143 Results for "

cellular systems

" in MedChemExpress (MCE) Product Catalog:
Products (143)

143 Results for "cellular systems" in MCE Product Catalog:

Cat. No.: HY-125863A
CAS No.: 9001-40-5
Synonyms: G6PD (Leuconostoc sp., recombinant)
Research Areas:  

Metabolic Disease

Glucose-6-phosphate dehydrogenase (Leuconostoc sp., recombinant) (G6PD (Leuconostoc sp., recombinant)) (EC 1.1.1.49) is an NADP-dependent antioxidant metabolic enzyme. Glucose-6-phosphate dehydrogenase (Leuconostoc sp., recombinant) can be induced by sublethal doses of Menadione (HY-B0332) and increasing concentrations of NaCl. Glucose-6-phosphate dehydrogenase (Leuconostoc sp., recombinant) catalyzes the oxidation of glucose-6-phosphate (G6P) to 6-phosphoglucono-δ-lactone, while reducing NADP + to NADPH, providing reducing power for the antioxidant defense system and cellular redox balance of bacteria. Glucose-6-phosphate dehydrogenase (Leuconostoc sp., recombinant) is used in research related to diabetic complications .
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Cat. No.: HY-125863D
Synonyms: G6PD, Torula yeast
Research Areas:  

Metabolic Disease

Glucose-6-phosphate dehydrogenase, Torula yeast (G6PD, Torula yeast) (EC 1.1.1.49) is an NADP-dependent antioxidant metabolic enzyme. Glucose-6-phosphate dehydrogenase, Torula yeast can be induced by sublethal doses of Menadione (HY-B0332) and increasing concentrations of NaCl. Glucose-6-phosphate dehydrogenase, Torula yeast catalyzes the oxidation of glucose-6-phosphate (G6P) to 6-phosphoglucono-δ-lactone, while reducing NADP + to NADPH, providing reducing power for the antioxidant defense system and cellular redox balance of bacteria. Glucose-6-phosphate dehydrogenase, Torula yeast is used in research related to diabetic complications .
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Cat. No.: HY-185057
CAS No.: 41656-56-8
Synonyms: S-Lactylglutathione; (R)-S-Lactoylglutathione
S-D-Lactoylglutathione (S-Lactylglutathione; (R)-S-Lactoylglutathione) is a multifunctional metabolic intermediate of the glyoxalase system. S-D-Lactoylglutathione activates K + efflux in bacteria by displacing inhibitory glutathione from KefGB channels, thereby acidifying the cytoplasm. In eukaryotic cells, S-D-Lactoylglutathione mediates S-glutathionylation as a substrate of glyoxalase 2. S-D-Lactoylglutathione serves as a sensitive metabolic biomarker for neodymium nitrate neurotoxicity; when used in combination with MSCs-exo, it upregulates glutathione levels, downregulates lactate dehydrogenase and Glo2 levels, and inhibits cellular inflammatory responses and pyroptosis. S-D-Lactoylglutathione can be used in research related to prostate cancer, breast cancer, non-small cell lung cancer, sepsis-associated encephalopathy, and neurotoxicity .
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Cat. No.: HY-D1056B4
Synonyms: LPS, from bacterial (Salmonella typhosa)
Lipopolysaccharides, from Salmonella typhosa are lipopolysaccharide endotoxins and TLR-4 activators derived from Salmonella typhosa, classified as S-type LPS, which can activate pathogen-associated molecular patterns (PAMP) of the immune system and induce cellular secretion of migrasomes. Lipopolysaccharides, from Salmonella typhosa exhibit a typical three-part structure: O-antigen, core oligosaccharide, and lipid A. Lipopolysaccharides, from Salmonella typhosa can serve as vaccine adjuvants and demonstrate adjuvant activity targeting B cells in immune responses in vivo .
It is recommended to prepare a solution with concentration ≥2 mg/mL. Vortex thoroughly for more than 10 minutes. Due to the adsorption characteristics of LPS, silanized container or low adsorption centrifuge tubes should be used for aliquoting and storage, and mix thoroughly before use.
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Cat. No.: HY-P4121
CAS No.: 1898254-09-5
Target:  

Potassium Channel

Research Areas:  

