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A kinase-cGAS cascade to synthesize a therapeutic STING activator.
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- Author(s): McIntosh, John A. (AUTHOR); Liu, Zhijian (AUTHOR); Andresen, Brian M. (AUTHOR); Marzijarani, Nastaran Salehi (AUTHOR); Moore, Jeffrey C. (AUTHOR); Marshall, Nicholas M. (AUTHOR); Borra-Garske, Margie (AUTHOR); Obligacion, Jennifer V. (AUTHOR); Fier, Patrick S. (AUTHOR); Peng, Feng (AUTHOR); Forstater, Jacob H. (AUTHOR); Winston, Matthew S. (AUTHOR); An, Chihui (AUTHOR); Chang, Wonsuk (AUTHOR); Lim, Jongwon (AUTHOR); Huffman, Mark A. (AUTHOR); Miller, Steven P. (AUTHOR); Tsay, Fuh-Rong (AUTHOR); Altman, Michael D. (AUTHOR); Lesburg, Charles A. (AUTHOR)
- Source:
Nature. Mar2022, Vol. 603 Issue 7901, p439-444. 6p. - Source:
- Additional Information
- Abstract: The introduction of molecular complexity in an atom- and step-efficient manner remains an outstanding goal in modern synthetic chemistry. Artificial biosynthetic pathways are uniquely able to address this challenge by using enzymes to carry out multiple synthetic steps simultaneously or in a one-pot sequence1–3. Conducting biosynthesis ex vivo further broadens its applicability by avoiding cross-talk with cellular metabolism and enabling the redesign of key biosynthetic pathways through the use of non-natural cofactors and synthetic reagents4,5. Here we describe the discovery and construction of an enzymatic cascade to MK-1454, a highly potent stimulator of interferon genes (STING) activator under study as an immuno-oncology therapeutic6,7 (ClinicalTrials.gov study ). From two non-natural nucleotide monothiophosphates, MK-1454 is assembled diastereoselectively in a one-pot cascade, in which two thiotriphosphate nucleotides are simultaneously generated biocatalytically, followed by coupling and cyclization catalysed by an engineered animal cyclic guanosine-adenosine synthase (cGAS). For the thiotriphosphate synthesis, three kinase enzymes were engineered to develop a non-natural cofactor recycling system in which one thiotriphosphate serves as a cofactor in its own synthesis. This study demonstrates the substantial capacity that currently exists to use biosynthetic approaches to discover and manufacture complex, non-natural molecules.Leveraging enzymatic selectivity, a single reaction stream provides a single diastereomer of the cyclic dinucleotide MK-1454, a promising immune-oncology drug candidate, without the use of protecting groups or chiral auxiliaries. [ABSTRACT FROM AUTHOR]
- Abstract: Copyright of Nature is the property of Springer Nature and its content may not be copied or emailed to multiple sites or posted to a listserv without the copyright holder's express written permission. However, users may print, download, or email articles for individual use. This abstract may be abridged. No warranty is given about the accuracy of the copy. Users should refer to the original published version of the material for the full abstract. (Copyright applies to all Abstracts.)
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