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Dynamic allostery drives acetyl-CoA-mediated activation of Mycobacterium tuberculosis isocitrate lyase 2

Huang, E. Y. W.; Kwai, B. X. C.; Jiao, W.; Taka, J.; Wilde, K. L.; Sethi, A.; Maher, M. J.; Bashiri, G.; Leung, I. K. H.

2025-08-03 biochemistry
10.1101/2025.08.02.651367 bioRxiv
Show abstract

Mycobacterium tuberculosis isocitrate lyase 2 (ICL2) is an allosterically regulated enzyme that enables the bacterium to survive on non-glycolytic substrates during infection. Previous studies showed that ICL2 is allosterically regulated by acetyl-CoA and its analogues but the molecular mechanism underpinning this regulation is unknown. Here, we use protein NMR, crystallography, molecular dynamics, and mutagenesis studies to show that two unique structural features of ICL2, its C-terminal domain and a unique helical substructure on its N-terminal catalytic domain, play important roles in the enzymes allostery. In particular, we found that the binding of acetyl-CoA promotes the dimerisation of the C-terminal domain and disrupts its interactions with the unique helical substructure on the N-terminal domain. This leads to conformational changes in the ICL2 enzyme that induces activation. Taken together, our findings reveal, for the first time, how the binding of acetyl-CoA, which is not an ICL2 substrate, induces ICL2 activation. By extension, the work also identifies a novel allosteric mechanism controlling M. tuberculosis metabolism that is amenable to therapeutic manipulation. Significance StatementMycobacterium tuberculosis isocitrate lyase 2 (ICL2) was previously shown to be activated by acetyl-CoA and propionyl-CoA - two central metabolites generated by the metabolism of sugars and fatty acids. However, it is not known how the binding of these metabolites leads to the activation of ICL2. Together with its isoform ICL1, ICL2 has been shown to be essential for the survival and pathogenesis of the bacterium. Understanding how this regulation occurs can help design novel treatments to target this protein and eradicate these bacteria, which cause the most deaths worldwide due to a single bacterial agent. This system also presents a fascinating model to examine allostery in proteins, with the techniques illustrated in this paper being applicable to other allosteric proteins.

Published in Communications Biology (predicted rank #11) · training set

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