Inflammation/Immunology Cancer

L17E is an attenuated cationic amphiphilic lytic (ACAL) peptide that can be used to deliver a variety of macromolecules, including proteins, antibodies, and DNA nanostructures. L17E inserts and cleaves the membrane structure through electrostatic interaction, enabling intracellular escape. The efficiency of L17E-mediated delivery is strongly correlated with the expression level of KCNN4 (the gene encoding the calcium-activated potassium channel KCa3.1). L17E also promotes the cellular uptake of macromolecules by inducing micropinocytosis. L17E can be further optimized and improved through dimerization strategies and in combination with other delivery systems, such as nuclear localization signal peptides and cell membrane-coated nanoparticles .
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Cat. No.: HY-125863C
CAS No.: 9001-40-5
Synonyms: G6PD, Bacillus sp.
Research Areas:  

Metabolic Disease

Glucose-6-phosphate dehydrogenase, Bacillus sp. (G6PD, Bacillus sp.) (EC 1.1.1.49) is an NADP-dependent antioxidant metabolic enzyme. Glucose-6-phosphate dehydrogenase, Bacillus sp. is induced by sublethal doses of Menadione (HY-B0332) and increasing concentrations of NaCl in Bacillus sp. F26. Glucose-6-phosphate dehydrogenase, Bacillus sp. catalyzes the oxidation of glucose-6-phosphate (G6P) to 6-phosphoglucono-δ-lactone, while reducing NADP + to NADPH, providing reducing power for the antioxidant defense system and cellular redox balance of Bacillus sp. F26. Glucose-6-phosphate dehydrogenase, Bacillus sp. is used in research related to diabetic complications .
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Cat. No.: HY-137487
CAS No.: 2417296-84-3
Purity:  98.02%
Target:  

PROTACs Raf

Research Areas:  

Cancer

PROTAC BRAF-V600E degrader-1 is a BRAF-V600E-selective PROTAC degrader and inhibitor. PROTAC BRAF-V600E degrader-1 induces degradation of BRAF-V600E via the cellular ubiquitin proteasome system, sparing wild-type BRAF. PROTAC BRAF-V600E degrader-1 suppresses the MEK/ERK kinase cascade in melanoma cells. PROTAC BRAF-V600E degrader-1 impairs growth of melanoma cells in culture. PROTAC BRAF-V600E degrader-1 can be used for the research of melanoma, colon cancer .
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Cat. No.: HY-P991381
Synonyms: PPMX-T003; TSP-A18
JST‑TfR09 (PPMX‑T003) is a human monoclonal antibody (mAb) targeting transferrin receptor 1 (TfR1/CD71). JST‑TfR09 blocks the binding of transferrin to TfR1, inhibits TfR1 internalization, and suppresses cellular iron uptake. JST‑TfR09 triggers ferritin degradation via activating the autolysosomal system, promotes ROS production and lipid peroxidation, and ultimately induces ferroptosis. JST‑TfR09 exhibits cytotoxicity toward human erythroblasts differentiated from hematopoietic stem cells. JST-TfR09 can be used in leukemia research. Recommended isotype control: Human IgG1 lambda, Isotype Control (HY-P99992) .
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Cat. No.: HY-D1056B2
Synonyms: LPS, from bacterial (Proteus mirabilis)
Lipopolysaccharides, from Proteus mirabilis are lipopolysaccharide endotoxins and TLR-4 activators derived from Proteus mirabilis, classified as S-type LPS, which can activate pathogen-associated molecular patterns (PAMP) of the immune system and induce cellular secretion of migrasomes. Lipopolysaccharides, from Proteus mirabilis exhibit a typical three-part structure: O-antigen, core oligosaccharide, and lipid A. Proteus mirabilis is a major pathogen causing urinary tract infections and may also contribute to rheumatoid arthritis. Lipopolysaccharides, from Proteus mirabilis also exhibit potential anti-tumor effects, demonstrating in vivo inhibitory activity against solid tumors such as meningosarcoma and Walker carcinosarcoma .
It is recommended to prepare a solution with concentration ≥2 mg/mL. Vortex thoroughly for more than 10 minutes. Due to the adsorption characteristics of LPS, silanized container or low adsorption centrifuge tubes should be used for aliquoting and storage, and mix thoroughly before use.
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Cat. No.: HY-D1056C1
Synonyms: LPS, from Salmonella enterica (Serotype enteritidis)
Lipopolysaccharides, from S. enterica (Salmonella enterica) serotype enteritidis are lipopolysaccharide endotoxins and TLR-4 activators derived from the enteritidis serotype of S. enterica, classified as S-type LPS, which can activate pathogen-associated molecular patterns (PAMP) of the immune system and induce cellular secretion of migrasomes. Lipopolysaccharides, from S. enterica serotype enteritidis exhibit a typical three-part structure: O-antigen, core oligosaccharide, and lipid A. Lipopolysaccharides, from S. enterica serotype enteritidis can induce systemic inflammatory responses, increasing levels of TNF-α, IFN-γ, IL-6, IL-10, and nitrate in plasma .
It is recommended to prepare a solution with concentration ≥2 mg/mL. Vortex thoroughly for more than 10 minutes. Due to the adsorption characteristics of LPS, silanized container or low adsorption centrifuge tubes should be used for aliquoting and storage, and mix thoroughly before use.
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Cat. No.: HY-D1056C4
Synonyms: LPS, from Salmonella enterica (Serotype abortus equi)
Lipopolysaccharides, from S. enterica (Salmonella enterica) serotype Abortusequi are lipopolysaccharide endotoxins and TLR-4 activators derived from the Abortusequi serotype of S. enterica, classified as a mutated R-type LPS, which can activate pathogen-associated molecular patterns (PAMP) of the immune system and induce cellular secretion of migrasomes. Lipopolysaccharides, from S. enterica serotype abortus equi consist of core oligosaccharide (core oligosaccharide) and lipid A (Lipid A). S. enterica serotype Abortusequi is a major pathogen causing abortion in mares and is also associated with neonatal sepsis, multiple abscesses, orchitis, and polyarthritis in equids. It is primarily grouped based on lipopolysaccharides (O-antigen) and flagellin (H-antigen) .
It is recommended to prepare a solution with concentration ≥2 mg/mL. Vortex thoroughly for more than 10 minutes. Due to the adsorption characteristics of LPS, silanized container or low adsorption centrifuge tubes should be used for aliquoting and storage, and mix thoroughly before use.
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Cat. No.: HY-L197
136 compounds

