57 Results for "

reprogramming

" in MedChemExpress (MCE) Product Catalog:
Products (57)

57 Results for "reprogramming" in MCE Product Catalog:

Cat. No.: HY-113286R
CAS No.: 463-00-3
4-Guanidinobutanoic acid (Standard) is the analytical standard of 4-Guanidinobutanoic acid (HY-113286). This product is intended for research and analytical applications. 4-Guanidinobutanoic acid is a metabolite of arginine and an orally active SLC36A1/Hedgehog signaling pathway activator. 4-Guanidinobutanoic acid drives epithelial reprogramming, enhances intestinal stem cell function and goblet cell differentiation. 4-Guanidinobutanoic acid promotes the enrichment of Akkermansia muciniphila via mucus-dependent niche expansion, regulates intestinal homeostasis, and establishes a microbiota-host feedback loop. 4-Guanidinobutanoic acid exhibits anti-aging and healthspan-regulating properties. 4-Guanidinobutanoic acid can be used in research related to ulcerative colitis, amyotrophic lateral sclerosis, and Duchenne muscular dystrophy .
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Cat. No.: HY-157189A
Synonyms: GPR132 antagonist 1 (dihydrocholide)
Target:  

G2A (GPR132)

Research Areas:  

Metabolic Disease

NOX-6-18 (dihydrocholide) (GPR132 antagonist 1 (diHYdrocholide)) is a GPR132 antagonist with an IC50 of 15.17 nM against the human target. NOX-6-18 (dihydrocholide) inhibits GPR132 activation via interaction with non-conserved residues, blocks activities induced by endogenous agonists and 9 (S)-HODE, and exhibits selectivity for other fatty acid-binding GPCRs. NOX-6-18 (dihydrocholide) regulates macrophage reprogramming, alleviates inflammatory responses, downregulates inflammatory markers and signaling pathways, and reduces the degree of hepatic steatosis and hepatic triglyceride levels. NOX-6-18 (dihydrocholide) regulates metabolic homeostasis, reduces weight gain, enhances glucose metabolism, improves glucose tolerance, decreases fasting blood glucose and insulin levels, and partially reverses reductions in energy expenditure and respiratory quotient. NOX-6-18 (dihydrocholide) can be used in the research of type 2 diabetes .
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Cat. No.: HY-D3525
Target:  

Fluorescent Dye

Research Areas:  

Others

BDL-E5 is a fluorescent probe for detecting live induced pluripotent stem cells at the early reprogramming stage. Its detection mechanism involves specific binding to authentic reprogramming cells, which exhibit increased expression of pluripotency and epithelial genes and decreased expression of mesenchymal genes compared to non-reprogramming cells; it appears to co-localize more significantly with the Golgi complex than other organelle markers in reprogramming cells, and it does not require washing after staining to reduce background signals; fluorescence is generated upon binding to these early reprogramming cells, with positive cells appearing 7 days before iPS colonies are visible and stain positive for the conventional pluripotent marker TRA-1-60, and sorting BDL-E5-positive cells enriches populations that generate higher numbers and quality of iPS colonies. Its detection wavelength is Ex/Em = 578/599 nm .
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Cat. No.: HY-185679
CAS No.: 2991244-19-8
Research Areas:  

Others

W19-LNP is a lipid nanoparticle formulated with a Ugi-reaction-derived ionizable lipid (W19). W19-LNP demonstrates highly selective mRNA delivery to the spleen in female BALB/c mice upon intravenous administration. W19-LNP can be used for the research of mRNA-based vaccine delivery, immune cell reprogramming, and gene-engineered cell preparation .
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Cat. No.: HY-P11869
Research Areas:  

Inflammation/Immunology

PADI4_11 is an isoform-selective, allosteric PADI4 activator with a Kd of 457 nM. PADI4_11 enters cells via active transport, does not induce cytotoxicity or membrane damage, and serves as a tool for investigating the regulation, function and cellular reprogramming of PADI4. PADI4_11 can be used in studies related to rheumatoid arthritis and ulcerative colitis .
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Cat. No.: HY-188022
CAS No.: 3024023-96-6
Target:  

Liposome

Research Areas:  

