247 Results for "

translational diffusion coefficient

" in MedChemExpress (MCE) Product Catalog:
Products (247)

247 Results for "translational diffusion coefficient" in MCE Product Catalog:

Cat. No.: HY-W012382S
N-Acetyl-L-tyrosine-d3 is the deuterated form of N-Acetyl-L-tyrosine (HY-W012382). N-Acetyl-L-tyrosine is an orally active endogenous mitochondrial stress response regulator that can permeate the cell membrane by passive diffusion. N-Acetyl-L-tyrosine induces low-level reactive oxygen species (ROS) generation by transiently perturbing mitochondrial membrane potential, triggering reverse signaling to activate FoxO and Keap1 pathways. As a result, N-Acetyl-L-tyrosine enhances the expression of antioxidant enzyme genes, exerting anti-stress and cytoprotective effects. N-Acetyl-L-tyrosine can improve heat stress tolerance, inhibit tumor growth, and regulate energy metabolism. N-Acetyl-L-tyrosine can be used in the research of aging, metabolic diseases (such as diabetes), and cancer .
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Cat. No.: HY-111772A
CAS No.: 2229860-99-3
Purity:  99.44%
Synonyms: (R)-VX-445
Target:  

Drug Isomer CFTR

Research Areas:  

Inflammation/Immunology

(R)-Elexacaftor ((R)-VX-445) is the enantiomer of Elexacaftor (HY-111772). Elexacaftor is an orally active CFTR modulator that targets nucleotide-binding domain 1. Elexacaftor stabilizes misfolded F508del-CFTR protein, enhances its trafficking to the plasma membrane, and significantly improves metabolic stability, thermal stability and ion conductivity. Elexacaftor not only restores chloride transport function in nasal epithelial cells and rescues multiple CFTR mutation subtypes, but also exerts multiplicative synergistic effects with Ivacaftor (HY-13017), and is often used in a triple combination therapy with Tezacaftor (HY-15448). Elexacaftor is widely used in basic and clinical translational research on cystic fibrosis .
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Cat. No.: HY-P1958
CAS No.: 667899-73-2
Research Areas:  

Others

Histone H4 (2-21) is a substrate peptide derived from the N-terminal region of histone H4, which serves as an acyl acceptor for lysine acetyltransferases of the MYST family (KAT). Histone H4 (2-21) participates in enzymatic reactions together with acyl-coenzyme A (acyl-CoA, and undergoes lysine acetylation and propionylation modifications catalyzed by KATs such as MOF. The apparent Km of Histone H4 (2-21) for MOF is 788.8 μM, while in the picNuA4 catalytic system, the Km and Kd values of the H4 peptide are 192 μM and 251 μM, respectively. Histone H4 (2-21) can be used in studies related to histone post-translational modifications, epigenetic regulation, and lysine acylation .
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Cat. No.: HY-B0396R
CAS No.: 161715-24-8
Synonyms: L084 (Standard)
Research Areas:  

