ISSN: 2375-3811
International Journal of Biological Sciences and Applications  
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Biosynthesis of Natural Products Containing Phosphonic Esters and Acids: Review
International Journal of Biological Sciences and Applications
Vol.2 , No. 5, Publication Date: Oct. 20, 2015, Page: 48-66
1540 Views Since October 20, 2015, 1379 Downloads Since Oct. 20, 2015
 
 
Authors
 
[1]    

Azza A. Kamel, Chemical Industries Division, National Research Centre (NRC), Elbohouth Street, Dokki, Cairo, Egypt.

 
Abstract
 

Natural products containing carbon-phosphorus bond (phosphonic esters and phosphinic acids) have found widespread use in medicine and agriculture. As such, natural products are the active components not only of most traditional medicines but also many modern medicines. Furthermore, because the structural diversity of natural products exceeds that readily achievable by chemical synthesis, and synthetic analogs can be prepared with improved potency and safety, natural products are often used as starting points for drug discovery. In fact, natural products are the inspiration for approximately one half of U.S. Food and Drug Administration (FDA)-approved drugs. Recent years have seen a renewed interest in the biochemistry and biology of these compounds with the cloning of the biosynthetic gene clusters for several family members. This article aims to assay the classification and biosynthesis of some natural products containing C-P bond. The current knowledge regarding the metabolic pathways and enzymes involved in the production of a number of natural products containing C-P bond (6-representative examples) was briefly scrutinized. These compounds including: 2-AEP, bialaphos, fosfomycin, phosphinothricin, FR900098, and phosphatidylethanolamine. The emphasis is on the recent information added to this topic. Although the author has attempted the review to be encyclopedic with respect to the topic, the article is not exhaustive.


Keywords
 

Natural products, Phosphonic Esters, Phosphinic Acids, 2-AEP, Bialaphos, Fosfomycin, Phosphinothricin, FR900098, Phosphatidylethanolamine


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