2986 Results for "

broad

" in MedChemExpress (MCE) Product Catalog:
Products (2986)

2986 Results for "broad" in MCE Product Catalog:

Cat. No.: HY-L058
1,379 compounds

Glycolysis is a series of metabolic processes by which one molecule of glucose is catabolized to two molecules of pyruvate with a net gain of two ATP. Glycolysis takes place in 10 steps and catalyzed by a series of enzyme, such as hexokinase, Glucose-6-phosphate isomerase, Phosphofructokinase, etc. Glycolysis is used by all cells in the body for energy generation.

Most cancer cells exhibit increased glycolysis and use this metabolic pathway for generation of ATP as a main source of their energy supply. This phenomenon is known as the Warburg effect and is considered as one of the most fundamental metabolic alterations during malignant transformation. Because increased aerobic glycolysis is commonly seen in a wide spectrum of human cancers, development of novel glycolytic inhibitors as a new class of anticancer agents is likely to have broad therapeutic applications.

MCE provides a unique collection of 1,379 glycolysis compounds that mainly target hexokinase, glucokinase, enolase, pyruvate kinase, PDHK, etc. MCE Glycolysis Compound Library is a useful tool for glucose metabolism research and anti-cancer drug discovery.

Cat. No.: HY-L062
2,593 compounds

Neurotransmitter (NT) receptors, also known as neuroreceptors, are a broadly diverse group of membrane proteins that bind neurotransmitters for neuronal signaling. There are two major types of neurotransmitter receptors: ionotropic and metabotropic. Ionotropic receptors are ligand-gated ion channels, meaning that the receptor protein includes both a neurotransmitter binding site and an ion channel. The binding of a neurotransmitter molecule (the ligand) to the binding site induces a conformational change in the receptor structure, which opens, or gates, the ion channel. The term “metabotropic receptors” is typically used to refer to transmembrane G-protein-coupled receptors. Metabotropic receptors trigger second messenger-mediated effects within cells after neurotransmitter binding.

In some neurological diseases, the neurotransmitter receptor itself appears to be the target of the disease process. Many neuroactive drugs act by modifying neurotransmitter receptors. A better understanding of neurotransmitter receptor changes in disease may lead to improvements in therapy.

MCE designs a unique collection of 2,593 compounds targeting a variety of neurotransmitter receptors. MCE Neurotransmitter Receptor Compound Library is a useful tool for neurological diseases drug discovery.

Cat. No.: HY-170932
Target:  

EGFR COX Apoptosis

Research Areas:  

Cancer

EGFR/COX-2-IN-1 is an EGFR/COX-2 inhibitor. EGFR/COX-2-IN-1 inhibits EGFR WT, EGFR T790M, COX-1 and COX-2 with IC50s of 0.12, 0.076, 20.1 and 1.52 μM respectively. EGFR/COX-2-IN-1 inhibits and with IC50s of , respectively. EGFR/COX-2-IN-1 inhibits MCF-7, HT-29 and A-549 with IC50s of 1.20, 5.14 and 14.81 μM, respectively. EGFR/COX-2-IN-1 displays Apoptosis induction by up-regulating Bax and down-regulating Bcl-2 protein levels. EGFR/COX-2-IN-1 results in a significant increase in the percentage of cells at the G2/M in MFC-7 cells. EGFR/COX-2-IN-1 exhibits broad-spectrum antitumor effects .
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Cat. No.: HY-173132
CAS No.: 3114057-78-9
Research Areas:  

Cancer

AKR1Cs-IN-1 (Compound 29) is a potent and broad-spectrum inhibitor targeting members of the Aldo-Keto Reductase 1C family (AKR1C1-1C4). By simultaneously occupying the SP2 and SP3 pockets, it effectively inhibits multiple isoforms and disrupts metabolic pathways associated with drug resistance. In enzymatic activity assays, AKR1Cs-IN-1 exhibited significant inhibitory potency, with IC50 values of 0.09, 0.28, 0.05, and 0.51 µM against AKR1C1, AKR1C2, AKR1C3, and AKR1C4, respectively. In the doxorubicin (DOX)-resistant breast cancer cell line MCF-7/ADR, AKR1Cs-IN-1 showed remarkable resensitization effects and significantly enhanced the cytotoxicity of DOX. AKR1Cs-IN-1 holds promise for research on overcoming drug resistance in breast cancer .
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Cat. No.: HY-178061
CAS No.: 2598870-24-5
Target:  

