Synthesis of Quinine‐Inspired Antimalarials by Ni‐Catalysed Cross Electrophile Coupling

Author:

Lawer Aggie1,Player Finlay P.1ORCID,Avery Vicky M.23,Foley Daniel J.14ORCID

Affiliation:

1. School of Physical and Chemical Sciences University of Canterbury Christchurch 8041 New Zealand

2. Discovery Biology Centre for Cellular Phenomics Griffith University Nathan QLD 4111 Australia

3. School of Environment and Science Griffith University Nathan QLD 4111 Australia

4. Biomolecular Interaction Centre University of Canterbury Christchurch 8041 New Zealand

Abstract

AbstractWe describe the efficient synthesis of novel dehydroxyquinines by arylation of quincorine bromide using Ni‐catalysed cross electrophile coupling. The method demonstrates robust compatibility with (hetero)aryl bromides bearing diverse functional groups. Oxidation at C‐9 of the dehydroxyquinines expediently provided quinine‐inspired pseudo‐natural products (‘quinalogs’). Investigation of the compound collection against Plasmodium falciparum revealed a new insight into the structure activity relationship of quinine. Analogs bearing specifically functionalised pyridines, in place of the 6‐methoxyquinoline ring of quinine, retained activity at the same order of magnitude, albeit not exceeding the activity of the natural product. This synthetic strategy conveniently enables iteration of the aromatic component of quinine for the first time, and holds promise for the development of effective new antimalarials.

Funder

Biomolecular Interaction Centre, University of Canterbury

Royal Society of Chemistry

Publisher

Wiley

Reference72 articles.

1. W. H. Organization Malaria https://www.who.int/news-room/fact-sheets/detail/malaria (accessed 4 December 2023).

2.  

3. Quinine, an old anti-malarial drug in a modern world: role in the treatment of malaria

4. The past, present and future of anti-malarial medicines

5. W. H. Organization WHO Model List of Essential Medicines – 22nd list 2021 https://www.who.int/publications/i/item/WHO-MHP-HPS-EML-2021.02 (accessed 3 December 2023).

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