20 Results for "

therapy resistance

" in MedChemExpress (MCE) Product Catalog:
Products (20)

20 Results for "therapy resistance" in MCE Product Catalog:

32
32 Cited Publications
Cat. No.: HY-101570
CAS No.: 1637542-33-6
Purity:  99.70%
Synonyms: Peposertib; M3814
Target:  

DNA-PK BCRP

Research Areas:  

Cancer

Nedisertib (Peposertib) is an orally active selective DNA-dependent protein kinase (DNA-PK) inhibitor with an IC50 value of less than 3 nM. Nedisertib also acts as a modulator of ABCG2, capable of reversing ABCG2-mediated multidrug resistance (MDR), thus providing new strategies for combination therapy. By inhibiting DNA double-strand break repair, Nedisertib can enhance the efficacy of chemotherapy and radiotherapy. Nedisertib exhibits antitumor activity .
loading...
    loading...
Cat. No.: HY-155798
CAS No.: 2871057-47-3
Research Areas:  

Cancer

BBI-2779 is a highly selective, orally active CHK1 inhibitor with a CHK1 IC50 of 0.3 nM. BBI-2779 leverages transcription-replication conflicts on extrachromosomal DNA (ecDNA) to induce synthetic lethality, replication stress, DNA damage and cell death in ecDNA-positive tumor cells. BBI-2779 blocks ecDNA-mediated acquired resistance to targeted therapies and inhibits tumor growth in mouse models of gastric cancer. BBI-2779 is applicable to ecDNA-positive cancer-related research .
loading...
    loading...
Cat. No.: HY-175633
ML210-ansaFc (Compound III-13) is a covalent GPX4 inhibitor with a -ferrocenophane group (IC50 of 3.4 μM). ML210-ansaFc potently induces ferroptosis by increasing the level of ROSand promoting lipid peroxidation (LPO) in cancers cells. ML210-ansaFc has an anticancer activity and suppresses tumor growth in tumor 3D spheroids. ML210-ansaFc can be used for cancer therapy resistance research .
loading...
    loading...
Cat. No.: HY-116497
CAS No.: 1627843-95-1
Target:  

FAK

Research Areas:  

Cancer

PH11 is a novel focal adhesion kinase (FAK) inhibitor that rapidly induces apoptosis in TRAIL-resistant PANC-1 cells when combined with TRAIL, but has no effect on normal human fibroblasts. The study found that PH11 downregulates c-FLIP through inhibition of FAK and phosphatidylinositol-3-kinase (PI3K)/AKT pathways, thereby restoring the TRAIL apoptotic pathway, suggesting that this combination therapy may provide an attractive therapeutic strategy for the safe and effective treatment of pancreatic cancer. PH11 selectively inhibits c-FLIP expression by modulating upstream signaling pathways and may represent an innovative therapeutic strategy. Although further work is needed to fully elucidate the mechanism of PH11-induced TRAIL sensitization, we believe that our results will provide a new approach to target c-FLIP without the risk of interfering with caspase-8 processing, which could potentially lead to TRAIL resistance. This study also suggests a role for the FAK/AKT signaling pathway in regulating c-FLIP expression in TRAIL-induced apoptosis, and this understanding will provide important clues to control the resistance mechanism to optimize the potential of TRAIL-based pancreatic cancer treatment.
loading...
    loading...
Cat. No.: HY-P10159
CAS No.: 1809102-71-3
Target:  

Antibiotic Bacterial

Research Areas:  

Infection

DJK-5 is an antimicrobial peptide that targets and degrades guanosine pentaphosphate and tetraphosphate (pppGpp and ppGpp). DJK-5 kills bacteria within dentinal tubules, dental plaque and preformed oral biofilms, delays biofilm recovery, reduces the abundance of extracellular polysaccharides and the structural integrity of biofilm matrices, and inhibits the formation and biomass accumulation of dental plaque biofilms. DJK-5 permeabilizes bacterial membranes, induces bacterial morphological changes, inhibits bacterial growth, and exerts a synergistic effect on bacterial biofilms when used in combination with traditional antibiotics and Colistin (HY-113678). DJK-5 exhibits protease resistance and broad-spectrum antibiofilm activity, though its activity decreases in fetal bovine serum. DJK-5 can be used in studies of pulpitis, mixed biofilm infections, skin abscesses, dental caries, infections associated with failed root canal therapy, and Pseudomonas aeruginosa biofilm-related respiratory tract infections .
loading...
    loading...
Cat. No.: HY-106072
CAS No.: 67699-40-5
Synonyms: LY 104208
Target:  

Microtubule/Tubulin

Research Areas:  

Cancer

Vinzolidine is a semisynthetic derivative of the catharanthus alkaloid. Vinzolidine exerts its cytotoxic effect on tumor cells by interfering with microtubulin polymerization, thereby inhibiting cell division. Vinzolidine can be utilized in research to investigate synergistic effects when combined with other chemotherapeutic agents or biologic therapies, as well as to study cancer cells' tolerance or resistance to these treatments, and to explore approaches to overcome such obstacles .
loading...
    loading...
Cat. No.: HY-172922
Target:  