Infection

Tebipenem pivoxil (Standard) (L084 (Standard)) is the analytical standard of Tebipenem pivoxil (HY-B0396). This product is intended for research and analytical applications. Tebipenem pivoxil (L084 hydrobromide) is an orally active carbapenem Antibiotic. Tebipenem pivoxil acts as a substrate of OATP1A2 with high affinity for this transporter (Km = 41.1 μM) . Tebipenem pivoxil achieves intestinal absorption via carrier-mediated uptake and simple diffusion. Tebipenem pivoxil inhibits the growth of Gram-positive bacteria, Gram-negative bacteria, multidrug-resistant bacteria, and pathogens producing extended-spectrum β-lactamases. Tebipenem pivoxil eliminates intestinal infection pathogens and reduces mortality in septic mice. Tebipenem pivoxil can be used in research related to bacterial pneumonia, severe gastrointestinal infections, bacterial sepsis, complicated urinary tract infections, and acute pyelonephritis .
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Cat. No.: HY-W010514R
CAS No.: 1460-57-7
trans-Cyclohexane-1,2-diol (Standard) is the analytical standard of trans-Cyclohexane-1,2-diol (HY-W010514). This product is intended for research and analytical applications. trans-Cyclohexane-1,2-diol (TCHD) is a transient dilator of the nuclear pore complex (NPC). By interacting with the hydrophobic core (FG nucleoporin) of the NPC, trans-Cyclohexane-1,2-diol can disrupt the NPC structure and reversibly increase the permeability of the nuclear pore, allowing macromolecules larger than 40 kDa (such as plasmid DNA) to enter the cell nucleus by passive diffusion, thereby enhancing the nuclear import efficiency of non-viral vectors. trans-Cyclohexane-1,2-diol can improve the efficiency of in vitro electrotransfection or lipid-mediated gene transfection, especially significantly increasing gene expression in differentiated airway epithelial cells .
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Cat. No.: HY-W585827R
CAS No.: 497-04-1
Synonyms: 2-MCPD (Standard)
Research Areas:  

Others

2-Chloro-1,3-propanediol (Standard) (2-MCPD (Standard)) is the analytical standard of 2-Chloro-1,3-propanediol (HY-W585827). This product is intended for research and analytical applications. 2-Chloro-1,3-propanediol (2-MCPD) is a pharmaceutical intermediate. 2-Chloro-1,3-propanediol is a common glycerol-derived chemical intermediate and also a food processing contaminant. 2-Chloro-1,3-propanediol can cross the intestinal barrier model via paracellular diffusion. 2-Chloro-1,3-propanediol induces renal and testicular toxicity in animal models. 2-Chloro-1,3-propanediol can be used in research related to organic synthesis .
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Cat. No.: HY-W585827S
CAS No.: 1216764-05-4
Synonyms: 2-MCPD-d5
2-Chloro-1,3-propanediol-d5 (2-MCPD-d5) is the deuterated-labeled 2-Chloro-1,3-propanediol (HY-W585827). 2-Chloro-1,3-propanediol (2-MCPD) is a pharmaceutical intermediate. 2-Chloro-1,3-propanediol is a common glycerol-derived chemical intermediate and also a food processing contaminant. 2-Chloro-1,3-propanediol can cross the intestinal barrier model via paracellular diffusion. 2-Chloro-1,3-propanediol induces renal and testicular toxicity in animal models. 2-Chloro-1,3-propanediol can be used in research related to organic synthesis .
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Cat. No.: HY-W585827S1
CAS No.: 1216764-05-4
Synonyms: 2-MCPD-d5 (major)
2-Chloro-1,3-propanediol-d5 (major) (2-MCPD-d5 (major)) is the deuterated-labeled 2-Chloro-1,3-propanediol (HY-W585827). 2-Chloro-1,3-propanediol (2-MCPD) is a pharmaceutical intermediate. 2-Chloro-1,3-propanediol is a common glycerol-derived chemical intermediate and also a food processing contaminant. 2-Chloro-1,3-propanediol can cross the intestinal barrier model via paracellular diffusion. 2-Chloro-1,3-propanediol induces renal and testicular toxicity in animal models. 2-Chloro-1,3-propanediol can be used in research related to organic synthesis .
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Cat. No.: HY-P2802B
CAS No.: 9001-42-7
Target:  

Glycosidase

Research Areas:  

