Imatinib Free Base CAS 152459-95-5
BCR-ABL, c-KIT & PDGFR Tyrosine Kinase Inhibitor
Imatinib (STI571; the mesylate salt is marketed as Gleevec / Glivec) is the first rationally designed targeted cancer therapy and the compound that defined the modern kinase-inhibitor era. This 2-phenylaminopyrimidine binds the ATP pocket of BCR-ABL only in its inactive DFG-out conformation, and also potently inhibits c-KIT (CD117) and PDGFR-α/β — the molecular basis of its activity in Philadelphia-chromosome-positive leukaemia and in KIT-driven gastrointestinal stromal tumours.
Molecular Information
CAS: 152459-95-5
Formula: C29H31N7O
MW: 493.60 g/mol
Purity: ≥98% (HPLC)
SMILES: Cc1ccc(cc1Nc1nccc
(n1)c1cccnc1)NC(=O)
c1ccc(cc1)CN1CCN(C)CC1
InChIKey: KTUFNOKKBVMGRW
-UHFFFAOYSA-N
MP: 208-210°C (dec.)
Appearance: White to off-white powder
Solubility: DMSO; methanol;
water (pH-dependent)
Synonyms: STI571 / CGP 57148
Storage: -20°C, sealed, desiccated
Imatinib Technical Specifications & QC Parameters
Complete physicochemical data and quality-control profile for research-grade imatinib free base (CAS 152459-95-5)
📋 Physicochemical Properties
- Product NameImatinib (free base)
- IUPAC Name4-[(4-Methylpiperazin-1-yl)methyl]-N-(4-methyl-3-{[4-(pyridin-3-yl)pyrimidin-2-yl]amino}phenyl)benzamide
- CAS Number152459-95-5
- Mesylate Salt CAS220127-57-1
- SynonymsSTI571 / CGP 57148 / CGP57148B
- Molecular FormulaC29H31N7O
- Molecular Weight493.60 g/mol
- Exact Mass493.2590 Da
- SMILESCc1ccc(cc1Nc1nccc(n1)c1cccnc1)NC(=O)c1ccc(cc1)CN1CCN(C)CC1
- InChIKeyKTUFNOKKBVMGRW-UHFFFAOYSA-N
- AppearanceWhite to off-white / pale beige powder
- Melting Point208-210°C (dec.)
- pKa8.07 / 3.73 / 2.56 / 1.52 (predicted, 25°C)
- Chemical Class2-Phenylaminopyrimidine
🔬 Quality Control & Handling
- Purity (HPLC)≥98%
- FormCrystalline powder
- Kinase TargetsBCR-ABL / v-ABL, c-KIT (CD117), PDGFRA, PDGFRB
- Typical PotencyIC50 ≈ 0.1-0.6 µM (cellular ABL, c-KIT, PDGFR)
- Binding ModeATP-competitive, inactive DFG-out conformation
- SolubilityDMSO (warm/sonicate); methanol; water pH-dependent — mesylate freely soluble below pH 5.5
- Storage Condition-20°C, sealed, desiccated, dark
- Stock Solution Storage-20°C to -80°C, aliquoted, avoid freeze-thaw
- QC DocumentationCOA / HPLC / NMR / MS / MSDS
- Pack Sizes1g / 5g / 10g / 100g / 1KG
- Stock StatusIn Stock
- Use StatementResearch use only; not for human or clinical use
Kinase Target Profile & Downstream Signalling
Imatinib is remarkably selective for a small family of structurally related tyrosine kinases — the reason it became the template for rational kinase drug design
Imatinib Mechanism of Action: Conformational Selection at the ATP Pocket
From Philadelphia chromosome to apoptosis — how one molecule shut down an oncogenic kinase and created targeted oncology
The Oncogenic Driver
The t(9;22) Philadelphia translocation fuses BCR to ABL1, producing a constitutively active cytoplasmic tyrosine kinase that autophosphorylates without any upstream signal — the single genetic lesion sufficient to cause chronic myeloid leukaemia.
Conformational Selection
Imatinib does not bind the active kinase. It engages only the closed, inactive DFG-out state, in which the Asp-Phe-Gly motif flips outward and opens an adjacent hydrophobic allosteric pocket. This conformational requirement is the origin of its selectivity.
ATP-Pocket Occupancy
The pyridinyl-pyrimidine hydrogen bonds to hinge residue Met318; the anilino NH contacts the gatekeeper Thr315; the amide bridges to Glu286 and Asp381; and the N-methylpiperazine picks up ionic contacts at the solvent front — six hydrogen bonds in total.
Signal Shutdown
With ATP excluded, BCR-ABL can no longer phosphorylate CRKL, GAB2, STAT5 and other substrates. The RAS/MAPK proliferative arm, the PI3K/AKT survival arm and STAT5-driven transcription all collapse within hours of exposure.
Apoptosis in Driver-Dependent Cells
Because Ph-positive cells are addicted to BCR-ABL signalling, loss of the survival signal releases BIM and BAD, triggering mitochondrial apoptosis. Normal haematopoietic cells lacking the fusion are largely spared — the therapeutic index of targeted therapy.
Parallel c-KIT and PDGFR Blockade
c-KIT and PDGFRA/B share the same DFG-out-accessible architecture, so the same molecule shuts down KIT exon 11-mutant GIST, PDGFRA-rearranged myeloid neoplasms and PDGFR-driven fibrotic signalling — the basis of imatinib's second and third indications.