FGFR

Research Areas:  

Cancer

Arg-IN-1 is a selective Arginine (Arg)-targeting covalent inhibitor with IC50s of 9.7 nM and 30.4 nM for FGFR2 and FGFR3,respectively. Arg-IN-1 has the potential to avoid FGFR1/4-targeted toxicity as well as conquer acquired on-target resistance, potential for FGFR-targeting cancer therapy .
loading...
    loading...
Cat. No.: HY-13766
CAS No.: 179033-51-3
Synonyms: VX-853
Target:  

PPAR

Research Areas:  

Others

Timcodar is a macrolide agent, and studies have shown that during adipogenesis, timcodar can significantly inhibit fat accumulation, with an effect similar to that of rapamycin. However, unlike rapamycin, timcodar does not cause immunosuppression and glucose resistance. In addition, timcodar can effectively inhibit the adipogenic transcriptional regulators PPAR?? and C/EBP??, thereby inhibiting genes involved in fat accumulation. These studies lay the foundation for timcodar as a potential anti-obesity therapy, as obesity is becoming a global epidemic.
loading...
    loading...
Cat. No.: HY-164473
CAS No.: 1836209-98-3
Target:  

ERK Akt STAT Apoptosis

Research Areas:  

Cancer

DETD-35 is an inhibitor of the MEK-ERK, Akt, and STAT3 signaling pathways, which promotes cancer cell apoptosis (Apoptosis) and reduces cancer cell resistance to Vemurafenib (HY-12057). The IC50 values of DETD-35 against wild-type and mutant melanoma cell lines B16-F10, MeWo, SK-MEL-2, A2058c, and A375c are 2.7, 6.0, 3.9, 3.1, and 2.5 μM, respectively. DETD-35 holds promise for research in the field of anti-melanoma therapy .
loading...
    loading...
Cat. No.: HY-171281
Synonyms: MIR200C
Target:  

MicroRNA

Research Areas:  

Cancer

Human microRNA 200c (MIR200C), a nucleotide small endogenous non-coding RNA, is an illustrious tumor suppressor. Human microRNA 200c is one of the highly studied miRNAs in terms of development, stemness, proliferation, epithelial-mesenchymal transition (EMT), therapy resistance, and metastasis .
loading...
    loading...
Cat. No.: HY-187652
CAS No.: 2883514-82-5
Synonyms: CMLD012336
Target:  

Fungal

Research Areas:  

Infection

Azoffluxin (CMLD012336) is a Cdr1 inhibitor. Azoffluxin enhances the activity of Fluconazole (HY-B0101) and other intracellular-acting antifungal agents against drug-resistant Candida. Azoffluxin is used for research on fungal efflux-mediated azole resistance and combined antifungal therapy .
loading...
    loading...
Cat. No.: HY-W665456
CAS No.: 959151-70-3
Target:  

Drug Intermediate

Research Areas:  

Others

Fmoc‑PNA‑U‑OH is a peptide nucleic acid monomer that can be used for the synthesis of peptide nucleic acids (PNAs). Fmoc‑PNA‑U‑OH exhibits specific binding to adenine, resistance to enzymatic degradation, and strong hybridization properties. Fmoc‑PNA‑U‑OH can be applied in research fields such as gene diagnosis, molecular biology, and antisense therapy.
loading...
    loading...
Cat. No.: HY-P11680
CAS No.: 253438-99-2
Target:  

DNA/RNA Synthesis

Research Areas:  

Others

BOC-PNA-thioU(PMB)-OH is a peptide nucleic acid (PNA) monomer characterized by a PMB protecting group on its thiouracil, which enhances its binding affinity to adenine. BOC-PNA-thioU(PMB)-OH exhibits excellent resistance to enzymatic degradation and strong hybridization properties, making it valuable for applications in gene diagnosis, antisense therapy, and other molecular biology fields requiring higher binding strength and greater functionalization.
loading...
    loading...
Cat. No.: HY-101570R
CAS No.: 1637542-33-6
Synonyms: Peposertib (Standard); M3814 (Standard)
Research Areas:  

Cancer

Nedisertib (Standard) is the analytical standard of Nedisertib (HY-101570). This product is intended for research and analytical applications. Nedisertib (Peposertib) is an orally active selective DNA-dependent protein kinase (DNA-PK) inhibitor with an IC50 value of less than 3 nM. Nedisertib also acts as a modulator of ABCG2, capable of reversing ABCG2-mediated multidrug resistance (MDR), thus providing new strategies for combination therapy. By inhibiting DNA double-strand break repair, Nedisertib can enhance the efficacy of chemotherapy and radiotherapy. Nedisertib exhibits antitumor activity .
loading...
    loading...
Cat. No.: HY-L219
58 compounds

Antimicrobial Peptides (AMPs), also known as antimicrobial peptides or antibiotic peptides, are a class of polypeptides encoded by specific genes in various biological cells and induced by external stimuli. They exhibit broad-spectrum bioactivity against bacteria, fungi, viruses, protozoa, and even tumor cells. AMPs serve as crucial effector molecules in the host's innate immune system.Due to their wide antimicrobial spectrum, low toxicity to normal cells of higher animals, high safety profile, low tendency to induce resistance, and additional benefits such as immune enhancement and antioxidant effects, antimicrobial peptides hold significant promise in new drug development.