ERK RET

Research Areas:  

Cancer

APS03118 is an orally active, potent and selective rearranged during transfection (RET) inhibitor. APS03118 broadly inhibits RET fusions and mutations (including G810, V804, L730, and Y806 variants), with IC50 values predominantly below 1 nM (0.095 nM for WT; ranging from 0.00438 to 5.72 nM for mutants), and demonstrates marked superiority against RET G810 mutations. APS03118 inhibits the entire RET signaling pathway (including RET, Shc, and ERK1/2), with >20-fold selectivity over most off-target kinases (except FLT3 and YES). APS03118 induces complete tumor regression in KIF5B-RET and CCDC6-RET V804 M patient derived xenografts (PDXs) and significantly prolongs survival in an intracranial CCDC6-RET metastasis mice model. APS03118 can be used for selective RET inhibitor (SRI)-resistant, RET-driven cancer research .
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Cat. No.: HY-18234AR
CAS No.: 103476-89-7
Leupeptin hemisulfate (Standard) is the analytical standard of Leupeptin hemisulfate (HY-18234A ). This product is intended for research and analytical applications. Leupeptin hemisulfate is a broad-spectrum protease inhibitor . By inhibiting the activation of the PTEN/PI3K/Akt/NF-κB/ERK1/2/p38 signaling pathway, Leupeptin hemisulfate significantly reduces LPS-induced NO and ROS production, mitochondrial membrane potential hyperpolarization, phagocytic activity, pro-inflammatory cytokine release, and M1 polarization in mouse peritoneal macrophages, and reverses autophagic flux impairment. It also decreases Concanavalin A (HY-P2149)-induced proliferation index of mouse splenic lymphocytes and the Th1/IL-10 and Th2/IL-10 cytokine ratios, thereby modulating innate and adaptive immune responses. Leupeptin hemisulfate inhibits blood coagulation and tumorigenesis in mouse skin. Leupeptin hemisulfate can be used in research on chronic inflammatory diseases and skin tumorigenesis .
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Cat. No.: HY-N0565AG
CAS No.: 10592-13-9
Doxycycline hydrochloride GMP is Doxycycline (hydrochloride) (HY-N0565A) produced by using GMP guidelines. GMP small molecules works appropriately as an auxiliary reagent for cell therapy manufacture. Doxycycline hydrochloride is an orally active highly lipophilic, tissue-permeable MMP inhibitor with broad-spectrum antibacterial activity. Doxycycline hydrochloride is also a semi-synthetic antibiotic with chelating properties, which blocks bacterial protein synthesis and inhibits extracellular matrix degradation through interactions with zinc and calcium atoms. Doxycycline hydrochloride also inhibits mitochondrial biogenesis, translation, and the expression of respiratory chain proteins. Doxycycline hydrochloride induces apoptosis, inhibits autophagy and EMT, downregulates stem cell markers, and activates the PI3K-AKT pathway, thereby effectively inhibiting the viability and proliferation of cancer cells such as breast cancer cells. Doxycycline hydrochloride also promotes the survival and self-renewal of embryonic stem cells and neural stem cells, and reduces the frequency of medium changes in culture. Doxycycline hydrochloride has been applied in studies related to breast cancer, prostate cancer, bladder cancer, and other cancers .
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Cat. No.: HY-N0565BR
CAS No.: 24390-14-5
Synonyms: Doxycycline hydrochloride hemiethanolate hemihydrate (Standard); WC2031 (Standard)
Doxycycline hyclate (Standard) is the analytical standard of Doxycycline hyclate (HY-N0565B). This product is intended for research and analytical applications. Doxycycline hyclate is an orally active highly lipophilic, tissue-permeable MMP inhibitor with broad-spectrum antibacterial activity. Doxycycline hyclate is also a semi-synthetic antibiotic with chelating properties, which blocks bacterial protein synthesis and inhibits extracellular matrix degradation through interactions with zinc and calcium atoms. Doxycycline hyclate also inhibits mitochondrial biogenesis, translation, and the expression of respiratory chain proteins. Doxycycline hyclate induces apoptosis, inhibits autophagy and EMT, downregulates stem cell markers, and activates the PI3K-AKT pathway, thereby effectively inhibiting the viability and proliferation of cancer cells such as breast cancer cells. Doxycycline hyclate also promotes the survival and self-renewal of embryonic stem cells and neural stem cells, and reduces the frequency of medium changes in culture. Doxycycline hyclate has been applied in studies related to breast cancer, prostate cancer, bladder cancer, and other cancers .