Research Applications of the BCR-ABL Inhibitor Imatinib
A reference tyrosine kinase inhibitor across oncology, resistance biology, fibrosis and beyond
Chronic Myeloid Leukaemia (CML)
The canonical BCR-ABL model system. Imatinib is the benchmark comparator in K562, KU812, KCL-22 and BaF3/BCR-ABL assays, in colony-forming and apoptosis studies, and in molecular-response work tracking BCR-ABL transcript levels and CRKL phosphorylation.
Haematologic OncologyGastrointestinal Stromal Tumour & c-KIT Biology
About 80% of GIST is driven by activating KIT mutations, most often exon 11. Imatinib is the standard tool for probing genotype-dependent sensitivity in GIST-T1 and GIST882 lines, for studying mast-cell and interstitial-cell-of-Cajal biology, and for CD117-directed research.
c-KIT / GISTTKI Resistance & the T315I Gatekeeper
Imatinib underpins the entire field of kinase-inhibitor resistance: kinase-domain point mutations (T315I, E255K, Y253H, M351T), BCR-ABL amplification, efflux via ABCB1/ABCG2 and BCR-ABL-independent bypass signalling are all mapped against imatinib as the reference agent.
Resistance BiologyStructural Biology & Rational Drug Design
The ABL–imatinib co-crystal structure is one of the most reproduced images in medicinal chemistry and remains the teaching example of type II, DFG-out kinase inhibition. Widely used in docking validation, fragment-growing exercises and conformational-selection studies.
Structure-Based DesignPDGFR-Driven Fibrosis & Vascular Remodelling
PDGF signalling drives fibroblast proliferation and myofibroblast transition. Imatinib is applied in pulmonary fibrosis, systemic sclerosis, hepatic stellate cell activation, pulmonary arterial hypertension and vascular restenosis models as a PDGFR-blockade tool.
Fibrosis ResearchMyeloproliferative & Eosinophilic Neoplasms
FIP1L1-PDGFRA fusion hypereosinophilic syndrome, PDGFRB-rearranged chronic myelomonocytic leukaemia, dermatofibrosarcoma protuberans (COL1A1-PDGFB) and systemic mastocytosis are all imatinib-sensitive fusion-driven models used in translational research.
Fusion-Driven DiseasePharmacokinetics, Transporters & Drug Interactions
Imatinib is a CYP3A4 substrate and inhibitor, an OCT1 influx substrate and an ABCB1/ABCG2 efflux substrate, making it a standard probe compound in transporter, DDI, plasma-protein-binding (AGP) and therapeutic-drug-monitoring method development.
DMPK / ADMERepurposing & Off-Oncology Research
Explored in type 1 and type 2 diabetes, graft-versus-host disease, pulmonary hypertension, atherosclerosis, neuroinflammation and antiviral/antibacterial ABL-dependent entry pathways — imatinib's clean selectivity makes it a favoured repurposing probe.
Drug RepurposingAnalytical Reference & Impurity Profiling
Used as a working reference standard for HPLC/UPLC-MS method development, imatinib and imatinib mesylate assay validation, dissolution testing, salt-form and polymorph characterisation, and as the parent for the active metabolite CGP74588.
Analytical StandardLandmark Publications on Imatinib (STI571)
The papers that established targeted kinase therapy and defined resistance biology
Imatinib Pack Sizes & Ordering Information
Research-grade imatinib free base (CAS 152459-95-5) supplied with full QC documentation — available in 1g / 5g / 10g / 100g / 1KG
| Tier | Pack Size | Stock Status | Typical Use Case | Shipping Notes |
|---|---|---|---|---|
| Standard | 1 g | In Stock | Kinase assays, cell viability and apoptosis panels, IC50 determination | Same/next-day dispatch; amber vial with desiccant |
| Medium | 5 g | In Stock | Resistance-mutant screening, xenograft pilot studies, combination work | Same/next-day dispatch; sealed foil pouch, ambient shipping |
| Large | 10 g | In Stock | In vivo oncology cohorts, analytical reference standard qualification | 1-2 business days; double-sealed, light-protected |
| Bulk | 100 g | In Stock | Formulation and salt-form development, polymorph and dissolution studies | Quote to confirm; HDPE container, cool-chain option available |
| Industrial | 1 KG | Made to order | Pilot-scale campaigns, CRO/CMO supply agreements, salt conversion to mesylate | Batch delivery on campaign schedule; per-lot COA and export documents |
💡 Reference pack sizes shown above; for current pricing, lot availability and bulk imatinib quotations please contact us for a quote. Tiered discounts apply to 100 g and 1 KG orders.
Imatinib Frequently Asked Questions (FAQ)
What is imatinib and why is it historically important?
What is the difference between imatinib free base and imatinib mesylate?
How exactly does imatinib inhibit BCR-ABL?
Why does the T315I gatekeeper mutation abolish imatinib activity?
How does imatinib compare with dasatinib and nilotinib?
Why is imatinib active in GIST, and does the KIT genotype matter?
How should imatinib free base be dissolved for in vitro work?
What concentrations of imatinib are typically used in cell assays?
What are the main mechanisms of imatinib resistance studied in the laboratory?
What QC documentation is supplied, and are bulk quantities available?
Need Imatinib for Your Kinase Inhibitor Research?
Research-grade imatinib free base (CAS 152459-95-5, STI571) — purity ≥98% HPLC, COA included, 1g to 1KG
The reference BCR-ABL, c-KIT and PDGFR tyrosine kinase inhibitor — request your quote today