MCE offers 58 types of antimicrobial peptides, which can be applied in high-throughput screening for research in anti-infection therapies, immunotherapy, anticancer drug development, and agricultural disease control.

Cat. No.: HY-L048
585 compounds

The high rates of morbidity and mortality caused by fungal infections are associated with the current limited antifungal arsenal and the high toxicity of the compounds. Additionally, identifying novel drug targets is challenging because there are many similarities between fungal and human cells. The most common antifungal targets include fungal RNA synthesis and cell wall and membrane components, though new antifungal targets are being investigated. Nonetheless, fungi have developed resistance mechanisms, such as overexpression of efflux pump proteins, overexpression and changes in drug targets and biofilm formation, emphasizing the importance of discovering new antifungal drugs and therapies. Due to the limited antifungal arsenal, researchers have sought to improve treatment via different approaches, such as the combination of antifungal drugs, development of new formulations for antifungal agents and modifications to the chemical structures of traditional antifungals, etc.

MCE offers a unique collection of 585 compounds with validated antifungal activities. MCE antifungal compound library is an effective tool for drug repurposing screening, combination screening and biological investigation.

Cat. No.: HY-L941
4,236 compounds

Orthosteric sites are highly conserved, leading to poor subtype selectivity, off-target toxicity and drug resistance in traditional drugs. By contrast, allosteric sites show low conservation, high hydrophobicity, weak polarity, confined geometry and dynamic cryptic properties, granting modulators high selectivity, functional tunability and safety. Thus, allosteric therapy has become a major focus in drug discovery.

MCE curated nearly 1,000 clinical-stage allosteric modulators, analyzed PDB complex structures to identify key pharmacophores and privileged scaffolds, then designed and filtered compounds using rational “scaffold derivation + physicochemical screening” with strict property criteria. The resulting compounds show high rigidity and shape complementarity to shallow, dynamic, hydrophobic allosteric pockets.

This library comprises 4,315 diverse, lead-like compounds ideal for allosteric drug discovery and target screening, covering kinases, GPCRs and more. All are analogs of clinical-stage molecules with similarity > 0.6, combining high druggability and allosteric binding potential to support efficient early-stage R&D.

Cat. No.: HY-L260
82 compounds

KRAS (Kirsten Rat Sarcoma Viral Oncogene Homolog) is one of the most important oncogenic driver genes in oncology, with high mutation frequencies in pancreatic cancer, non‑small cell lung cancer, and colorectal cancer. For a long time, KRAS was considered "undruggable" due to the lack of suitable small‑molecule binding pockets on its protein surface. In recent years, with the discovery of the switch‑II pocket and the successful approval of KRAS G12C inhibitors, KRAS‑targeted research has achieved groundbreaking progress, which has also spurred a wave of development targeting non‑G12C mutants such as G12D and G12V, as well as upstream and downstream regulatory factors including SOS1 and SHP2.

MCE KRAS Targeted Compound Library contains 82 small‑molecule compounds targeting the KRAS, serving as high‑quality research tools for mechanistic studies of KRAS‑mutant tumors, combination therapy development, resistance mechanism exploration, and high‑throughput drug screening, thereby providing robust support for KRAS‑targeted drug discovery.

Cat. No.: HY-15244G
CAS No.: 1217486-61-7
Alpelisib GMP is Alpelisib (HY-15244) produced by using GMP guidelines. GMP small molecules works appropriately as an auxiliary reagent for cell therapy manufacture. Alpelisib (BYL-719) is an orally active PI3Kα-selective inhibitor that blocks the conversion of PIP2 to PIP3, thereby inhibiting pathways including PI3K/AKT/mTOR, MAPK/ERK, Notch and JAK-STAT. Alpelisib also induces apoptosis, G0/G1 phase arrest and senescence; it significantly inhibits the proliferation, self-renewal, stemness and epithelial-mesenchymal transition (EMT) of tumor cells, reduces cancer stem cell populations and decreases the expression of stem cell markers. Alpelisib not only enhances the sensitivity to Eribulin (HY-13442) and exerts a synergistic effect with Paclitaxel (HY-B0015), but may also induce drug resistance by upregulating the SGK3/GSK3β/β-catenin signaling pathway. Alpelisib can be applied to research related to breast cancer, gastric cancer and lipomas associated with PTEN hamartoma tumor syndrome .
loading...
    loading...
  • 1