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Cat. No.: HY-N0565S1
Doxycycline-d3 hyclate (major) is the deuterium labeled Doxycycline hyclate (HY-N0565B). Doxycycline hyclate is an orally active highly lipophilic, tissue-permeable MMP inhibitor with broad-spectrum antibacterial activity. Doxycycline hyclate is also a semi-synthetic antibiotic with chelating properties, which blocks bacterial protein synthesis and inhibits extracellular matrix degradation through interactions with zinc and calcium atoms. Doxycycline hyclate also inhibits mitochondrial biogenesis, translation, and the expression of respiratory chain proteins. Doxycycline hyclate induces apoptosis, inhibits autophagy and EMT, downregulates stem cell markers, and activates the PI3K-AKT pathway, thereby effectively inhibiting the viability and proliferation of cancer cells such as breast cancer cells. Doxycycline hyclate also promotes the survival and self-renewal of embryonic stem cells and neural stem cells, and reduces the frequency of medium changes in culture. Doxycycline hyclate has been applied in studies related to breast cancer, prostate cancer, bladder cancer, and other cancers .
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Cat. No.: HY-N4118A
CAS No.: 6014-81-9
Synonyms: (-)-Cephaeline dihydrobromide; NSC 32944 dihydrobromide
Cephaeline dihydrobromide ((-)-Cephaeline dihydrobromide; NSC 32944 dihydrobromide) is a ferroptosis inducer, with broad-spectrum anticancer and antiviral activities. Cephaeline dihydrobromide induces ferroptosis (Ferroptosis) by upregulating p53, inhibiting NRF2, activating ULK3, downregulating the expressions of SLC7A11 and GPX4 in a p53-dependent manner, reducing GSH and mitochondrial membrane potential, and increasing lipid peroxidation and iron accumulation. Cephaeline dihydrobromide inhibits cancer cell proliferation, migration and tumor growth. Cephaeline dihydrobromide inhibits Ebola virus (EBOV) VLP entry and infection, with IC50 values of 3.27 μM and 22.18 μM respectively; it also inhibits Zika virus (ZIKV) NS5 RdRp activity (IC50 = 976 nM), and binds to severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) RdRp and N protein, with Kd values of 8.9 μM and 53.8 μM respectively. Cephaeline dihydrobromide can be used in studies related to breast cancer, lung cancer, COVID-19, EBOV and ZIKV infections .
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Cat. No.: HY-W015490R
CAS No.: 130-15-4
1,4-Naphthoquinone is an inhibitor with broad-spectrum inhibitory activity targeting DNA polymerase, NF-κB and monoamine oxidase (MAO-A/B), with antibacterial and anti-biofilm efficacy. 1,4-Naphthoquinone is a competitive inhibitor of MAO-B (Ki=1.4 μM) and a non-competitive inhibitor of MAO-A (Ki=7.7 μM). 1,4-Naphthoquinone inhibits DNA polymerase pol α, β, γ, δ, ε, λ with IC50 ranging from 5.57-128 μM. 1,4-Naphthoquinone inhibits tumor cell proliferation, induces apoptosis and necrosis, and has anti-angiogenic and anti-inflammatory activities by inducing oxidative stress, depleting glutathione (GSH), inhibiting DNA polymerase-mediated DNA synthesis and blocking NF-κB nuclear translocation. 1,4-Naphthoquinone can be used in anti-bacterial , anti-tumor and anti-inflammatory studies, including inhibition of melanoma and colon cancer cell growth and endothelial cell function, as well as LPS-induced inflammation models .
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Cat. No.: HY-W075183S
Synonyms: Tris-biphenyl triazine-d10
2,4,6-Tri([1,1'-biphenyl]-4-yl)-1,3,5-triazine-d10 (Tris-biphenyl triazine-d10) is deuterium labeled 2,4,6-Tri([1,1'-biphenyl]-4-yl)-1,3,5-triazine. 2,4,6-Tri([1,1'-biphenyl]-4-yl)-1,3,5-triazine (Tris-biphenyl triazine) is a nitrogen-containing MOF ligand. 2,4,6-Tri([1,1'-biphenyl]-4-yl)-1,3,5-triazine can be used in electronic materials and organic light-emitting diodes (OLEDs). Additionally, 2,4,6-Tri([1,1'-biphenyl]-4-yl)-1,3,5-triazine serves as a highly efficient, broad-spectrum UV absorber.
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Cat. No.: HY-L213
265 compounds

