87 Results for "

ATP binding pocket

" in MedChemExpress (MCE) Product Catalog:
Products (87)

87 Results for "ATP binding pocket" in MCE Product Catalog:

Cat. No.: HY-173275
Target:  

PDGFR

Research Areas:  

Cancer

PDGFRα kinase inhibitor 3 (Compound L7) is a highly potent inhibitor targeting the PDGFRα D842V kinase with IC50s values of 23.8 nM and 2.1 nM in biochemical and cellular assays, respectively. PDGFRα kinase inhibitor 3 binds to the ATP-binding pocket of PDGFRα D842V to block its downstream signaling pathways and inhibit kinase activity. PDGFRα kinase inhibitor 3 can be used for gastrointestinal stromal tumors (GISTs) study .
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Cat. No.: HY-150258
Target:  

Trk Receptor

Research Areas:  

Others

TRK-IN-22 (compound 11) is a TRK inhibitor. TRK-IN-22 (compound 11), a typical type I inhibitor, covers the ATP-binding pocket of TRKA .
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Cat. No.: HY-118902
CAS No.: 496864-14-3
Target:  

CDK

Research Areas:  

Others

Aloisine B (compound 9) is a cyclin-dependent kinase (CDK) inhibitor. Aloisine B inhibits cell proliferation by arresting cells in both G1 and G2 via competing with ATP-binding pocket .
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Cat. No.: HY-N12399
CAS No.: 3027425-38-0
Aplithianines A is a potent inhibitor against J-PKAcα with an IC50 of 1 μM , and inhibits wild-type PKA with an IC50 of 84 nM. Aplithianines A inhibits J-PKAcα catalytic activity by competitively binding to the ATP pocket .
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Cat. No.: HY-119699
CAS No.: 1093793-10-2
Research Areas:  

Cancer

PV1115 is a potent and highly selective Chk2 inhibitor with an IC50 of 0.14 nM, 66000 nM, >100000 nM for Chk2, Chk1 and RSK2, respectively. PV1115 is situated within the ATP-binding pocket of Chk2 .
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Cat. No.: HY-172618
Target:  

FGFR

Research Areas:  

Cancer

FGFR1 inhibitor-18 (compound 16) is a potent FGFR1 inhibitor with an IC50 value of 1.31 nM. FGFR1 inhibitor-18 can occupy within the ATP-binding pocket of the target FGFR1 .
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Cat. No.: HY-149487
Target:  

FGFR

Research Areas:  

Cancer

FGFR1 inhibitor-8 (Compound 9) is a FGFR1 inhibitor (IC50s: 0.5 nM). FGFR1 inhibitor-8 binds to the ATP-binding pocket of FGFR1. FGFR1 inhibitor-8 has anticancer activity .
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Cat. No.: HY-149488
Target:  

FGFR

Research Areas:  

Cancer

FGFR1 inhibitor-9 (Compound 7) is an FGFR1 inhibitor (IC50s: 0.85 nM). FGFR1 inhibitor-9 binds to the ATP-binding pocket of FGFR1. FGFR1 inhibitor-9 has anticancer activity .
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Cat. No.: HY-161395
Target:  

Bacterial

Research Areas:  

Infection

IDD-8E is an effective anti-pseudomonal agent (MIC =4.4 µM ) with no cytotoxicity. IDD-8E shows significant pseudomonal killing and disruption of pseudomonal biofilm. IDD-8E binds to the ATP-binding pocket of WaaP and also inhibits other ESKAPE pathogens.
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Cat. No.: HY-75368
CAS No.: 905580-86-1
Target:  

LRRK2

Research Areas:  

Neurological Disease

SRI-31255 is an orally active LRRK2 inhibitor with IC50 values of 520 and 427 nM for human wild-type (WT) and mutant G2019S, respectively. SRI-31255 exerts neuroprotective effects by binding to the ATP-binding pocket of LRRK2, inhibiting kinase activity. SRI-31255 can be used as a lead compound for the development of LRRK2-targeted drugs for the treatment of Parkinson's disease .
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Cat. No.: HY-164474
Target:  

MEK

Research Areas:  

Cancer

DS03090629 is an orally active, ATP-competitive MEK1/2 inhibitor. DS03090629 binds to the ATP-binding pocket of MEK, and this binding is unaffected by phosphorylation status. DS03090629 exhibits high affinity for both MEK and phosphorylated MEK, with Kd values of 0.11 nM and 0.15 nM, respectively. DS03090629 inhibits the MEK1F53L mutant while retaining activity relative to wild-type MEK1. DS03090629 suppresses the MAPK pathway, cell proliferation, and BRAF overexpression-mediated drug resistance in melanoma cells. DS03090629 can be used for research related to melanoma .
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Cat. No.: HY-156026
Target:  

FAK

Research Areas:  

