8 Results for "

new mechanisms of action

" in MedChemExpress (MCE) Product Catalog:
Products (8)

8 Results for "new mechanisms of action" in MCE Product Catalog:

Cat. No.: HY-106998
CAS No.: 218281-25-5
Target:  

Bacterial Antibiotic

Research Areas:  

Infection

DC-756 is a fluoroquinolone antibiotic. DC-756 possesses potent activity against Gram-positive and Gram-negative pathogens comparable to Trovafloxacin (HY-A0170), with MIC, against Ofloxacin (HY-B0125)-resistant strains 16-fold better than Trovafloxacin. DC-756 is well absorbed orally in rats and found to have good photostability. DC-756 can be used to study bacterial resistance .
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Cat. No.: HY-147664
CAS No.: 2451479-66-4
Target:  

Carbonic Anhydrase

Research Areas:  

Cancer

These compounds show selective inhibition on tumor related subtypes HCA IX and XII, and are also considered as the leading molecules for the development of future cancer therapeutic drugs based on new mechanisms of action.
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Cat. No.: HY-147663
CAS No.: 2451479-86-8
Target:  

Carbonic Anhydrase

Research Areas:  

Cancer

Compounds 6b and 14g showed significant inhibitory effect on tumor related subtype HCA IX with low nanomolar potency, while 6k was effective on HCA XII. Compounds 6b, 14g and 6k can be considered as the leading molecules for the development of future cancer therapeutic drugs based on new mechanisms of action.
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Cat. No.: HY-118012
CAS No.: 392237-10-4
Target:  

Flavivirus

Research Areas:  

Infection

Flaviviruses-IN-1 is an inhibitor of several viruses belonging to the Flaviviridae family, with activity to inhibit viral infection. Flaviviruses-IN-1 is able to specifically inhibit multiple viruses of the Flaviviridae family. The mechanism of action of Flaviviruses-IN-1 is related to the modulation of the host cell immune response to viral infection. Flaviviruses-IN-1 was identified as a potential candidate compound in a high-throughput screening. Flaviviruses-IN-1 provides a new strategy for inhibiting infections caused by the Flaviviridae family .
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Cat. No.: HY-148611
CAS No.: 1135037-53-4
Target:  

iGluR

Research Areas:  

Neurological Disease

NSC339614 potassium is a selective GluN1/GluN2C and GluN1/GluN2D receptor enhancer with the activity of enhancing neuronal responses to specific NMDA receptors. NSC339614 potassium can selectively enhance the signaling of GluN1/GluN2C and GluN1/GluN2D receptors without affecting other NMDA receptors. The mechanism of action of NSC339614 potassium does not compete with agonists of L-glutamate or glycine, nor does it depend on membrane potential. The activity of NSC339614 potassium depends on the specific structure of the agonist ligand binding domain, showing its potential as a novel pharmacological agent for studying the function of NMDA receptor subtypes and providing new lead compounds for a variety of neurological diseases .
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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-L027
1,237 compounds

Viruses are much simpler organisms than bacteria, and they are made from protein substances and nucleic acid. Despite the fact that the exact mechanism of infection is extremely specific to each type of virus, the general scheme of infection can be represented in the following manner: A virus is absorbed at the surface of a host cell and then permeates through the membrane, where it releases nucleic acid from its protein protection. Then the viral nucleic acid begins to replicate, and transcription of the viral genome takes place either in the cytoplasm, or in the nucleus of the host cell. As a result of these events, a large amount of viral nucleic acid and protein are made to make new generations of virions. Therefore, one mechanism of action of antiviral drugs is to interfere with the ability of a virus to get into a target cell. A second mechanism of action is to target the processes that synthesize virus components after a virus invades a cell, such as nucleotide or nucleoside analogs.

MCE designs a unique collection of 1,237 anti-virus compounds that target several viruses, including SARS-CoV, HBV, HCV, HIV, HSV and Influenza Virus. It’s an effective tool for anti-virus drug discovery.

Cat. No.: HY-L938
8350 compounds

Currently,the incidence and mortality rates of clinical fungal infections remain high. Existing antifungal drugs are limited in variety and associated with numerous adverse effects, creating an urgent demand for the development of novel antifungal agents. Antifungal compound libraries can support the screening and development of new antifungal drugs.

The mechanisms of action of antifungal drugs cover key processes such as fungal cell membrane synthesis, cell wall synthesis, and cell division. They exert fungicidal or fungistatic effects by specifically targeting different molecular pathways. This library includes a variety of core analogs of antifungal drugs, making it adaptable to antifungal research in diverse scenarios. It can be used for the high-throughput screening of novel antifungal drug candidates, enabling the rapid identification of compounds with potential antifungal activity and facilitating the elucidation of drug-target interactions and resistance mechanisms. Additionally, it supports the screening of compounds and combinations that reverse drug resistance, thereby uncovering the novel antifungal potential of existing compounds.

The library comprises 8350 compounds with a well-defined screening strategy. The core sources of the compounds include analogs of known antifungal active moleculeswith a similarity score of ≥ 0.6 MCE has collected more than 500 antifungal molecules.All screened compounds conform to lead-like physicochemical properties, exhibiting both structural diversity and drug-like characteristics, and providing valuable support for the research and development of novel antifungal drugs.