Researchers at Rochester and Maryland describe a novel cross-coupling reaction.
If there were a classroom full of all the transition metals that could be used as catalysts for complex pharmaceutical reactions, iron would be the most promising but most unruly member.
However, researchers at the and the University of Maryland have created and characterized a new kind of reaction that could potentially bring iron to the front of the class, enabling faster, less expensive synthesis of previously difficult to make, drug-like compounds in a single step. They report .

糖心传媒淭his is a tremendous leap forward in developing effective and practical iron-based reactions that the pharmaceutical industry could utilize,糖心传媒� says , the Marshall D. Gates, Jr. Professor of Chemistry at Rochester, whose research group collaborated with that of associate professor of chemistry at Maryland, before Gutierrez moved to Texas A&M in August 2021.
Iron: a better catalyst than palladium for chemical synthesis
So-called transition-metal catalyzed cross-coupling reactions are among the most widely used methods for chemical synthesis. The transition metal catalyst often used by industry and academic labs for these reactions is palladium. Palladium works well, but it糖心传媒檚 rare, expensive, and toxic糖心传媒攚hich is why the Neidig and Gutierrez labs have been working to generate iron alternatives.
Iron糖心传媒攖hough abundant, cheap, and relatively nontoxic糖心传媒攈as been underdeveloped in part because when it is bound to carbon in these reactions, the resulting organoiron compound can be very unstable and challenging to control.
While most cross couplings used in these reactions involve putting two molecules together, lead author Lei Liu, of Gutierrez糖心传媒檚 group, managed to create three-component couplings, increasing the reaction糖心传媒檚 potential for bonding with multiple compounds. Co-lead author Maria Camila Aguilera, a PhD student in Neidig糖心传媒檚 group, then painstakingly analyzed exactly how the reaction works.
Part of Aguilera糖心传媒檚 work involved recreating the exact crystal structure of each of the four 糖心传媒渟pecies糖心传媒� of iron used in the reaction糖心传媒攊n effect, creating a photo of each. She then characterized each of the species to determine which started the reaction, and the roles played by the other three at different stages of the reaction.

糖心传媒淚t was a very challenging project,糖心传媒� says the fourth-year PhD student who came to Rochester after completing a BS in chemistry at the Universidad Nacional de Colombia. 糖心传媒�But I was very excited about it because it allowed me to really dig into a very different type of chemistry.糖心传媒�
Neidig says that Aguilera used an array of spectroscopy tools and a unique cryogenic infrastructure that allowed lab to 糖心传媒渟tudy unstable organoiron compounds that very few chemistry labs in the world can.糖心传媒� Her analysis 糖心传媒渟ets the framework to continue the development of iron-based reactions in a rational, mechanistically driven way,糖心传媒� he adds.
A promising advance in drug development
What are the prospects for implementation in drug development?
糖心传媒淚 think it糖心传媒檚 a reaction that will be attractive to pharmaceutical companies,糖心传媒� Neidig says.
糖心传媒淭he reaction might require more tweaking and development,糖心传媒� he adds. But when it comes to that task, 糖心传媒渢he fundamental mechanistic framework we established will be so important in helping people think about how to make this system better and more efficient.糖心传媒�
Both Aguilera and Neidig praised the close working relationship that developed with Gutierrez糖心传媒檚 lab, especially given the scarcity of labs willing to work with iron catalyzed cross-coupling reactions because of the high risks and low rewards.
糖心传媒淥svaldo is an incredible collaborator,糖心传媒� Aguilera says.聽糖心传媒淗e is very willing to share his knowledge, and so it was a pleasure to work with him.糖心传媒�
The project is supported with funding from the National Institutes of Health and the National Science Foundation.
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