Metabolic Disease

α-Glucosidase, rice is a GH31 glycoside hydrolase in rice seeds, with high selectivity for α-1,4-glycosidic bonds. α-Glucosidase, rice can be inhibited by rice husk extracts (IC50 = 1.25 μg/mL) and steroidal components (IC50 = 1.83 μg/mL). α-Glucosidase, rice exists in two major isoforms, among which isoform II is more sensitive to inhibitors. α-Glucosidase, rice can directly bind to and degrade starch granules in rice seeds. α-Glucosidase, rice can form ONG2-I and ONG2-II via post-translational proteolysis. α-Glucosidase, rice can be used in type 2 diabetes research .
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Cat. No.: HY-P2977
CAS No.: 9027-60-5
Synonyms: Sialic acid aldolase (CgNal)
N-Acetylneuraminate lyase (CgNal) (Sialic acid aldolase (CgNal)) is a rate-limiting enzyme in bacteria metabolism that catalyzes the reversible aldol cleavage of sialic acid, and it regulates the overall metabolism of the bacterial sialic acid catabolic pathway. N-Acetylneuraminate lyase (CgNal) catalyzes the reversible condensation reaction of pyruvate and N-acetyl-d-mannosamine (ManNAc) to produce sialic acid N-acetylneuraminic acid (Neu5Ac). The protein expression of N-Acetylneuraminate lyase is downregulated at the translational level under the regulation of methyl methanesulfonate, and this change significantly impairs the adhesion and invasion abilities of bacteria to eukaryotic cells. N-Acetylneuraminate lyase is a key virulence-related protein in various pathogenic bacteria and is considered an antibiotic drug target. N-Acetylneuraminate lyase (CgNal) can be used in studies of invasive (extraintestinal) infectious diseases, Crohn's disease, and methicillin-resistant Staphylococcus aureus infections .
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Cat. No.: HY-L207
661 compounds

Metabolomics is the large-scale study of cellular metabolic complement, with proven utility in both basic and applied studies of plants, microorganisms, and mammals. As an important tool for the study of complex biological systems, metabolomics monitors the complex molecular networks that exist in the natural flow of information from genes to mRNA and proteins to organisms. The metabolome is composed of biomolecules that most closely resemble the phenotype of an organism, and changes in its composition can easily lead to the production of diseases. Therefore, metabolomics has received much attention in drug target discovery, drug response and translational research of disease mechanisms. Mass spectrometry-based metabolomics methods can simultaneously detect and quantify thousands of metabolite signatures, thereby characterizing the pathophysiological mechanisms of various biomedical symptoms.

MCE can provide 661 mass spectrometry human endogenous metabolites that can be used for metabolite identification and quantification, functional cell detection and phenotypic screening of mass spectrometry.

Cat. No.: HY-L024
931 compounds

A histone modification, a covalent post-translational modification (PTM) to histone proteins, includes methylation, phosphorylation, acetylation, ubiquitylation, and sumoylation, etc. In general, histone modifications are catalyzed by specific enzymes that act predominantly at the histone N-terminal tails involving amino acids such as lysine or arginine, as well as serine, threonine, tyrosine, etc. The PTMs made to histones can impact gene expression by altering chromatin structure or recruiting histone modifiers. Histone modifications act in diverse biological processes such as transcriptional activation/inactivation, chromosome packaging, and DNA damage/repair. Deregulation of histone modification contributes to many diseases, including cancer and autoimmune diseases.

MCE owns a unique collection of 931 bioactive compounds targeting Epigenetic Reader Domain, HDAC, Histone Acetyltransferase, Histone Demethylase, Histone Methyltransferase, Sirtuin, etc. Histone Modification Research Compound Library is a useful tool for histone modification research and drug screening.

Cat. No.: HY-L221
626 compounds

Cosmetics are complex mixtures formulated through the rational blending and processing of various natural, synthetic, or extracted raw materials. The ingredients used in cosmetics are diverse in type and functionality. Based on their properties and applications, cosmetic ingredients can generally be classified into two main categories: base materials and auxiliary ingredients. The former constitutes the primary component of cosmetics, accounting for a significant proportion in formulations and serving as the key functional substances. Auxiliary ingredients, on the other hand, play roles in shaping the product, ensuring stability, or imparting color, fragrance, and other specific characteristics.Establishing a systematic ingredient database is of great significance for cosmetic research and development. By analyzing the physicochemical properties (such as oil-water partition coefficients and molecular weight distribution), biological activity mechanisms (such as antioxidant pathways and cellular signaling regulation), and compatibility of ingredients, the database can provide precise guidance for formulation design. This approach helps shorten the development cycle of cosmetic/skincare products and reduces trial-and-error costs.

