5779 Results for "

potential

" in MedChemExpress (MCE) Product Catalog:
Products (5779)

5779 Results for "potential" in MCE Product Catalog:

Cat. No.: HY-N19083
Category:  

Extract

Target:  

Bacterial

Tecomella undulata Extract, also known as Rohida extract, is a valuable botanical extract derived from the bark and leaves of the Tecomella undulata plant native to the Indian Thar Desert and is rich in bioactive compounds such as flavonoids, quinones, triterpenoids, and other phytochemicals that contribute to its diverse therapeutic properties. This extract is widely recognized for its hepatoprotective effects demonstrated through its ability to protect against liver damage induced by toxins such as paracetamol and carbon tetrachloride by normalizing elevated liver enzyme levels reducing oxidative stress and improving liver function. Additionally, it exhibits significant anti-inflammatory activity comparable to standard drugs like indomethacin and has been used to treat conditions like ascites and hepatosplenomegaly while also showing immunomodulatory effects by enhancing both humoral and cell-mediated immune responses and possessing antimicrobial properties that make it effective against various pathogens. Recent research suggests that Tecomella undulata may have potential in managing nonalcoholic steatohepatitis (NASH) by reducing body weight insulin resistance and improving liver function markers making it a versatile natural remedy with significant applications in hepatoprotection anti-inflammation and immune support.
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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-P4890A
Relaxin H3 (human) TFA is a relaxin peptide with anti-inflammatory, anti-apoptotic, anti-pyroptotic, anti-migratory, protective and anti-fibrotic activities. Relaxin H3 (human) TFA acts on RXFP1 to generate cAMP and reduce the levels of ATP and ROS. Relaxin H3 (human) TFA inhibits renal inflammatory pyroptosis (pyroptosis), NLRP3 inflammasome activation, caspase-1 activation, IL-1β/IL-18 secretion, collagen synthesis, TGF-β1 signaling pathway, Smad2 phosphorylation, myofibroblast differentiation, TIMP expression, and HRMEC migration. Relaxin H3 (human) TFA activates AMPK, upregulates MFN2 expression, improves mitochondrial quality control and membrane potential, inhibits apoptosis (apoptosis) and pyroptosis, restores retinal ultrastructure, and reverses excessive left ventricular collagen expression. Relaxin H3 (human) TFA can be used in studies related to kidney stones, nephrocalcinosis, diabetic cardiomyopathy, fibrotic cardiomyopathy, and diabetic retinopathy .
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Cat. No.: HY-W027592R
CAS No.: 61-82-5
1H-1,2,4-Triazol-3-amine (Standard) is the analytical standard of 1H-1,2,4-Triazol-3-amine. This product is intended for research and analytical applications. 1H-1,2,4-Triazol-3-amine consists of a triazole ring system and an amino group attached to carbon atom 3. The compound has potential applications in various fields such as medicinal chemistry, agrochemicals and material science. In medicinal chemistry, 1H-1,2,4-Triazol-3-amine is used as a starting material for the synthesis of pharmaceutical compounds such as antifungal agents, anticancer agents, and enzyme inhibitors associated with cardiovascular disease. In agrochemicals, it can be used as a raw material for the synthesis of herbicides, fungicides and insecticides. Furthermore, 1H-1,2,4-Triazol-3-amine is used as a ligand in coordination chemistry and as a precursor for the production of new functional materials such as polymers and metal-organic frameworks.
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Cat. No.: HY-Y0790R
CAS No.: 122-03-2
Synonyms: p-Isopropylbenzaldehyde (Standard)
Cuminaldehyde Standard is the analytical standard of Cuminaldehyde. This product is intended for research and analytical applications. Cuminaldehyde is the main component of Cuminum cyminum and has multiple biological activities, including anti-inflammatory, anti-cancer, anti-diabetic, anti-injury, anti-neuropathy and antibacterial effects. Cuminaldehyde is an inhibitor of aldose reductase (IC50= 0.00085 mg/mL) and α-glucosidase (IC50=0.5 mg/mL). Cuminaldehyde also inhibits the fibrillation of α-synuclein and prevents its aggregation Cuminaldehyde can induce apoptosis in colon adenocarcinoma cells by targeting topoisomerase I and II. In addition, Cuminaldehyde also exerts anti-inflammatory activity by inhibiting lipoxygenase. Cuminaldehyde has a strong inhibitory effect on the growth of Aspergillus flavus and the biosynthesis of aflatoxin B1 (AFB1). Cuminaldehyde can exert anti-injury and anti-neuropathy effects by participating in opioid receptors, L-arginine/NO/cGMP pathways and anti-inflammatory effects. Cuminaldehyde has potential application value in the research of neurodegenerative diseases, cancer, diabetes and neuropathic pain diseases .
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Cat. No.: HY-L105S
867 compounds

