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Published on: May 2, 2019
Apratoxin A Shows Novel Pancreas-Targeting Activity through the Binding of Sec 61
Kuan-Chun Huang1, Zhihong Chen2, Yimin Jiang2
1Eisai Inc., Andover, Massachusetts. kuan-chun_huang@eisai.com.
Abstract:
Apratoxin A is a natural product with potent antiproliferative activity against many human cancer cell lines. However, we and other investigators observed that it has a narrow therapeutic window in vivo Previous mechanistic studies have suggested its involvement in the secretory pathway as well as the process of chaperone-mediated autophagy. Still the link between the biologic activities of apratoxin A and its in vivo toxicity has remained largely unknown. A better understanding of this relationship is critically important for any further development of apratoxin A as an anticancer drug. Here, we describe a detailed pathologic analysis that revealed a specific pancreas-targeting activity of apratoxin A, such that severe pancreatic atrophy was observed in apratoxin A-treated animals. Follow-up tissue distribution studies further uncovered a unique drug distribution profile for apratoxin A, showing high drug exposure in pancreas and salivary gland. It has been shown previously that apratoxin A inhibits the protein secretory pathway by preventing cotranslational translocation. However, the molecule targeted by apratoxin A in this pathway has not been well defined. By using a (3)H-labeled apratoxin A probe and specific Sec 61α/β antibodies, we identified that the Sec 61 complex is the molecular target of apratoxin A. We conclude that apratoxin A in vivo toxicity is likely caused by pancreas atrophy due to high apratoxin A exposure. Mol Cancer Ther; 15(6); 1208-16. ©2016 AACR.
Insights
Apratoxin A causes severe pancreatic atrophy in vivo, limiting its use as an anticancer drug. This toxicity is linked to high drug exposure in the pancreas, targeting the Sec 61 complex in the secretory pathway.
Area of Science:
- Pharmacology
- Toxicology
- Molecular Biology
Background:
- Apratoxin A exhibits potent antiproliferative effects against cancer cell lines but has a narrow therapeutic window in vivo.
- Previous studies suggested its involvement in the secretory pathway and chaperone-mediated autophagy, but the link to toxicity remained unclear.
Purpose of the Study:
- To elucidate the mechanism underlying Apratoxin A's in vivo toxicity.
- To identify the molecular target of Apratoxin A in the secretory pathway.
Main Methods:
- Detailed pathologic analysis of Apratoxin A-treated animals.
- Tissue distribution studies using a (3)H-labeled Apratoxin A probe.
- Immunohistochemical analysis using specific Sec 61α/β antibodies.
Main Results:
- Apratoxin A treatment led to severe pancreatic atrophy in animals.
- High drug exposure was observed in the pancreas and salivary glands.
- The Sec 61 complex was identified as the molecular target of Apratoxin A, inhibiting cotranslational translocation.
Conclusions:
- Apratoxin A's in vivo toxicity is likely due to pancreatic atrophy resulting from high drug exposure.
- Targeting the Sec 61 complex in the secretory pathway is the mechanism of toxicity.
- Understanding this toxicity mechanism is crucial for the future development of Apratoxin A as an anticancer therapeutic.
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