For research use only
| Cat No. | ABI-TC006G |
| Product Type | Immortalized Cell Line |
| Cell Type | Endothelial Cells |
| Species | Human |
| Growth Conditions | 37 °C, 5% CO2 |
| Source Organ | Muscle |
| Disease | Normal |
| Storage | Liquid Nitrogen |
Immortalized Human Skeletal Muscle Microvascular Endothelial Cells carrying the SV40T gene via lentiviral transduction, 0.5 million cells per vial.
Immortalized Human Skeletal Muscle Microvascular Endothelial Cells are derived from human skeletal muscle and genetically modified to enable long-term proliferation while maintaining key endothelial characteristics. These cells exhibit a typical cobblestone morphology and grow adherently under standard culture conditions. The cells are positive for vWF by immunofluorescence staining, and retain functional properties including tube formation, nitric oxide production, and angiogenic responsiveness. Compared with primary cells, Immortalized human skeletal muscle microvascular endothelial cells provide enhanced stability, reproducibility, and extended lifespan, making them a reliable in vitro model for angiogenesis, vascular biology, drug screening, and microcirculation-related studies.
| Product Code | Immortalized Human Skeletal Muscle Microvascular Endothelial Cells,IHSMMEC,Immortalized HSkM-MVECs |
| Species | Human |
| Cat.No | ABI-TC006G |
| Product Category | Immortalized Cell Lines |
| Size/Quantity | 1 vial |
| Cell Type | Endothelial Cells |
| Growth Mode | Adherent |
| Shipping Info | Dry Ice |
| Growth Conditions | 37 °C, 5% CO2 |
| Source Organ | Muscle |
| Disease | Normal |
| Biosafety Level | 1 |
| Storage | Liquid Nitrogen |
| Product Type | Immortalized Cell Line |
| Immortalization Method | SV40T |
| Quality Control | All cells test negative for mycoplasma, bacteria, yeast, and fungi. |
Immortalized human skeletal muscle microvascular endothelial cells are widely used in angiogenesis and vascular biology studies, including tube formation, migration, and proliferation assays. They serve as a reliable in vitro model for microcirculation, drug screening, and endothelial signaling research, supporting investigations into vascular function, tissue engineering, and regenerative medicine.