Recombinant Mouse TMEM87A Protein, N-His

Reference: YMN44301
Product nameRecombinant Mouse TMEM87A Protein, N-His
Origin speciesMouse
Expression systemEukaryotic expression
Molecular weight25.04 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 TypePhe26-Glu226
Aliases /Synonymstransmembrane protein 87A isoform X1, Tmem87a
ReferenceYMN44301
NoteFor research use only.

Description of Recombinant Mouse TMEM87A Protein, N-His

Introduction

The Recombinant Mouse TMEM87A Protein, also known as Transmembrane Protein 87A, is a highly conserved protein found in mammals. This protein plays a crucial role in various cellular processes, making it an important target for scientific research and potential therapeutic applications. In this article, we will provide a detailed description of the structure, activity, and potential applications of this recombinant protein.

Structure of Recombinant Mouse TMEM87A Protein

The Recombinant Mouse TMEM87A Protein is a transmembrane protein that is composed of 358 amino acids. It has a predicted molecular weight of approximately 40 kDa and is highly expressed in various tissues, including the brain, heart, and liver.

The protein has a single transmembrane domain, with a large extracellular domain and a short intracellular domain. The extracellular domain contains several conserved regions, including a cysteine-rich domain and a leucine-rich repeat domain, which are important for protein-protein interactions and signal transduction.

Activity of Recombinant Mouse TMEM87A Protein

The Recombinant Mouse TMEM87A Protein has been shown to have diverse functions in different cellular processes. It has been reported to play a role in cell adhesion, cell migration, and cell proliferation. Additionally, it has been implicated in the regulation of immune responses and the development of various diseases.

One study showed that the TMEM87A protein is involved in the regulation of cell adhesion and migration through its interaction with other proteins, such as integrins and cadherins. This interaction is important for maintaining the integrity of cell-cell and cell-matrix interactions, which are crucial for proper tissue development and function.

Furthermore, the TMEM87A protein has been found to be highly expressed in immune cells, such as T cells and B cells, and has been shown to play a role in the regulation of immune responses. It has been reported to modulate T cell activation and cytokine production, suggesting its potential involvement in autoimmune diseases and inflammatory disorders.

Applications of Recombinant Mouse TMEM87A Protein

The Recombinant Mouse TMEM87A Protein has potential applications in both basic research and therapeutic development. Its role in cell adhesion and migration makes it a valuable tool for studying cellular processes, such as tissue development and wound healing.

Moreover, the TMEM87A protein has been identified as a potential therapeutic target for various diseases. For instance, it has been found to be overexpressed in certain types of cancer, including breast cancer and glioblastoma, and has been associated with tumor growth and metastasis. Therefore, targeting the TMEM87A protein may have potential in cancer treatment.

In addition, the TMEM87A protein has been linked to autoimmune diseases, such as rheumatoid arthritis and multiple sclerosis, suggesting its potential as a therapeutic target for these conditions. It has also been reported to be involved in the development of cardiovascular diseases, making it a potential target for cardiovascular therapies.

Conclusion

The Recombinant Mouse TMEM87A Protein is a highly conserved transmembrane protein with diverse functions in various cellular processes. Its structure and activity make it a valuable target for scientific research and potential therapeutic applications. Further studies on this protein may lead to a better understanding of its role in disease development and potential treatments.

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