MRS2179 ammonium salt

98%

  • Product Code: 108949
  CAS:    228264-19-5
Molecular Weight: 425.228502 g./mol Molecular Formula: C₁₁H₁₇N₅O₉P₂XNH₃
EC Number: MDL Number:
Melting Point: Boiling Point:
Density: Storage Condition: -20°C, airtight, dry
Product Description: MRS2179 ammonium salt is primarily used in research studies focused on understanding the role of purinergic receptors, particularly the P2Y1 receptor, in various physiological and pathological processes. It acts as a selective antagonist for the P2Y1 receptor, making it a valuable tool in investigating the receptor's function in platelet aggregation, cardiovascular diseases, and neurotransmission. Researchers utilize it to explore its potential therapeutic applications in conditions like thrombosis, where inhibiting platelet activation could be beneficial. Additionally, it is employed in studies examining its effects on smooth muscle contraction, neuronal signaling, and inflammation, providing insights into its broader implications in cellular communication and disease mechanisms.
Product Specification:
Test Specification
Appearance Powder
Purity (%) 97.5-100
Infrared Spectrum Conforms To Structure
NMR Conforms To Structure
Sizes / Availability / Pricing:
Size (g) Availability Price Quantity
0.001 10-20 days ฿12,800.00
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-
0.005 10-20 days ฿36,000.00
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-
MRS2179 ammonium salt
MRS2179 ammonium salt is primarily used in research studies focused on understanding the role of purinergic receptors, particularly the P2Y1 receptor, in various physiological and pathological processes. It acts as a selective antagonist for the P2Y1 receptor, making it a valuable tool in investigating the receptor's function in platelet aggregation, cardiovascular diseases, and neurotransmission. Researchers utilize it to explore its potential therapeutic applications in conditions like thrombosis, where inhibiting platelet activation could be beneficial. Additionally, it is employed in studies examining its effects on smooth muscle contraction, neuronal signaling, and inflammation, providing insights into its broader implications in cellular communication and disease mechanisms.
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