Cancer

FAK-IN-11 (Compound 4l) is a FAK inhibitor. FAK-IN-11 binds to the ATP binding pocket of FAK, and inhibits phosphorylation of FAK protein. FAK-IN-11 shows cytotoxic activity against the MDA-MB-231 cells with an IC50 of 13.73? μM. FAK-IN-11 induces non-apoptotic cell death in MDA-MB-231 cells .
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Cat. No.: HY-W757743
Synonyms: ACP-196-d3
Acalabrutinib-d3 (ACP-196-d3) is the deuterated form of Acalabrutinib (HY-17600). Acalabrutinib (ACP-196) is an orally active, irreversible, highly selective second-generation BTK inhibitor. Acalabrutinib covalently binds to Cys481 in the ATP-binding pocket of BTK. Acalabrutinib shows strong targeting and efficacy in mouse models of chronic lymphocytic leukemia (CLL).
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Cat. No.: HY-143261
Target:  

GSK-3

GSK-3β inhibitor 7 is a GSK-3β inhibitor with an IC50 value of 5.25 μM. GSK-3β inhibitor 7 is inserted into the ATP-binding binding pocket of GSK-3β and forms hydrogen-bond. GSK-3β inhibitor 7 shows high hepatocyte glucose uptake (83.5%), and can be used in the research of numerous diseases like diabetes, inflammation, cancer, Alzheimer's disease, and bipolar disorder .
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Cat. No.: HY-N0656AR
CAS No.: 7562-61-0
(+)-Usnic acid (Standard) is the analytical standard of (+)-Usnic acid. This product is intended for research and analytical applications. (+)-Usnic acid is isolated from isolated from lichens, binds at the ATP-binding pocket of mTOR, and inhibits mTORC1/2 activity. (+)-Usnic acid inhibits the phosphorylation of mTOR downstream effectors: Akt (Ser473), 4EBP1, S6K, induces autophay, with anti-cancer activity . (+)-Usnic acid possesses antimicrobial activity against a number of planktonic gram-positive bacteria, including Staphylococcus aureus, Enterococcus faecalis, and Enterococcus faecium .
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Cat. No.: HY-103490R
CAS No.: 1111556-37-6
Synonyms: EDHS-206 (Standard)
Takinib (Standard) is the analytical standard of Takinib. This product is intended for research and analytical applications. Takinib (EDHS-206) is an orally active and selective TAK1 inhibitor (IC50=9.5 nM), more than 1.5 log more potent than the second and third ranked targets, IRAK4 (120 nM) and IRAK1 (390 nM), respectively. Takinib is an inhibitor of autophosphorylated TAK1 that non-competitively binds within the ATP binding pocket. Takinib induces apoptosis following TNFα stimulation in cell models of rheumatoid arthritis and metastatic breast cancer. Takinib is also a P. falciparum protein kinase 9 (PfPK9) inhibitor (KD(app) of 0.46 μM) .
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Cat. No.: HY-12491
CAS No.: 691388-62-2
Target:  

PI3K Apoptosis

Research Areas:  

Cancer

PIK-C98 is a potent and selective PI3K inhibitor, with IC50s of 0.59, 1.64, 3.65, and 0.74 μM for α, β, δ, and γ isoforms, respectively. PIK-C98 inhibits all class I PI3Ks but has no effects on AKT or mTOR activity. PIK-C98 interferes with the ATP-binding pockets of PI3Ks by forming H-bonds and arene-H interactions with specific amino acid residues. PIK-C98 induces apoptosis by inhibiting PI3K. PIK-C98 can be used for the research of multiple myeloma .
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Cat. No.: HY-164399A
CAS No.: 1202920-93-1
Target:  

HSP ERK CDK Akt

Research Areas:  

Cancer

SST0116CL1 free base is a HSP90 inhibitor (IC50: 0.21 μM). SST0116CL1 free base binds to the ATP binding pocket of Hsp90, and interferes with Hsp90 chaperone function thus resulting in client protein (EGFR, CDK4 and AKT) degradation. SST0116CL1 free base induces degradation of Her2 in BT-474 cell (IC50: 0.2 μM). SST0116CL1 free base has antiproliferative activity and inhibits tumor growth. SST0116CL1 free base has antiproliferative activity and inhibits tumor growth. SST0116CL1 free base can be used for the study of leukemia, gastric and ovarian carcinoma .
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Cat. No.: HY-P11825
Target:  

Bacterial

Research Areas:  

Infection

APH-IN-1 is an Aminoglycoside phosphotransferase (APH) inhibitor with a Kd values of 63 nM against Escherichia coli APH(3′)-Ia. APH-IN-1 binds primarily to the ATP-binding pocket of APH in an ATP-competitive manner, with binding affinity enhanced by divalent metal ions (Mg 2+ and Ca 2+). APH-IN-1 can be used for the research of aminoglycoside-resistant bacterial infections .
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Cat. No.: HY-P12278
Target:  

EGFR

Research Areas:  

Cancer

NP1 peptide is a cyclic peptide (CHSHGTRAC) and TK-EGFR inhibitor (IC50 = 0.58 nM, Kd = 18.40 μM). NP1 peptide blocks kinase activity by binding to the ATP-binding pocket of TK-EGFR and inhibits autophosphorylation at the EGFR Y1173 site, and it also serves as a pH-responsive nanocarrier for siRNA delivery. NP1 peptide is used in cancer research .
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