Cardiovascular Disease Cancer

T Cell Lipid 15 is an ionizable cationic lipid. T Cell Lipid 15 can be used to construct LNP targeting T cells. LNPs based on T Cell Lipid 15 induce reduced cytokine secretion, enable specific in vivo CD8 + T cell reprogramming, and cause minimal off-target transfection. T Cell Lipid 15 can be used for research on hematologic malignancies .
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Cat. No.: HY-181483
CDK6-IN-2 is a CDK6 covalent inhibitor with an IC50 of 0.013 μM. CDK6-IN-2 inhibits the proliferation and migration of triple-negative breast cancer cells, and induces cell cycle arrest and apoptosis. CDK6-IN-2 induces ROS accumulation and mitochondrial damage through cellular metabolic reprogramming. CDK6-IN-2 exhibits anti-tumor activity and can be used for the research of triple-negative breast cancer .
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Cat. No.: HY-183067
CAS No.: 2098585-77-2
Research Areas:  

Cancer

TAS1440 is an orally active LSD1/KDM1A inhibitor with a human IC50 of 4.8 nM. TAS1440 non-covalently binds to the histone H3-binding pocket of LSD1, inhibiting demethylase activity and disrupting repressive complexes with INSM1 and SMAD2. TAS1440 activates tumor-suppressive TGF-β and NOTCH signaling pathways via transcriptional reprogramming. TAS1440 can be used for the research of small cell lung cancer, specifically the SCLC-A subtype .
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Cat. No.: HY-L250
61 compounds

In the progression of various diseases, metabolic reprogramming has emerged as a key hallmark. Lactate, as an important metabolic signaling molecule, is widely involved in tumorigenesis, immune regulation, and inflammatory responses. Particularly within the tumor microenvironment, the abnormal accumulation of lactate not only affects cellular energy metabolism but also promotes disease progression by modulating immune cell functions and mediating protein lactylation, thereby participating in epigenetic regulation and signaling networks. Therefore, systematic investigation of lactate metabolic pathways and their associated metabolites is of great significance for understanding disease mechanisms and developing novel therapeutic strategies.

The MCE lactic acid metabolite compound library contains 61 compounds and is constructed around key metabolic pathways involving lactate production, transport, and utilization. This library systematically includes core intermediates from glycolysis, the tricarboxylic acid (TCA) cycle, and the lactate cycle. Focusing on disease-associated metabolic reprogramming, it is suitable for research in oncology, inflammation, and metabolic disorders. The library can be used to elucidate the roles of lactate in tumor microenvironment regulation, immune evasion, and epigenetic modifications (such as protein lactylation). In addition, it provides high-quality small-molecule resources for drug screening, facilitating the discovery of potential modulators targeting key enzymes (such as LDH) or transporters (such as MCTs) involved in lactate metabolism.

Cat. No.: HY-183067A
CAS No.: 2642224-15-3
Research Areas:  

Cancer

TAS1440 benzoate is an orally active LSD1/KDM1A inhibitor with a human IC50 of 4.8 nM. TAS1440 benzoate non-covalently binds to the histone H3-binding pocket of LSD1, inhibiting demethylase activity and disrupting repressive complexes with INSM1 and SMAD2. TAS1440 benzoate activates tumor-suppressive TGF-β and NOTCH signaling pathways via transcriptional reprogramming. TAS1440 benzoate can be used for the research of small cell lung cancer, specifically the SCLC-A subtype .
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Cat. No.: HY-181602
Research Areas:  

Cancer

ATP Synthesis-IN-4 is a mitochondria-targeted small-molecule ligand that inhibits ATP synthesis. ATP Synthesis-IN-4 binds to mtDNA G4s in melanoma cells, thereby inducing changes in mitochondrial metabolism and inhibiting cell proliferation. ATP Synthesis-IN-4 suppresses the translation of key mitochondrial respiratory chain proteins (CYTB, ATP8, COX1, COX3, ND2) in melanoma cells, downregulates the expression of OXPHOS complexes, activates the phosphorylation of AMPK, and induces metabolic reprogramming to upregulate glycolysis. ATP Synthesis-IN-4 is applicable to relevant research on melanoma .
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Cat. No.: HY-184895
CM002 is a circadian clock activator. CM002 inhibits the lineage commitment and terminal differentiation of preadipocytes by activating the circadian clock, thereby blocking the adipogenesis process driven by Wnt signaling-mediated transcriptional induction. CM002 attenuates lipid storage in a clock-dependent manner via inhibition of the lipogenic program in mature adipocytes. CM002 enhances circadian clock output across various adipose depots in both lean and obese mice through BMAL1/CLOCK-dependent metabolic reprogramming, inhibits adipocyte development and hypertrophy, and improves insulin sensitivity. CM002 can be used in research on obesity and type 2 diabetes .
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Cat. No.: HY-P992433
Target:  

