invasion and metastatic spread, which are often underrepresented in heterotopic implantation systems. Compared with conventional xenografts, orthotopic implantation is described as more technically complex but provides improved simulation of tumor-microenvironment interactions and metastatic behavior, making it particularly valuable for translational oncology research. Surgical orthotopic implantation approaches have been emphasized as enabling faithful reproduction of clinical cancer features, including metastasis and disease progression patterns that align with the tumor’s organ of origi
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Intraperitoneal/Peritoneal Dissemination Xenograft
Intraperitoneal (IP) or peritoneal dissemination xenograft models are based on the introduction of human cancer cells into the peritoneal cavity of immunodeficient mice, where they attach to peritoneal surfaces, form multicellular aggregates or spheroids, and progressively generate disseminated tumor nodules that mimic advanced peritoneal metastatic disease. These models are widely used to study ovarian cancer progression, tumor-microenvironment interactions, and intraperitoneal therapeutic responses, often incorporating bioluminescence or fluorescence imaging to longitudinally monitor tumor burden in vivo. The biological principle relies on the capacity of tumor cells such as SKOV3 or related ovarian carcinoma lines to survive in suspension, aggregate within ascites-like fluid, adhere to mesothelial surfaces, and invade peritoneal organs, thereby recapitulating human peritoneal carcinomatosis patterns observed in advanced disease.
Purity & Documentation
References
[1]. Shi Q, et al. Binding Model for the Interaction of Anticancer Arylsulfonamides with the p300 Transcription Cofactor. ACS medicinal chemistry letters. 2012 Aug 09;3(8):620-5. [Content Brief]
[2]. Wang W, et al. KCN1, a novel synthetic sulfonamide anticancer agent: in vitro and in vivo anti-pancreatic cancer activities and preclinical pharmacology. PloS one. 2012;7(9):e44883. [Content Brief]
[3]. Yin S, et al. Arylsulfonamide KCN1 inhibits in vivo glioma growth and interferes with HIF signaling by disrupting HIF-1α interaction with cofactors p300/CBP. Clin Cancer Res. 2012 Dec 15;18(24):6623-33. [Content Brief]
Calculators
Concentration (start) × Volume (start) = Concentration (final) × Volume (final)
Keywords
- KCN1
- 927823-01-6
- KCN 1
- KCN-1
- HIF/HIF Prolyl-Hydroxylase
- Histone Acetyltransferase
- Apoptosis
- Carbonic Anhydrase
- VEGFR
- GLUT
- p300 CH1 domain
- HPAC human pancreatic cancer cells
- CBP
- LN229 human glioma cells
- BxPC3 human pancreatic cancer cells
- Mia Paca-2 human pancreatic cancer cells
- mouse tumor xenografts
- Panc-1 human pancreatic cancer cells
- HIF-1α
- intracranial glioma models
- Inhibitor
- inhibitor
- inhibit