Vitamins are a category of trace organic compounds essential for maintaining normal physiological functions in living organisms. They are classified into fat-soluble and water-soluble vitamins. Fat-soluble vitamins play a role in maintaining vision, bone health, reproductive functions, and blood coagulation. Water-soluble vitamins are involved in energy metabolism, nervous system function, and cellular repair processes. Most vitamins cannot be synthesized by the organism and must be obtained through diet. In recent years, vitamins and their derivatives have become increasingly important in the field of drug development due to their extensive physiological activities. Additionally, vitamins and their derivatives can be used to construct research platforms for vitamin metabolism, which helps to delve into the metabolic pathways and dynamic changes of vitamins within the body and aids in identifying new biomarkers for certain diseases.

MCE included 136 vitamins and their derivatives, including Vitamin A, Vitamin B, Vitamin D, etc., which is a good tool for studying vitamin metabolism.

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-D1056B1
Synonyms: LPS, from bacterial (Proteus vulgaris)
Lipopolysaccharides, from Proteus vulgaris are lipopolysaccharide endotoxins and TLR-4 activators derived from Proteus vulgaris, classified as S-type LPS, which can activate pathogen-associated molecular patterns (PAMP) of the immune system and induce cellular secretion of migrasomes. Lipopolysaccharides, from Proteus vulgaris exhibit a typical three-part structure: O-antigen, core oligosaccharide, and lipid A. Lipopolysaccharides, from Proteus vulgaris possess a unique molecular structure and chitosan affinity (Kb=2.72 μM), surpassing that of Yersinia pseudotuberculosis (Kb=6.06 μM) and Escherichia coli (Kb=79.50 μM) .
It is recommended to prepare a solution with concentration ≥2 mg/mL. Vortex thoroughly for more than 10 minutes. Due to the adsorption characteristics of LPS, silanized container or low adsorption centrifuge tubes should be used for aliquoting and storage, and mix thoroughly before use.
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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-D1056A3
Synonyms: LPS, from Escherichia coli (O26:B6)
Lipopolysaccharides, from E. coli (Escherichia coli) O26:B6 are lipopolysaccharide endotoxins and TLR-4 activators derived from E. coli, classified as S-type LPS, which can activate pathogen-associated molecular patterns (PAMP) of the immune system and induce cellular secretion of migrasomes. Lipopolysaccharides, from E. coli O26:B6 exhibit a typical three-part structure: O-antigen, core oligosaccharide, and lipid A, and can be recognized by the core-specific monoclonal antibody MAb J8-4C10. Lipopolysaccharides, from E. coli O26:B6 can promote an increase in pro-inflammatory cytokines in plasma, thereby triggering hypothalamic-pituitary-adrenal (HPA) activation and leading to adrenal oxidative damage. The pathogenic effects of Lipopolysaccharides, from E. coli O26:B6 can be used to construct various models, such as cellular inflammation models, sepsis, acute lung injury models, adrenal dysfunction models, and bladder infection models, etc .
It is recommended to prepare a solution with concentration ≥2 mg/mL. Vortex thoroughly for more than 10 minutes. Due to the adsorption characteristics of LPS, silanized container or low adsorption centrifuge tubes should be used for aliquoting and storage, and mix thoroughly before use.
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Cat. No.: HY-187396
Research Areas:  

