PIN1 inhibitor API-1

98%

  • Product Code: 227093
  CAS:    680622-70-2
Molecular Weight: 366.30 g./mol Molecular Formula: C₁₅H₁₃F₃N₆O₂
EC Number: MDL Number:
Melting Point: 208-211ºC Boiling Point:
Density: Storage Condition: -20°C, Sealed, Dry
Product Description: PIN1 inhibitor API-1 is primarily used in cancer research due to its ability to block the activity of the peptidyl-prolyl cis/trans isomerase Pin1 enzyme. This enzyme plays a critical role in regulating cell cycle progression and is often overexpressed in various cancers, including breast, prostate, and lung cancers. By inhibiting Pin1, API-1 disrupts oncogenic signaling pathways, leading to suppression of tumor cell proliferation and induction of apoptosis. It has shown potential in enhancing the effectiveness of other anticancer agents, particularly in hormone-resistant cancers, by modulating key signaling molecules such as cyclin D1 and c-Myc. Additionally, API-1 is used as a research tool to study Pin1-dependent cellular processes, including transcription regulation and stress response. Its application supports the development of targeted therapies aimed at disrupting protein-protein interactions involved in cancer progression.
Sizes / Availability / Pricing:
Size Availability Price Quantity
1mg 10-20 days $332.35
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5mg 10-20 days $934.88
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PIN1 inhibitor API-1
PIN1 inhibitor API-1 is primarily used in cancer research due to its ability to block the activity of the peptidyl-prolyl cis/trans isomerase Pin1 enzyme. This enzyme plays a critical role in regulating cell cycle progression and is often overexpressed in various cancers, including breast, prostate, and lung cancers. By inhibiting Pin1, API-1 disrupts oncogenic signaling pathways, leading to suppression of tumor cell proliferation and induction of apoptosis. It has shown potential in enhancing the effectiveness of other anticancer agents, particularly in hormone-resistant cancers, by modulating key signaling molecules such as cyclin D1 and c-Myc. Additionally, API-1 is used as a research tool to study Pin1-dependent cellular processes, including transcription regulation and stress response. Its application supports the development of targeted therapies aimed at disrupting protein-protein interactions involved in cancer progression.
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