Recombinant Human CBX5 Protein, N-His-SUMO

Reference: YHE45601
Product nameRecombinant Human CBX5 Protein, N-His-SUMO
Origin speciesHuman
Expression systemEukaryotic expression
Molecular weight21.73 kDa
BufferLyophilized from a solution in PBS pH 7.4, 0.02% NLS, 1mM EDTA, 4% Trehalose, 1% Mannitol.
FormLiquid
Delivery conditionDry Ice
Delivery lead time in business days3-5 days if in stock; 3-5 weeks if production needed
Storage condition4°C for short term (1 week), -20°C or -80°C for long term (avoid freezing/thawing cycles; addition of 20-40% glycerol improves cryoprotection)
BrandAntibodySystem
Host speciesEscherichia coli (E.coli)
Fragment TypeGly2-Lys80
Aliases /SynonymsHeterochromatin protein 1 homolog alpha, Chromobox protein homolog 5, HP1A, Antigen p25, HP1 alpha, CBX5
ReferenceYHE45601
NoteFor research use only.

Description of Recombinant Human CBX5 Protein, N-His-SUMO

Overview

Recombinant Human CBX5 Protein, also known as Chromobox protein homolog 5, is a member of the chromobox (CBX) family of proteins. It is a highly conserved protein that plays a crucial role in epigenetic regulation and gene expression. This protein is expressed in various tissues and has been found to be involved in a wide range of cellular processes, including cell proliferation, differentiation, and apoptosis. In this article, we will explore the structure, activity, and applications of Recombinant Human CBX5 Protein.

Structure of Recombinant Human CBX5 Protein

Recombinant Human CBX5 Protein is a 170 amino acid protein with a molecular weight of approximately 19 kDa. It contains a chromodomain, a chromobox (CBX) domain, and a nuclear localization signal (NLS). The chromodomain is responsible for binding to histone proteins, while the CBX domain is involved in protein-protein interactions. The NLS allows the protein to enter the nucleus and bind to DNA.

Activity of Recombinant Human CBX5 Protein

The main activity of Recombinant Human CBX5 Protein is its ability to bind to histone proteins and regulate gene expression. It specifically binds to histone H3 trimethylated at lysine 9 (H3K9me3), which is a mark of heterochromatin. This binding results in the compaction of chromatin and silencing of gene expression. Recombinant Human CBX5 Protein has also been found to interact with other proteins involved in epigenetic regulation, such as DNA methyltransferases and histone deacetylases.

Applications of Recombinant Human CBX5 Protein

1. Epigenetic Research: Recombinant Human CBX5 Protein is a valuable tool for studying epigenetic mechanisms. Its ability to bind to specific histone modifications allows researchers to investigate the role of these modifications in gene regulation and cellular processes.

2. Cancer Research: Dysregulation of CBX5 expression has been observed in various types of cancer, making it a potential target for cancer therapies. Recombinant Human CBX5 Protein can be used to study its role in cancer development and as a potential therapeutic target.

3. Drug Discovery: Recombinant Human CBX5 Protein has been used in drug screening assays to identify compounds that can modulate its activity. This can lead to the development of novel drugs for various diseases, including cancer and neurodegenerative disorders.

4. Diagnostic Tool: CBX5 has been shown to be overexpressed in certain types of cancer, making it a potential biomarker for early detection and diagnosis. Recombinant Human CBX5 Protein can be used in diagnostic assays to measure its levels in patient samples.

5. Therapeutic Agent: Recombinant Human CBX5 Protein has been investigated as a potential therapeutic agent for diseases such as cancer and viral infections. Its ability to regulate gene expression and interact with other epigenetic regulators makes it a promising candidate for future therapies.

Conclusion

In conclusion, Recombinant Human CBX5 Protein is a highly versatile protein with crucial roles in epigenetic regulation and gene expression. Its structure, activity, and applications make it a valuable tool for various fields of research and potential therapeutic applications. Further studies on this protein may lead to a better understanding of its functions and potential for the development of novel treatments for various diseases.

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