Human protocadherin-10 (PCDH10) Stable Cell Line

Catalog Number:
CL-PCDH10-01
Price: $2,999.00
Detailed Description

CL-PCDH10-01

Name

Human Protocadherin-10 (PCDH10) Stable Cell Line

Description

This HEK293 stable cell line has been engineered to express recombinant human PCDH10 (GenBank Accession No. NP_116586.1), which is localized to the cell surface. Functional validation was performed using Western Equine Encephalitis Pseudovirus, confirming receptor activity and suitability for virus-host interaction studies. 

Characterizations

High level expression;

Culture medium: DMEM+10%FBS+1X P/S + 1 ug/ml puromycin

Size

 1 mL (frozen cells, 2 x 106 cells before freezing)

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About Human Protocadherin 10 (PCDH10) Stable Cell Line

Protocadherin 10 (PCDH10) is a member of the protocadherin subfamily within the cadherin superfamily of calcium-dependent cell adhesion molecules. PCDH10 is predominantly expressed in the nervous system and plays important roles in cell-cell adhesion, neuronal development, axon guidance, synapse formation, and tissue organization. Through its extracellular cadherin domains, PCDH10 mediates specific cell recognition and intercellular interactions that contribute to proper neural circuit formation and cellular communication. In addition to its developmental functions, PCDH10 has been implicated in the regulation of cell migration, proliferation, apoptosis, and tumor suppression.

PCDH10 has attracted considerable attention in cancer biology because its expression is frequently downregulated through promoter methylation in multiple malignancies, including gastric cancer, colorectal cancer, hepatocellular carcinoma, nasopharyngeal carcinoma, and other solid tumors. Numerous studies have suggested that PCDH10 functions as a tumor suppressor by regulating signaling pathways involved in cell growth, migration, invasion, and metastasis. Consequently, PCDH10 has emerged as an important target for investigations of cancer progression, epigenetic regulation, and cell adhesion-mediated signaling.

eEnzyme's Human PCDH10 Stable Cell Line provides a reliable and reproducible cellular platform for studying PCDH10-mediated biological functions and cell adhesion mechanisms. The cell line enables investigation of receptor interactions, signaling pathways, cell-cell communication, and tumor suppressor activities associated with PCDH10 expression. Researchers can utilize this stable cell line to characterize PCDH10 function, evaluate therapeutic candidates, investigate cancer-associated signaling pathways, and support drug discovery programs targeting cell adhesion and tumor progression mechanisms.

Applications of the PCDH10 Stable Cell Line

• Cell adhesion and cell-cell interaction studies
• Cancer biology and tumor suppressor research
• Epigenetic regulation investigations
• Cell migration and invasion assays
• Neuronal development and neurobiology studies
• Signal transduction pathway analysis
• Drug discovery and therapeutic evaluation
• High-throughput screening applications

Biological Significance of PCDH10

PCDH10 is an important cell adhesion molecule that contributes to tissue organization, neuronal connectivity, and cellular communication. In the nervous system, PCDH10 regulates neuronal differentiation, axon guidance, and synaptic development, supporting the formation of functional neural networks. In cancer biology, loss or silencing of PCDH10 expression has been associated with enhanced tumor growth, invasion, metastasis, and poor clinical outcomes. The tumor-suppressive functions of PCDH10 are thought to involve regulation of cell adhesion, apoptosis, and signaling pathways that control cellular proliferation and migration. Because of its roles in both normal tissue development and disease progression, PCDH10 remains an important target for studies of neurobiology, cancer research, epigenetics, and cell signaling. The PCDH10 Stable Cell Line provides a valuable experimental tool for investigating the molecular mechanisms underlying PCDH10-mediated biological processes and therapeutic intervention strategies.

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