MCE offers 626 types of cosmetic ingredient compounds, including antioxidants, humectants, emulsifiers, film-forming agents, and more.

Cat. No.: HY-187534
Research Areas:  

Cancer

VEGFR2 AUTOTAC-1 is a VEGFR2 AUTOTAC degrader. VEGFR2 AUTOTAC-1 recruits p62, activates the autophagy-lysosome pathway through the p62-LC3 axis cascade, forms a ternary complex with VEGFR2 and p62, and drives UPS-independent post-translational degradation of VEGFR2. VEGFR2 AUTOTAC-1 induces G1 phase arrest and endogenous apoptosis in cells via the mitochondrial and caspase apoptotic pathways, thereby inhibiting cancer cell proliferation, migration and malignant phenotypes; meanwhile, it inhibits endothelial cell tube formation, migration and endothelial-mesenchymal transition by regulating E-cadherin and MMP2. VEGFR2 AUTOTAC-1 is applicable to research related to triple-negative breast cancer.(Pink: VEGFR2 target protein ligand (HY-187558); Blue: p62 ligand (HY-W014292); Black: Linker)
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Cat. No.: HY-L050
507 compounds

Protein ubiquitination is an enzymatic post-translational modification in which an ubiquitin protein is attached to a substrate protein. Ubiquitination involves three main steps: activation, conjugation, and ligation, performed by ubiquitin-activating enzymes (E1s), ubiquitin-conjugating enzymes (E2s), and ubiquitin ligases (E3s), respectively. Ubiquitination affects cellular processes such as apoptosis, cell cycle, DNA damage repair, and membrane transportation, etc. by regulating the degradation of proteins (via the proteasome and lysosome), altering the cellular localization of proteins, affecting proteins activity, and promoting or preventing protein-protein interactions. Deregulation of ubiquitin pathway leads to many diseases such as neurodegeneration, cancer, infection and immunity, etc.

MCE offers a unique collection of 507 small molecule modulators with biological activity used for ubiquitination research. Compounds in this library target the key enzymes in ubiquitin pathway. MCE Ubiquitination Compound Library is a useful tool for the research of ubiquitination regulation and the corresponding diseases.

Cat. No.: HY-L215
6,077 compounds

Metabolomics, positioned as the systemic characterization of small-molecule metabolites within biological systems, has emerged as an indispensable analytical platform in both fundamental research and translational applications across plant sciences, microbial biotechnology, and biomedical investigations. Functioning as a critical component in multi-omics integration, this discipline deciphers the intricate molecular networks operating downstream of genomic, transcriptomic, and proteomic regulation, thereby capturing the dynamic biochemical phenotype closest to organismal functionality. The metabolome, comprising endogenous compounds with molecular weights typically below 1500 Da, serves as the functional readout of cellular processes and environmental interactions, where perturbations in metabolic networks are frequently implicated in disease pathogenesis. Such unique attributes have propelled metabolomics into a pivotal role in pharmacological research, particularly in target deconvolution, pharmacodynamic assessment, and mechanistic elucidation of pathological processes.

MCE can provide 6,077 mass spectrometry human metabolites that can be used for metabolite identification and quantification, functional cell detection and phenotypic screening of mass spectrometry.

Cat. No.: HY-L166
1,751 compounds

Ion channel is a membrane-binding enzyme whose catalytic site is an ion conduction pore, which is opened and closed in response to specific environmental stimuli (voltage, ligand concentration, membrane tension, temperature, etc.). Ion channel provide pores for the passive diffusion of ions on the biofilm. Due to their high selectivity for ion, ion channel are generally classified as sodium (Na+ ), potassium (K+ ), calcium (Ca2+ ), chloride (Cl- ), and non-specific cation channel. Ion channel is an important contributor to cell signal transduction and homeostasis. In addition to electrical signal transduction, ion channel also have many functions: regulating vascular smooth muscle contraction, maintaining normal cell volume, regulating glandular secretion, protein kinase activation, etc. Therefore, dysfunction of ion channel can lead to many diseases, and its mechanism research is particularly important.

