DNMT-IN-6
DNMT-IN-6 is a DNA methyltransferase inhibitor with activity against DNMT1, DNMT3A, and DNMT3B. DNMT-IN-6 drives demethylation, and restores TMS1 tumor suppressor gene expression. DNMT-IN-6 induces apoptosis, causes G2/M phase arrest, disrupts mitochondrial integrity, and activates the intrinsic caspase cascade (3/7/9). DNMT-IN-6 inhibits tumor growth, and improves survival in xenograft models. DNMT-IN-6 can be used for the research of cancer, such as diffuse large B-cell lymphoma.
For research use only. We do not sell to patients.
- CAS No.: 3038316-36-5
- Formula: C19H18AsNO3S2
- Molecular Weight:447.40
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Storage:
Please store the product under the recommended conditions in the Certificate of Analysis.
Biological Activity
Description
IC50 & Target
[1]|
Caspase 3 |
Caspase 9 |
DNMT1 |
DNMT3A |
DNMT3B |
In Vitro
DNMT-IN-6 (Compound CZ2) (0.2-1.4 μM; 24-48 h) potently inhibits proliferation of SUDHL-4, SUDHL-6, and DB DLBCL cell lines in a dose- and time-dependent manner, with 24 h IC50 values of 0.67 μM, 0.72 μM, and ~0.90 μM respectively, and exhibits minimal cytotoxicity to normal HK-2 and MIN-6 cells[1].
DNMT-IN-6 (1 μM; 24 h) induces mitochondrial membrane depolarization in SUDHL-4 and SUDHL-6 DLBCL cells[1].
DNMT-IN-6 (1 μM; 24 h) significantly induces apoptosis in SUDHL-4 and SUDHL-6 DLBCL cells, and activates caspase-3 and caspase-9[1].
DNMT-IN-6 (1 μM; 24 h) reduces intracellular ATP levels in SUDHL-4 and SUDHL-6 DLBCL cells[1].
DNMT-IN-6 (1 μM; 24 h) induces G2/M cell cycle arrest in SUDHL-6 DLBCL cells[1].
DNMT-IN-6 (1 μM; 24 h) reduces TMS1 promoter methylation, increases TMS1 expression, and decreases DNMT1, DNMT3A, and DNMT3B expression in SUDHL-4 and SUDHL-6 DLBCL cells[1].
DNMT-IN-6 (1 μM; 24 h) inhibits the binding of DNMT3A to the TMS1 promoter in SUDHL-4 DLBCL cells, contributing to TMS1 promoter demethylation[1].
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:diffuse large B-cell lymphoma (DLBCL) cell lines SUDHL-4, SUDHL-6, DB; normal human cell lines HK-2, MIN-6
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Concentration:0.2, 0.4, 0.6, 0.8, 1.0, 1.2, 1.4 μM
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Incubation Time:24, 36. 48 h
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Result:Inhibited proliferation of DLBCL cells in a dose- and time-dependent manner.
Reduced IC50 in SUDHL-4 cells to 0.67±0.08 μM at 24 h, and 0.38±0.05 μM at 48 h.
Reduced IC50 in SUDHL-6 cells to 0.72±0.09 μM at 24 h, and 0.41±0.06 μM at 48 h.
Maintained an IC50 of ~0.90 μM in DB cells across 24-48 h.
Showed minimal cytotoxicity to HK-2 and MIN-6 normal cells at 1 μM for 24 h.
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Cell Line:DLBCL cell lines SUDHL-4, SUDHL-6
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Concentration:1 μM
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Incubation Time:24 h (CZ2 treatment); 1 h (Z-VAD-FMK pre-incubation)
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Result:Significantly increased the percentage of apoptotic (Annexin V+/PI- early apoptotic and Annexin V+/PI+ late apoptotic/necrotic) cells in SUDHL-4 and SUDHL-6 cells.
Was effectively blocked by pre-incubation with Z-VAD-FMK (HY-16658B) in SUDHL-4 cells.
Increased caspase-3 and caspase-9 levels.
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Cell Line:DLBCL cell line SUDHL-6
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Concentration:1 μM
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Incubation Time:24 h
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Result:Induced G2/M cell cycle arrest in SUDHL-6 cells, with a significant increase in the percentage of cells in G2/M phase.
Parmacokinetics
| Species | Dose | Route | T1/2 | Tmax | Cmax | AUC0-t | AUC0-∞ | MRT0-t | MRT0-∞ | C0 | Vss | Vz | CL |
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Mice[1] | 3.5 mg/kg | i.v. | 2.68 h | 0.083 h | 1155.00 ng/mL | 572.26 | 617.02 | 1.37 h | 2.18 h | 3121.62 ng/mL | 13.60 L/kg | 23.68 L/kg | 99.50 mL/min/kg |
In Vivo
MedChemExpress (MCE) has not independently confirmed the accuracy of these methods. They are for reference only.
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Animal Model:BALB/c nude (4-6 week-old male; subcutaneous xenograft via injection of 1×107 SUDHL-4 cells)[1]
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Dosage:3.5 mg/kg
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Administration:i.p.; every other day; 12 days
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Result:Achieved 71.39% tumor growth inhibition.
Significantly reduced final tumor weight compared to controls.
Significantly prolonged overall survival of tumor-bearing mice.
Significantly upregulated TMS1 protein expression and downregulated DNMT3A protein expression in tumor tissue.
Showed no significant alteration in peripheral white blood cell counts, no significant histopathological changes in heart, liver, or kidney tissues, and no significant difference in kidney injury markers KIM-1 and NGAL relative to controls.
Chemical Information
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CAS No. 3038316-36-5
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Molecular Weight 447.40
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Formula C19H18AsNO3S2
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SMILES
O=C(NC1=CC=C(C=C1)[As]2SCCCS2)/C=C/C3=CC4=C(OCO4)C=C3
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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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RT-PCR
Reverse transcription technology uses RNA as a template to synthesize DNA. RT-PCR is simple, specific and sensitive, and can be used to detect gene expression levels and expression differences in cells; detect RNA virus content; clone cDNA sequences of specific genes.
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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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Patient-Derived Orthotopic Xenograft (PDOX)
Patient-derived orthotopic xenograft (PDOX) modeling implants fresh patient tumor tissue or patient-derived tumor cells into the anatomically corresponding organ or tissue site of immunodeficient mice, usually by surgical orthotopic implantation, to preserve patient tumor histology, local microenvironmental context, invasion, metastatic behavior, and treatment-response features better than subcutaneous implantation. PDOX readouts include tumor engraftment, orthotopic tumor growth, local invasion, metastasis, recurrence after resection, histologic similarity to the donor tumor, biomarker retention, molecular concordance, survival, and response or resistance to therapy. PDOX models are used for preclinical drug testing and individualized therapy evaluation, but engraftment success varies by tumor type and specimen quality.
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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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Real Time qPCR (Q-PCR)
Real-time quantitative PCR (qPCR) quantifies an amplifiable nucleic-acid target by monitoring fluorescence during PCR cycling rather than measuring product only after amplification. The increase in fluorescence tracks accumulation of PCR product, and the quantification cycle (Cq; historically also Ct/CP) is related to the initial amount of target: samples containing more starting target generally reach the defined fluorescence threshold in fewer cycles.
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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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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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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
Calculators
Concentration (start) × Volume (start) = Concentration (final) × Volume (final)