The anti-cancer drug library meticulously collects all drugs approved by FDA and other major national drug regulatory authorities for cancer treatment. These drugs cover a variety of cancer types, including but not limited to lung cancer, breast cancer, colorectal cancer, leukemia, and other common cancers. The library includes a wide range of drugs, from classic chemotherapeutic agents to cutting-edge targeted therapies and immunotherapies. It contains various types of drug compounds with different mechanisms of action. There are cytotoxic drugs that directly kill cancer cells, as well as drugs that work by modulating the tumor microenvironment, inhibiting tumor angiogenesis, and activating the immune system. This diversity provides researchers with a broad range of perspectives and options for intervention strategies.

This library can be used for basic research on cancer treatment, exploring new targets and new mechanisms of drug action; Conducting drug reuse research to look for potential therapeutic effects of existing drugs on other cancer types or diseases; Or conducting research into combination drugs to optimize cancer treatment.

MCE has collected 265 small-molecule compounds with cancer indications, which are good tools for drug repurposing.

Cat. No.: HY-L014
1,801 compounds

Nuclear factor-κB (NF-κB)/Rel proteins include NF-κB2 p52/p100, NF-κB1 p50/p105, c-Rel, RelA/p65, and RelB. These proteins function as dimeric transcription factors that regulate the expression of genes and influence a broad range of biological processes including innate and adaptive immunity, inflammation, stress responses, B-cell development, and lymphoid organogenesis. NF-κB plays a key role in regulating the immune response to infection. In addition, activation of the NF-κB pathway is involved in the pathogenesis of chronic inflammatory diseases, such as asthma, rheumatoid arthritis, and inflammatory bowel disease. Incorrect regulation of NF-κB has been linked to cancer, inflammatory and autoimmune diseases, septic shock, viral infection, and improper immune development.

MCE owns a unique collection of 1,801 small molecule compounds that can be used in the research of NF-κB signaling pathway or high throughput screening (HTS) related drug discovery.

Cat. No.: HY-182759
MN33-47 is a multi-target anti-tumor compound with broad-spectrum anti-proliferative activity. MN33-47 relieves the inhibition of the mitochondrial apoptosis pathway by downregulating the anti-apoptotic protein Bcl-2, while activating caspase-3 and inhibiting Topoisomerase I activity, thereby promoting its degradation through the ubiquitin-proteasome and autophagy-lysosome pathways. MN33-47 can also induce DNA cross-linking and G2/M cell cycle arrest, inhibit cancer cell migration and activate the mitochondrial apoptosis pathway, thus exerting potent anti-tumor effects. MN33-47 can improve the water solubility of SN-38 (HY-13704), and exhibits dose-dependent tumor growth inhibition effects in CT26 tumor-bearing mouse models without obvious toxic and side effects. MN33-47 can be used in related studies on colorectal adenocarcinoma, cervical adenocarcinoma, hepatocellular carcinoma, alveolar basal epithelial adenocarcinoma, gastric cancer and colon cancer .
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Cat. No.: HY-19655S
Synonyms: ABT-773-d6; Abbott-195773-d6; A-195773-d6
Cethromycin-d6 (ABT-773-d6; Abbott-195773-d6; A-195773-d6) is the d6-labeled Cethromycin (HY-19655). Cethromycin (ABT-773; Abbott-195773) is an orally effective ketolide antibiotic with broad-spectrum antibacterial activity. Cethromycin binds to domains II/V of the 23S rRNA of the 50S subunit, inhibiting bacterial protein synthesis. Cethromycin can accumulate in lung tissue, alveolar macrophages, epithelial lining fluid, and human polymorphonuclear leukocytes. Cethromycin exhibits potent in vitro activity against a variety of respiratory pathogens, including Mycoplasma pneumoniae. Cethromycin exhibits significant intracellular and pulmonary enrichment and anti-inflammatory effects against mycoplasma pneumonia in mouse models, improving airway obstruction and airway hyperresponsiveness. Cethromycin disrupts the apicoplast and reduces liver-stage parasite burden during the liver stage of Plasmodium berghei. Cethromycin can be used in research related to pneumonia, Staphylococcus aureus infection, gonorrhea, and malaria .
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Cat. No.: HY-P11242
Cm-CATH2 is an antimicrobial peptide discovered from Chelonia mydas. Cm-CATH2 has a potent, broad-spectrum and rapid bactericidal ability by rapidly destroying the integrity of bacterial cell membranes. It shows strong activity against Gram-positive bacteria (such as VREF, Staphylococcus aureus), Gram-negative bacteria (such as Escherichia coli, Klebsiella pneumoniae), and fungi (such as Candida albicans) with MICs ranges from 1.17 to 18.75 μg/mL. Cm-CATH2 is also effective against various aquatic pathogenic bacteria. Cm-CATH2 not only inhibits biofilm formation but can also remove the formed biofilms. Cm-CATH2 has immunomodulatory functions and chemotactic effects on immune cells, and can inhibit the production of pro-inflammatory cytokines by macrophages stimulated by LPS (HY-D1056). Cm-CATH2 prevents the activation of NF-κB by inhibiting the degradation of IκBα, and also inhibits the phosphorylation of MAPK signaling pathways (p38, JNK, ERK). Cm-CATH2 demonstrates strong anti-infective ability in mouse peritonitis models and pneumonia models .
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Cat. No.: HY-10032A
CAS No.: 1247874-19-6
Target:  

