29 Results for "

stem base

" in MedChemExpress (MCE) Product Catalog:
Products (29)

29 Results for "stem base" in MCE Product Catalog:

Cat. No.: HY-L017
2,931 compounds

Adult stem cells are important for tissue homeostasis and regeneration due to their ability to self-renew and generate multiple types of differentiated daughters. Self-renewal is reflected by their capacity to undergo multiple/limitless divisions. Several signaling pathways are involved in self-renewal of stem cells, that is, Notch, Wnt, and Hedgehog pathways or Polycomb family proteins. Recent studies mainly focus on cancer stem cell (CSCs), induced pluripotent stem cell (iPSCs), neural stem cell and maintenance of embryonic stem cell pluripotency. Among them, CSCs have been believed to be responsible for tumor initiation, growth, and recurrence that have implications for cancer therapy.

MCE owns a unique collection of 2,931 compounds that can be used for stem cell regulatory and signaling pathway research.

Cat. No.: HY-185423
PreQ1-DBCO is a strained cyclooctyne commonly used in click chemistry. PreQ1-DBCO undergoes TGT-catalyzed guanine base exchange in DNA oligonucleotide stem-loops to replace guanine. PreQ1-DBCO functionalizes custom DNA oligonucleotide sequences. DBCO-modified DNA oligonucleotides are conjugated with azide peptides via strain-promoted azide-alkyne click chemistry (SPAAC). PreQ1-DBCO can be used in studies of hemophilia B (Christmas disease) .
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Cat. No.: HY-107589R
CAS No.: 327613-57-0
Research Areas:  

Inflammation/Immunology

BIO5192 (Standard) is the analytical standard of BIO5192 (HY-107589). This product is intended for research and analytical applications. BIO5192 is a selective and potent integrin α4β1 (VLA-4) inhibitor (Kd<10 pM). BIO5192 selectively binds to α4β1 (IC50=1.8 nM) over a range of other integrins. BIO5192 results in a 30-fold increase in mobilization of murine hematopoietic stem and progenitors (HSPCs) over basal levels .
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Cat. No.: HY-W133907
CAS No.: 55566-30-8
Tetrakis (hydroxymethyl) phosphonium sulfate is a protein crosslinker and hydrogel modifier. Tetrakis (hydroxymethyl) phosphonium sulfate covalently binds to primary and secondary amines of amino acids or proteins via a Mannich-type reaction, thereby constructing stable crosslinking bonds between protein molecules. Tetrakis (hydroxymethyl) phosphonium sulfate not only regulates the gelation time and storage modulus of recombinant elastin-like protein hydrogels, but also exhibits excellent cytocompatibility, and supports the differentiation and growth of embryonic stem cells and neural cells in a three-dimensional encapsulation environment. Tetrakis (hydroxymethyl) phosphonium sulfate is suitable for protein-based hydrogel systems, especially for applications related to cell encapsulation .
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Cat. No.: HY-K6301

MCE Human iPSC/ESC Cortical Brain Organoid Induction Differentiation Kit is a standardized culture system specifically designed to recapitulate the developmental processes and functional features of the human cerebral cortex through forebrain ventralization-based signaling regulation. By sequentially activating the Wnt/β-catenin pathway and gradually inhibiting BMP/Smad signaling, this system efficiently drives human pluripotent stem cells (PSC) to differentiate into high-purity glutamatergic neurons (VGLUT1/2+ > 85%), while simultaneously promoting the formation of Pax6+/BLBP+ radial glial cells that establish a biomimetic ventricular-zone–like structure.