Peptides, composed of amino acids, serve as crucial building blocks for proteins and have gained significant attention in drug development over the past decade. The advancements in production, modification, and analytical technologies have led to a surge in the potential applications of peptides in medicine. Peptides offer a number of advantages over small molecule drugs, including: greater target specificity and efficacy, more predictable metabolic profiles, easier delivery to where they are needed in the body, and fewer side effects. Peptides are increasingly appearing in all branches of medicine as components of innovative drugs, imaging agents, diagnostic agents, and other complex drugs such as peptide-drug conjugates. To date, more than 80 peptide drugs have been approved to treat a variety of diseases, including microbial infections, obesity, anti-diabetes, and cancer, as well as to develop cell targeting platforms and improve cell penetration properties.

MCE designs a unique collection of 867 peptide compounds. HY-L105S is a peptide compound library that can be provided with solution form based on HY-L105, and can be applied to peptides-based drug development.

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-L021P
6,400 compounds

Natural products are small molecules produced naturally by any organism including primary and secondary metabolites. Natural sources may lead to basic research on potential bioactive components for commercial development as lead compounds in drug discovery.

Nature has been a source of medicinal agents for thousands of years, and an impressive number of modern drugs have been isolated from natural sources, many based on their use in traditional medicine. With the development of new molecular targets, there is an increasing demand for novel molecular diversity for screening. Natural products will play a crucial role in meeting this demand through the continued investigation of world’s bio-diversity, much of which remains unexplored.

MCE provides a unique collection of 6,400 natural compounds that contains Saccharides and Glycosides, Phenylpropanoids, Quinones, Flavonoids, Terpenoids and Glycosides, Steroids, Alkaloid, Phenols, Acids and Aldehydes. Natural Product Library Plus, with more powerful screening capability, further complements Natural Product Library (HY-L021) by adding some compounds with low solubility or solution stability (Part B) to this library. All those supplementary are supplied in powder form.

Cat. No.: HY-L220
91 compounds

Biotoxins, also referred to as natural toxins, are chemical substances produced by plants, animals, or microorganisms that exert toxic effects on other living organisms. Due to unique biological activities, biotoxins have been widely applied in molecular biology, physiology, pharmacology, and the clinical diagnosis and treatment of various human diseases, becoming an important source of natural drug development. Biotoxins can specifically bind to and interfere with intracellular signaling molecules or receptors, thereby altering cellular signaling processes. Leveraging this characteristic, biotoxins can be used to study the regulatory mechanisms of cellular signaling pathways. For example, neurotoxins such as snake venom peptides can be used to investigate the functional regulation of neurotransmitter receptors and ion channels. Additionally, biotoxins have demonstrated significant potential in drug development across various fields, including neurological diseases, cardiovascular diseases, anticoagulation, and anti-cancer therapies. With advancements in high throughput screening, structural optimization, and antibody-toxin conjugation technologies, numerous biotoxins or their structural analogs have been successfully brought to market, such as Ziconotide, Captopril, Bivalirudin, and Eptifibatide.

MCE offers 91 types of biotoxins, including neurotoxins, cardiotoxins, mycotoxins, and more.