14-3-3 Protein

PF-477736 (hydrochloride) is an ATP-competitive Chk1 inhibitor (Ki 0.49 nM) that also inhibits CK2A1, PKCA, and Akt1, and is a broad-spectrum kinase inhibitor .PF-477736 induces apoptosis via PARP cleavage, caspase-3/7 activation, caspase-independent death, BAX and PUMA upregulation, H2AX phosphorylation, DNA fragmentation, and Chk1 proteasomal degradation, while inhibiting proliferation and preventing mitotic entry .PF-477736 demonstrates selective synthetic lethality in LIMD1-deficient cells, efficacy in subcutaneous xenograft models of LIMD1-deficient tumors, and anti-proliferative activity against leukemia and lymphoma cell lines .PF-477736 induces DNA double-strand breaks and activates the ATM-p53-p21 axis, and sensitizes CHK1i-insensitive neuroblastoma cells to apoptosis with ATM or DNA-PK inhibitors .PF-477736 can be used for the research of non-small cell lung cancer, leukemia, lymphoma, and neuroblastoma .
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Cat. No.: HY-179013
CAS No.: 812683-94-6
Research Areas:  

Infection

NS2B/NS3-IN-9 (Compound 73) is a broad-spectrum, non-competitive anti-Orthoflavivirus lipopeptide inhibitor targeting the NS2B-NS3 protease. NS2B/NS3-IN-9 exhibits IC50 values for Dengue virus DENV2 NS2B-NS3, West Nile virus WNV NS2B-NS3, and Zika virus ZIKV NS2B-NS3 of 2.4, 7.2, and 1.9 μM, respectively. NS2B/NS3-IN-9 also exhibits antiviral activity at the cellular level against DENV2, WNV, and ZIKV, with EC50 values of 4.1, 4.9, and 5.0 μM, respectively. NS2B/NS3-IN-9 has no significant toxicity to cells. NS2B/NS3-IN-9 can be used for the study of anti-Orthoflavivirus .
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Cat. No.: HY-187340
Target:  

c-Kit c-Fms

CSF1R/c-Kit-IN-1 is a CSF-1R and c-Kit inhibitor, with an IC50 of 5.88 nM against human CSF-1R and an IC50 of 1.47 nM against human c-Kit. CSF1R/c-Kit-IN-1 binds to the ATP-binding pocket of CSF-1R, forming a hinge interaction with Cys666 via the oxazole nitrogen atom and adjacent amino group, and binds to residues in the hydrophobic binding pocket. CSF1R/c-Kit-IN-1 binds to the ATP-binding pocket of c-Kit, maintains a hinge interaction through its 2-amino-oxazole core, and binds to a broader hydrophobic surface near the solvent-exposed region via its morpholine substituent. CSF1R/c-Kit-IN-1 inhibits CSF-1-induced phosphorylation of ERK, which is a downstream readout of the CSF-1R signaling pathway. CSF1R/c-Kit-IN-1 can be used in the research of neuroinflammation-related neurodegenerative diseases .
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