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Cat. No.: HY-DY2037
Target:  

Fluorescent Dye

Research Areas:  

Others

Lignin Staining Solution (Safranin Method) is a histochemical staining solution for lignin with Safranin O as the active component. Lignin Staining Solution (Safranin Method) enables lignified cell walls to appear red to deep red (pinkish in regions with low lignification) via the high affinity of the dye for lignin. Lignin Staining Solution (Safranin Method) can be used to visualize lignin distribution in ex vivo thick sections of annual shoots from woody plants and vibratome sections of stems from herbaceous plants (such as Arabidopsis and flax), as well as for in situ quantification of cell wall substructural regions (cell corners, intercellular layers, secondary walls) based on Safranin O ratiometric fluorescence .
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Cat. No.: HY-P991744

Target:  

CXCR

Research Areas:  

Cancer

Anti-Mouse CXCR4 Antibody is a monoclonal antibody that specifically recognizes murine CXCR4 (C-X-C chemokine receptor 4), also known as fusin or CD184. CXCR4 is a seven-transmembrane G protein–coupled receptor whose principal endogenous ligand is CXCL12 (stromal cell–derived factor-1α, SDF-1α) and is widely expressed in hematopoietic cells, endothelial cells, neurons, as well as embryonic and adult stem cells. The CXCR4–CXCL12 signaling axis activates multiple downstream pathways, including ERK1/2, Ras, p38 MAPK, PLC/MAPK, and SAPK/JNK, thereby regulating cell survival, proliferation, migration, and stemness maintenance. Aberrant overexpression of CXCR4 is closely associated with poor prognosis and metastasis in various cancers, with CXCR4-positive tumor cells preferentially home to CXCL12-rich tissues such as the liver, bone marrow, lung, and lymph nodes. Accordingly, CXCR4 and its CXCL12-related antagonists emerge as attractive targets for experimental anticancer therapy. Anti-Mouse CXCR4 Antibody is generated using a cell-based immunization and screening strategy and exhibits high affinity for both endogenous and exogenous murine CXCR4. Anti-Mouse CXCR4 Antibody can be used for thestudy of chronic lymphocytic leukemia and multiple myeloma .
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Cat. No.: HY-L039
3,231 compounds

Techniques for reprogramming somatic cells create new opportunities for drug screening, disease modeling, artificial organ development, and cell therapy. The development of reprogramming techniques has grown exponentially since Yamanaka reprogrammed somatic cells to become induced pluripotent stem cells (iPSCs) using four transcription factors, OCT4, SOX2, KLF4, and c-MYC in 2006. Despite the development of efficient reprogramming methods, most methods are inappropriate for clinical applications because they carry the risk of integrating exogenous genetic factors or use oncogenes. Alternative approaches, such as those based on miRNA, non-viral genes, non-integrative vectors, and small molecules, have been studied as possible solutions to the problems. Among these alternatives, small molecules are attractive options for clinical applications. Reprogramming using small molecules is inexpensive and easy to control in a concentration- and time-dependent manner. It offers a high level of cell permeability, ease of synthesis and standardization, and it is appropriate for mass-producing cells.

MCE Reprogramming Compound Library contains a unique collection of 3,231 compounds that act on reprogramming signaling pathways. These compounds are potential stimulators for reprogramming. This library is a useful tool for researching reprogramming and regenerative medicine.

Cat. No.: HY-L228
146 compounds

Lipids are important energy storage substances in the human body. They are involved in the regulation of cell structure and function, as well as signaling pathways and gene expression. Abnormal lipid levels in tissues or their dysregulation can lead to various diseases. These include obesity, type 2 diabetes, non-alcoholic fatty liver disease, neurodegenerative diseases, infections, and cancer. Therefore, maintaining normal levels of lipid metabolism is critical to overall health.

One of the key features of cancer is aberrant lipid metabolism. This includes alterations in lipid uptake, lipid desaturation, neolipogenesis, lipid droplets, and fatty acid oxidation in cancer cells. These changes all contribute to cellular survival in an ever-changing microenvironment. They do this by modulating feed-forward oncogenic signals and key oncogenic functions. Additionally, they affect oxidative stress, other types of stress, immune responses, and intercellular communication. Alterations in lipid metabolism have a strong impact on the properties of cancer stem cells. This includes aspects such as self-renewal, differentiation, invasion, metastasis, drug sensitivity, and resistance. Furthermore, these alterations also modulate T cell responses.

MCE can offer 146 metabolites of lipid metabolism pathways, which can be used for drug screening in cancer, immune-based diseases, metabolic diseases, and other diseases.