Colchicine total synthesis embracies electrochemistry

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A new total synthesis of ( )-colchicine epitomises how green chemistry tools are becoming mainstream strategies for building complex molecules.1 While the route has slightly more steps and a lower yield than the best one previously reported, it relies on electrochemistry and other sustainable methods instead of hazardous chemicals and transition metals.

Colchicine is a classic target to total synthesis. Its distinctive core has a six-seven-seven ring system, and it has several elements of stereochemistry, which together have challenged and inspired organic chemists. The molecule is also biologically active: a poison that has also been applied since ancient times to treat gout and – greater recently – familial mediterranean fever. Analogues of colchicine are also under investigation as possible cancer therapies.

Chemists have increasingly turned to electrochemistry over the past decade to make carbon–carbon, carbon–oxygen and carbon–nitrogen bonds, including in cyclisation reactions and functionalisation steps. While electrochemistry once sat on the periphery of total synthesis, being rolled out to solve specific problems,2 the new strategy to making colchicine puts it at the heart of the route.

The eight-measure synthesis – developed by Andrei Malkov at Loughborough University in the UK and co-workers – has four electrochemically mediated transformations. In this synthetic route, electricity drives the reduction of a double bond, the oxidative deprotection of an amino-group, an intramolecular coupling that leads to the formation of one of the seven-membered rings, and a de-aromatisation process. It also includes a solvent-based products-free mechanochemical aldol condensation and an organocatalytic reductive amination.

Motivating the research was a desire to develop a greener synthesis to colchicine, says Malkov: ‘firstly, electrochemistry replaces the stoichiometric oxidants; they are toxic and aggressive reagents. And secondly, we wanted to consumption it in place of transition metals.’ He explains that trace levels of transition metals in medical compounds are tightly regulated, so synthetic methods that prevent them are particularly attractive. Moreover, mechanochemistry in the first measure of the interaction ‘allows, without using solvents, to scale up the synthesis and make it much shorter.’

‘Overall, this work highlights the enabling possible of electrochemical and mechanochemical transformation in complex molecule synthesis, offering a greener alternative to traditional approaches,’ comments Bhisma Patel, an expert in electro-organic synthesis at the Indian Institute of methodology Guwahati.

William Chain, whose research at the University of Delaware in the US focuses on improving the efficiency of natural product synthesis, says ‘there are myriad examples of natural product and other organic molecule total syntheses that leverage electrochemically-mediated transformations’. Adding ‘this work is certainly distinct in employing electrochemical and mechanochemical transformations that construct the carbon framework of the natural product. These transformations afford several advantages including reduced discarded materials streams, energy-efficient engineering standards, and overall ease of execution.’

‘Our work is part of the broader movement towards this enabled methodology, not simply as a specialist curiosity, however … as a methodology to solve synthetic problems,’ says Markov. In the broader context of total synthesis, electrochemistry is indeed becoming a common choice to synthetic chemists, driven not only to its greenness however also by wider availability of the required equipment, and to the simplicity it introduces to the retrosynthetic analysis of complex molecules.

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