Cat. No.: HY-L170
258 compounds

An emerging drug design method is based on the secondary binding site effect, where small molecule drugs are designed to bind to secondary binding sites on target biomolecules rather than primary orthomorphic sites. Successful potential drugs (known as allosteric modulators) will be able to bind to allosteric sites and remotely alter (or modify) the conformation of the main orthosteric binding sites of biological targets. Allosteric modulators (AMs) are ligands of proteins that act through binding sites different from natural (orthosteric) ligand sites. AMs are relatively small, more lipophilic, and more rigid compounds. The binding efficacy of AMs with their targets is often slightly lower. AMs are divided into positive AMs (PAMs) and negative AMs (NAMs). AMs are ideal drug targets because they can fine-tune receptor activity while preserving the spatial and temporal signal transduction characteristics of endogenous ligands, resulting in fewer targeted side effects, improved subtype selectivity, and better promotion of biased signal transduction than normal ligands.

MCE designs a unique collection of 258 small allosteric modulators. It is a good tool to be used for research on metabolize, cancer and other diseases.

Cat. No.: HY-L036
1,618 compounds

Small molecule covalent inhibitors, or irreversible inhibitors, are a type of inhibitors that exert their biological functions by irreversibly binding to target through covalent bonds. Compared with non-covalent inhibitors, covalent inhibitors have obvious advantages in bioactivity, such that covalent warheads can target rare residues of a particular target protein, thus leading to the development of highly selective inhibitors and achieving a more complete and continued target occupancy in living systems. In recent years, the distinct strengths of covalent inhibitors in overcoming drug resistance had been recognized. However, toxicity can be a real challenge related to this class of therapeutics due to their potential for off-target reactivity and has led to these drugs being disfavored as a drug class. The drug design and optimization of covalent inhibitors has become a hot spot in drug discovery.

MCE covalent inhibitor library contains 1,618 small molecules including identified covalent inhibitors and other bioactive molecules having common covalent reactive groups as warheads, such as acrylamides, activated terminal acetylenes, Sulfonyl fluorides/esters, cloracetamides, alkyl halides, epoxides, aziridines, disulfides, etc.