Cancer

FD1-C10-CB is a PROTAC degrader targeting the BRD4 protein. FD1-C10-CB binds to FEM1B to form a ternary complex with BRD4, achieving FEM1B-dependent degradation of BRD4 via the ubiquitin-proteasome system. FD1-C10-CB binds to CD36 to mediate endocytic cellular delivery, thereby enhancing its degrading activity. FD1-C10-CB mediates protein degradation through the Cullin-dependent ubiquitin-proteasome pathway, rather than the lysosomal autophagy pathway. FD1-C10-CB induces a decrease in BRD4 protein levels, and its degrading activity is competitively inhibited by FL47 or JQ1. FD1-C10-CB can be used in the research of breast cancer and osteosarcoma .
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Cat. No.: HY-L244
761 compounds

In this era of rapid advancement in gene-editing technology, the CRISPR-Cas system, with its powerful programmability, is leading a transformation in life sciences research. It enables efficient and precise targeted modification of an organism's genome, providing a robust tool for studying gene function, treating genetic diseases, and improving crop varieties. However, bottlenecks such as insufficient editing efficiency, low homologous directed repair efficiency, and potential off-target risks remain major challenges in achieving precise genetic modifications and developing gene therapies.

To overcome these limitations, the MCE High-Efficiency Gene Editing Compound Library systematically includes 761 small molecules that are known or have the potential to enhance gene-editing efficiency. These compounds work by targeting and modulating the DNA damage repair network, mechanistically inhibiting non-homologous end joining, promoting homologous directed repair, or regulating chromatin states and cellular responses, thereby significantly optimizing editing outcomes. This library is suitable for developing "CRISPR-small molecule" combination therapy strategies, improving gene-editing efficiency, and providing a powerful tool for in-depth research into the mechanisms of DNA damage repair in gene editing.

Cat. No.: HY-D1056A5
Synonyms: LPS, from Escherichia coli (K-235)
Lipopolysaccharides, from E. coli (Escherichia coli) K-235 are lipopolysaccharide endotoxins and TLR-4 activators derived from E. coli, classified as S-type LPS, which can activate pathogen-associated molecular patterns (PAMP) of the immune system and induce cellular secretion of migrasomes. Lipopolysaccharides, from E. coli K-235 exhibit a typical three-part structure: O-antigen (O-antigen), core oligosaccharide (core oligosaccharide), and lipid A (Lipid A). Lipopolysaccharides, from E. coli K-235 have a mitogenic effect on C57BL/10ScN spleen cells. Additionally, LPS purified using butanol and deoxycholic acid methods stimulates spleen cells in C57BL/10ScCR and C3H/HeJ mice .
It is recommended to prepare a solution with concentration ≥2 mg/mL. Vortex thoroughly for more than 10 minutes. Due to the adsorption characteristics of LPS, silanized container or low adsorption centrifuge tubes should be used for aliquoting and storage, and mix thoroughly before use.
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Cat. No.: HY-L214
227 compounds

Liposomes are spherical or multilayered spherical vesicles formed by the self-assembly of diacyl chain phospholipids (lipid bilayers) in aqueous solutions, which can be made from natural or synthetic phospholipids and exhibit good biocompatibility and low toxicity. They can serve as delivery carriers for various bioactive substances (such as drugs, proteins, nucleic acids, etc.) and are widely used in biomedical and chemical research. The main advantages of liposomes include 1) Protective effect: Their bilayer structure can protect encapsulated molecules from enzymatic degradation, oxidation, and other influences, extending stability and activity; 2) Active targeting: Surface modifications enable active targeting, enhancing the concentration of drugs or molecules in specific tissues or cells; 3) Customizability: The composition and structure of liposomes can be adjusted according to needs, such as altering phospholipid types or adding targeting ligands. These properties make liposomes highly valuable in developing novel drug delivery systems, serving as nucleic acid carriers for gene transfection, studying cellular uptake mechanisms and drug release kinetics, as well as developing functional food additives to improve the bioavailability of nutritional components.

MCE contains 227 liposome compounds, which is a good tool for drug delivery-related studies.