MCE designs a unique collection of 1,751 small molecules related to ion channel, mainly targeting Na+ channel, K+ channel, Ca2+ channel, GABA receptor, iGluR, etc. It is an essential tool for research of cardiovascular diseases, Nervous system diseases and other diseases.

Cat. No.: HY-177569
NVS1.1 is an orally active, blood-brain barrier-penetrant eRF1 degrader. NVS1.1 induces ubiquitination of eRF1 at Lys279, mediates proteasomal degradation via the E3 ubiquitin ligases RNF14 and RNF25 as well as the translational stress sensor GCN1, traps eRF1 at the ribosomal A-site, inhibits translation termination and triggers ribosome collision. As a readthrough enhancer, NVS1.1 enables near-cognate tRNA incorporation at premature termination codons by reducing intracellular eRF1 levels. NVS1.1 activates ribosome-associated quality control pathways via ribosome collision, including ubiquitination of small subunit ribosomal proteins. NVS1.1 restores functional full-length CFTR and IDUA proteins and reduces glycosaminoglycan accumulation in relevant models. NVS1.1 can be used in the research of cystic fibrosis and Hurler syndrome (mucopolysaccharidosis type I, MPS I) .
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Cat. No.: HY-134096
CAS No.: 78323-98-5
Synonyms: DNS-M
Target:  

Fluorescent Dye

Research Areas:  

Others

Dansyl-morpholine (DNS-M) is a Fluorescent probe for lipid droplet imaging, cancer cell discrimination, and real-time tracking of lipid droplet dynamics. As a solvatochromic probe with a donor-π-acceptor structure, it relies on hydrophobic interaction for its mechanism of action: its good lipophilicity, confirmed by an oil-water partition coefficient LogP = 2.35, allows it to rapidly penetrate cell membranes, and it specifically localizes to the hydrophobic core of lipid droplets; its fluorescence is strongly enhanced in the nonpolar environment of lipid droplets, while it emits very weak fluorescence in polar environments like PBS buffer, and it exhibits a bathochromic shift in emission wavelength with increasing solvent polarity. It has negligible cytotoxicity, with cell viability remaining over 95% after 24-hour incubation with 100 μM of the probe, and it possesses excellent photostability, retaining over 97% of initial fluorescence intensity after 60 continuous laser scans. For cell imaging applications, its excitation/emission wavelengths for lipid droplet labeling are Ex/Em = 405/480−540 nm, and in a simulative lipid environment O/W emulsion, it has an excitation wavelength of ~346 nm and emission wavelength of ~500 nm, giving a Stokes shift of 154 nm[1].
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Cat. No.: HY-187390
BRD4 RIMTAC-1 is a BRD4 PROTAC degrader based on the RIPK1-mediated targeted chimera (RIMTAC) technology. It hijacks the endogenous RIPK1-VHL complex via the RIPK1 inhibitor moiety to indirectly recruit the VHL E3 ligase, forming a BRD4-Compound 10-RIPK1-VHL quaternary complex, and degrades BRD4 through the ubiquitin-proteasome system (UPS). BRD4 RIMTAC-1 exhibits selectivity over other BET proteins, induces concentration- and time-dependent, reversible post-translational degradation of BRD4 without altering the target mRNA level. BRD4 RIMTAC-1 potently induces endogenous BRD4 degradation in RAW264.7 and HEK-293T cells, with DC50 values of 179.1 nM and 54.12 nM, respectively. BRD4 RIMTAC-1 can be used for the research of cancer and inflammation-related diseases .
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