Cat. No.: HY-181413
CAS No.: 3093642-25-9
PROTAC EZH2 Degrader-44 (compound 60) is a highly efficient PROTAC degrader targeting the EZH2-PRC2 complex. By recruiting the CRBN E3 ligase and relying on the proteasome system, PROTAC EZH2 Degrader-44 simultaneously induces the degradation of core components EZH2, SUZ12 and EED, thereby significantly reducing the levels of H3K27me3 and CARM1. PROTAC EZH2 Degrader-44 exerts antiproliferative effects through a dual mechanism: on the one hand, it triggers mitochondrial dysfunction leading to decreased membrane potential; on the other hand, it strongly promotes apoptosis by regulating Bcl-2 family proteins (upregulating Bax, Caspase-3 and PARP, and downregulating Bcl-2). PROTAC EZH2 Degrader-44 exhibits only extremely low cytotoxicity in human normal mammary epithelial, liver and kidney cells, showing a favorable safety window. PROTAC EZH2 Degrader-44 is an ideal tool molecule for exploring the mechanisms of targeted therapy for triple-negative breast cancer .
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Cat. No.: HY-W014937S
CAS No.: 93496-64-1
Synonyms: 4HBP-d4
4-Hydroxybenzophenone-d4 (4HBP-d4) is the deuterated-labeled 4-Hydroxybenzophenone (HY-W014937). 4‑Hydroxybenzophenone (4HBP) is a major metabolite of Benzophenone (HY-Y0546) and is orally active. 4-Hydroxybenzophenone triggers endoplasmic reticulum stress and activates the PERK-eIF2α-ATF4-CHOP and IRE1α-XBP1s pathways, and inhibits IκB translation. 4-Hydroxybenzophenone induces endoplasmic reticulum stress, unfolded protein response activation, protein homeostasis imbalance, protein aggregation, oxidative stress, ROS accumulation, mitochondrial membrane potential decrease, ATP depletion, and cytotoxicity. 4-Hydroxybenzophenone induces neural stem cell apoptosis (apoptosis) and affects neuronal differentiation. 4-Hydroxybenzophenone promotes malignant proliferation of hepatocellular carcinoma cells and xenograft tumor growth in nude mice. 4-Hydroxybenzophenone can be used in research related to neurodevelopmental toxicity and hepatocellular carcinoma .
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Cat. No.: HY-W014937S1
CAS No.: 76478-47-2
Synonyms: 4HBP-d5
4-Hydroxybenzophenone-d5 (4HBP-d5) is the deuterated-labeled 4-Hydroxybenzophenone (HY-W014937). 4‑Hydroxybenzophenone (4HBP) is a major metabolite of Benzophenone (HY-Y0546) and is orally active. 4-Hydroxybenzophenone triggers endoplasmic reticulum stress and activates the PERK-eIF2α-ATF4-CHOP and IRE1α-XBP1s pathways, and inhibits IκB translation. 4-Hydroxybenzophenone induces endoplasmic reticulum stress, unfolded protein response activation, protein homeostasis imbalance, protein aggregation, oxidative stress, ROS accumulation, mitochondrial membrane potential decrease, ATP depletion, and cytotoxicity. 4-Hydroxybenzophenone induces neural stem cell apoptosis (apoptosis) and affects neuronal differentiation. 4-Hydroxybenzophenone promotes malignant proliferation of hepatocellular carcinoma cells and xenograft tumor growth in nude mice. 4-Hydroxybenzophenone can be used in research related to neurodevelopmental toxicity and hepatocellular carcinoma .
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Cat. No.: HY-W015551R
CAS No.: 3913-81-3
Synonyms: (E)-Dec-2-enal (Standard)
trans-2-Decenal ((E)-Dec-2-enal)) Standard is the analytical standard of trans-2-Decenal (HY-W015551). This product is intended for research and analytical applications. trans-2-Decenal ((E)-Dec-2-enal) acts as a urease inhibitor and antibacterial agent against Helicobacter pylori, with an IC50 of 9.484 μg/mL against Helicobacter pylori urease. trans-2-Decenal reduces the urease activity of Helicobacter pylori, and possesses antibacterial, bactericidal, anti-biofilm and anti-migratory activities. It alters the morphology of Helicobacter pylori, induces bacterial rupture, inhibits biofilm formation, reduces the number of mature biofilms and impairs the migratory capacity of Helicobacter pylori. trans-2-Decenal disrupts the cell wall integrity of Phytophthora capsici, damages membrane integrity and permeability, triggers intracellular reactive oxygen species (ROS) accumulation, decreases glutathione levels and disrupts the mitochondrial membrane potential of Phytophthora capsici. trans-2-Decenal is applicable to studies related to Helicobacter pylori and plant diseases induced by and Phytophthora capsici.
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Cat. No.: HY-W015551S
CAS No.: 1335436-39-9
Synonyms: (E)-Dec-2-enal-d2
trans-2-Decenal-d2 ((E)-Dec-2-enal-d2) is deuterated labeled trans-2-Decenal (HY-W015551). trans-2-Decenal ((E)-Dec-2-enal) acts as a urease inhibitor and antibacterial agent against Helicobacter pylori, with an IC50 of 9.484 μg/mL against Helicobacter pylori urease. trans-2-Decenal reduces the urease activity of Helicobacter pylori, and possesses antibacterial, bactericidal, anti-biofilm and anti-migratory activities. It alters the morphology of Helicobacter pylori, induces bacterial rupture, inhibits biofilm formation, reduces the number of mature biofilms and impairs the migratory capacity of Helicobacter pylori. trans-2-Decenal disrupts the cell wall integrity of Phytophthora capsici, damages membrane integrity and permeability, triggers intracellular reactive oxygen species (ROS) accumulation, decreases glutathione levels and disrupts the mitochondrial membrane potential of Phytophthora capsici. trans-2-Decenal is applicable to studies related to Helicobacter pylori and plant diseases induced by and Phytophthora capsici .
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Cat. No.: HY-L133
446 compounds

Copper is an important co-factor of all biological enzymes, but if the concentration exceeds the threshold of maintaining the homeostasis mechanism, copper will lead to cytotoxicity. This death mechanism has been named "Cuproptosis".

The mechanism of cuproptosis distinct from all other known mechanisms of regulated cell death, including apoptosis, pyroptosis, necroptosis, and ferroptosis.

