F420: Characterisation and Catalysis in Mycobacterial Enzymes
Abstract
Experimental UV-visible spectroscopy, computational quantum
chemistry and molecular dynamics (MD) simulations have been used
to characterise the deazaflavin cofactor F420 and its role in the
catalytic activity of a newly classified superfamily of
flavin/deazaflavin dependent oxidoreductases (FDORs). Two FDORs
were selected to represent the enzyme family as case studies in
the detailed investigations; Deazaflavin dependent nitroreductase
(Ddn) and Rv2074, which is a novel biliverdin reductase. The main
findings of the thesis are as follows.
The protonation/deprotonation state of the F420H2 cofactor
species was determined in the Ddn active site using experimental
UV-visible spectroscopy and computationally simulated spectra.
Ddn was found to bind F420H2 in its deprotonated state. This is
important as it implies that the subsequent protonation step
following the obligate hydride transfer requires a different
proton donor for the completion of the reaction.
Using the above results and the published crystal structure of
Ddn as a starting point, the MD simulations helped reveal the
roles the active site residues play in the catalytic mechanism of
pretomanid activation. An interesting outcome of this
investigation was the role of three non-binding tyrosine residues
that formed a hydrophobic barrier, which shielded the hydride
transfer site. Hydrophobic shielding of the hydride transfer site
by a non-binding tyrosine was also observed in the second case
study, Rv2074. As the studies presented in this thesis are the
first to use computational modelling on members of the FDOR
family, it is unclear whether other members that use F420H2 as a
cofactor also demonstrate similar hydrophobic shielding
behaviour. Nonetheless, Rv2074 and Ddn belong to different
subfamilies in the FDOR superfamily and outside of a couple of
conserved residues, they have vastly different active sites with
different residues. The conserved residues were found to be
involved in binding F420 and hydrophobic shielding. As this
feature is found to be conserved in members from different
subfamilies, it could provide new insights into the importance of
this feature in how F420 dependent reductases catalyse reactions.
Finally, high level ab initio calculations were used to determine
the reaction pathway of the pretomanid activation in Ddn, the
molecular structures of the transition states and intermediates
involved in the reaction pathway and their associated relative
energy barriers. The initial hydride transfer step was determined
to be rate limiting. After hydride transfer the hydrophobic
shield is disrupted allowing exposure of the active site to bulk
solvent so proton transfer can occur from a hydroxonium ion. The
product then undergoes a series of spontaneous intramolecular
reactions to form the final reactive nitrogen species. The
detailed characterisation of this mechanism could be utilised in
the future development of pro-drugs that would undergo similar
activation reactions.
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