LILRB

Research Areas:  

Cancer

OR502 is a humanized IgG1 monoclonal antibody targeting LILRB2 (ILT4/CD85d), with a Kd value of 1.18 nM. OR502 binds to LILRB2 with high affinity and blocks its interaction with HLA class I ligands, relieving myeloid cell-mediated immunosuppression, restoring CD8 + T cell function, and reprogramming the immunosuppressive macrophage phenotype, thereby simultaneously enhancing both innate and adaptive antitumor immune responses. OR502 can be used in the research of cancers and advanced cancers (including melanoma, non-small cell lung cancer, sarcoma/soft tissue cancer, and urothelial carcinoma) .
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Cat. No.: HY-L249
6,182 compounds

Protein lactylation, an emerging post-translational modification identified in recent years, plays a critical role in linking cellular metabolic reprogramming, epigenetic regulation, and signaling networks. Based on a systematic framework encompassing lactate metabolism, lactylation, and downstream signaling pathways, this compound library comprehensively targets multiple regulatory layers, including histone modification enzymes (such as p300 and HDACs), key glycolytic enzymes (such as PKM2, LDHA, and GAPDH), transcriptional regulators (such as STAT3, HMGB1, and p53), as well as central signaling pathway nodes including HIF-1α, NF-κB, and PI3K-AKT-mTOR. This integrated design enables a comprehensive representation of the regulatory roles of lactylation across the “metabolism–epigenetics–signaling” axis.

MCE has assembled a collection of 6,182 known bioactive compounds and potential functional molecules, making this library suitable for a wide range of applications, including high-throughput drug screening, inhibitor identification, and mechanistic studies. It can be used to systematically evaluate the functional roles of lactylation in biological processes such as tumor metabolism, immune regulation, and inflammatory responses, and to efficiently identify small-molecule candidates with regulatory potential, thereby facilitating the development of innovative therapeutics targeting the interplay between metabolism and epigenetic regulation.

Cat. No.: HY-L038
2,574 compounds

Stem cells, which are found in all multi-cellular organisms, can divide and differentiate into diverse special cell types and can self-renew to produce more stem cells. To be useful in therapy, stem cells must be converted into desired cell types as necessary which is called induced differentiation or directed differentiation. Understanding and using signaling pathways for differentiation is an important method in successful regenerative medicine. Small molecules or growth factors induce the conversion of stem cells into appropriate progenitor cells, which will later give rise to the desired cell type. There is a variety of signal molecules and molecular families that may affect the establishment of germ layers in vivo, such as fibroblast growth factors (FGFs); the wnt family or superfamily of transforming growth factors β (TGFβ) and bone morphogenetic proteins (BMP). Unfortunately, for now, a high cost of recombinant factors is likely to limit their use on a larger scale in medicine. The more promising technique focuses on the use of small molecules. These small molecules can be used for either activating or deactivating specific signaling pathways. They enhance reprogramming efficiency by creating cells that are compatible with the desired type of tissue. It is a cheaper and non-immunogenic method.

MCE Differentiation Inducing Compound Library contains a unique collection of 2,574 compounds that act on signaling pathways for differentiation. These compounds are potential stimulators for induced differentiation. This library is a useful tool for researching directed differentiation and regenerative medicine.

Cat. No.: HY-184173
OXPHOS-IN-3 is a mitochondria-targeted dual OXPHOS/glycolysis inhibitor. OXPHOS-IN-3 exhibits potent antiproliferative activity against pancreatic cancer cells. OXPHOS-IN-3 induces mitochondrial dysfunction, ferroptosis, and immunogenic cell death (ICD). OXPHOS-IN-3 shows potent antitumor activity in pancreatic ductal adenocarcinoma (PDAC) models .
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Cat. No.: HY-184203
Target:  

HDAC

Research Areas:  

Cancer

SM-06-09 is a potent, highly selective, orally active tetrazolone-based HDAC6 inhibitor with an IC50 value of 0.49 nM. SM-06-09 promotes tumor-associated macrophage (TAM) polarization toward an antitumor M1-like phenotype and enhances macrophage phagocytosis, antigen presentation, and T-cell activation. SM-06-09 remodels the tumor immune microenvironment, exhibits antitumor activity in melanoma models, and enhances the efficacy of anti-PD-1 immune checkpoint blockade .
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