Copper combine with the lipoylated components of the tricarboxylic acid cycle (TCA), leading to lipoylated protein aggregation and subsequent loss of iron-sulfur cluster proteins, ultimately resulting in protein toxicity stress and cell death. Studies have shown that the necessary factors for cuproptosis include the presence of glutathione, mitochondrial metabolism of galactose and pyruvate, and glutamine metabolism.

Targeted regulation of cuproptosis is a potential choice to treat cancer, rheumatoid arthritis, and other diseases. For example, up-regulation of LIPT1 may inhibit the occurrence and development of tumors by destroying TCA in mitochondria and then inducing cuproptosis.

MCE supplies a unique collection of 446 cuproptosis-related compounds, all of which act on the targets or signaling pathways related to cuproptosis and may have in inhibitory or activated effect on cuproptosis. MCE Cuproptosis Library is a useful tool for drug research related to cancer, rheumatoid arthritis, and other diseases.

Cat. No.: HY-L034M
381 compounds

Research has shown that drugs targeting aging pathways demonstrate promising potential in models of age-related diseases such as Alzheimer's disease, cardiovascular diseases, metabolic syndrome, osteoarthritis, and various malignancies. This suggests that intervening in the biological processes of aging may enable synergistic prevention and treatment of multiple chronic diseases. Against the backdrop of the gradual elucidation of core aging mechanisms-including cellular senescence, telomere attrition, epigenetic dysregulation, and chronic inflammation anti-aging research has shifted from traditional phenotypic interventions toward targeting key pathways that regulate biological age.

The MCE Anti-Aging Compound Library Mini is precisely built upon this cutting-edge concept. It focuses on aging-related targets validated through genetic or functional studies, comprising 381 compounds designed to provide systematic research tools for aging biology and intervention strategy development. The library covers core mechanisms such as mTOR, SIRT, energy metabolism, clearance of senescent cells, optimization of mitochondrial function, and telomere maintenance. For each target, 1-5 compounds with clear activity and strong representativeness have been carefully selected, spanning the entire translational spectrum from preclinical tool molecules to clinically investigational drugs.

Cat. No.: HY-L039
3,231 compounds

Techniques for reprogramming somatic cells create new opportunities for drug screening, disease modeling, artificial organ development, and cell therapy. The development of reprogramming techniques has grown exponentially since Yamanaka reprogrammed somatic cells to become induced pluripotent stem cells (iPSCs) using four transcription factors, OCT4, SOX2, KLF4, and c-MYC in 2006. Despite the development of efficient reprogramming methods, most methods are inappropriate for clinical applications because they carry the risk of integrating exogenous genetic factors or use oncogenes. Alternative approaches, such as those based on miRNA, non-viral genes, non-integrative vectors, and small molecules, have been studied as possible solutions to the problems. Among these alternatives, small molecules are attractive options for clinical applications. Reprogramming using small molecules is inexpensive and easy to control in a concentration- and time-dependent manner. It offers a high level of cell permeability, ease of synthesis and standardization, and it is appropriate for mass-producing cells.

MCE Reprogramming Compound Library contains a unique collection of 3,231 compounds that act on reprogramming signaling pathways. These compounds are potential stimulators for reprogramming. This library is a useful tool for researching reprogramming and regenerative medicine.

Cat. No.: HY-121562
CAS No.: 584555-10-2
Target:  

5-HT Receptor

Research Areas:  

Neurological Disease

SB 714786 is a potent and selective 5-hydroxytryptamine 1D (5-HT1D) receptor antagonist. It was developed from the previously reported series of dual 5-HT1 selective 5-hydroxytryptamine reuptake inhibitors (5HT1-SSRIs). SB 714786 is the first reported highly potent and selective 5-HT1D receptor antagonist, providing an extremely useful pharmacological tool for further understanding the role of 5-HT1 receptor subtypes. It has no or very low intrinsic activity against all three receptors. SB 714786 has pKi values of 6.5, 6.7, 9.1 and 6.5 for 5-HT1A, 5-HT1B, 5-HT1D and SerT receptors, respectively, showing high selectivity for 5-HT1D receptors. These properties make SB 714786 a potential tool compound for studying the function of 5-HT1D receptors and the treatment of related diseases.
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