GSK101

99%

  • Product Code: 62636
  CAS:    942206-85-1
Molecular Weight: 655.61 g./mol Molecular Formula: C₂₈H₃₂Cl₂N₄O₆S₂
EC Number: MDL Number: MFCD12912413
Melting Point: Boiling Point:
Density: Storage Condition: -20℃
Product Description: GSK101 is primarily utilized in scientific research to study the TRPV4 ion channel, which plays a critical role in various physiological processes. It acts as a potent and selective agonist for TRPV4, enabling researchers to investigate the channel's involvement in mechanosensation, osmoregulation, and pain signaling. This compound is particularly valuable in understanding the mechanisms underlying conditions like edema, inflammation, and neurodegenerative diseases. Additionally, GSK101 is used in pharmacological studies to explore potential therapeutic targets for diseases linked to TRPV4 dysfunction, such as osteoarthritis and pulmonary disorders. Its application in experimental models helps uncover insights into cellular responses to mechanical and osmotic stress, contributing to advancements in drug development and biomedical research.
Product Specification:
Test Specification
APPEARANCE white solid
PURITY 98.5-100
Infrared spectrum Conforms to Structure
NMR Conforms to Structure
Sizes / Availability / Pricing:
Size (g) Availability Price Quantity
0.001 10-20 days £83.00
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-
0.005 10-20 days £176.41
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GSK101
GSK101 is primarily utilized in scientific research to study the TRPV4 ion channel, which plays a critical role in various physiological processes. It acts as a potent and selective agonist for TRPV4, enabling researchers to investigate the channel's involvement in mechanosensation, osmoregulation, and pain signaling. This compound is particularly valuable in understanding the mechanisms underlying conditions like edema, inflammation, and neurodegenerative diseases. Additionally, GSK101 is used in pharmacological studies to explore potential therapeutic targets for diseases linked to TRPV4 dysfunction, such as osteoarthritis and pulmonary disorders. Its application in experimental models helps uncover insights into cellular responses to mechanical and osmotic stress, contributing to advancements in drug development and biomedical research.
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