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Chan, I. X. R.

Publications and source records attributed to Chan, I. X. R..

2 recordsLinked to original sources

Biochemical characterisation of fungal bioluminescence enzymes reveals substrate inhibition and secondary turnover of 3-hydroxyhispidin by H3H

The fungal bioluminescence pathway enables autonomous light production from caffeic acid and has emerged as a versatile platform for bioimaging and synthetic biology. However, biochemical characterisation of its core enzymes remains limited. Here, we establish recombinant purification and quantitative in vitro characterisation of fungal luciferase (Luz) and hispidin-3-hydroxylase (H3H) homologues from Neonothopanus nambi and Mycena chlorophos. Complementary luminescence and mass spectrometry-based assays revealed pronounced substrate inhibition of H3H by hispidin, conserved across both homologues. Direct monitoring of substrate turnover further revealed an unexpected secondary H3H-catalysed conversion of 3-hydroxyhispidin that remained dependent on NADPH and FAD. NMR, isotope labelling and product characterisation support an additional oxidative transformation followed by formation of multiple downstream products, including caffeic acid, thereby reconnecting secondary turnover with an upstream intermediate of the pathway. H3H nevertheless retained a strong kinetic preference for hispidin over 3-hydroxyhispidin. Together, these findings reveal previously unrecognised catalytic complexity within the fungal bioluminescence pathway and provide a biochemical framework for understanding and engineering pathway flux.

biochemistry↗

MCM10 targets CMG dimers via a conserved mechanism for synchronized helicase activation

Activation of the CMG (CDC45-MCM-GINS) helicase by MCM10 is a central unresolved step in DNA replication. DNA is melted within a dimeric CMG complex and one strand is expelled from each topologically closed MCM ring. How MCM10 drives this process is unclear owing to a lack of structural information. Here, by determining structures of yeast CMG-Mcm10 complexes, and of human CMG-Pol {varepsilon} dimers assembled by DONSON and bound to MCM10 and the helicase activator RECQL4, we reveal a conserved mechanism of CMG helicase activation in eukaryotes. MCM10 targets CMG dimers through highly conserved and species-specific interactions, that in human also involve RECQL4. Our data indicate this arrangement allows MCM10 to stimulate DNA unwinding by CMG and to utilise the associated conformational changes to drive single-stranded DNA ejection between MCM2 and MCM5. This mechanism provides an explanation for synchronized activation of two CMG helicases at origins of bidirectional replication.

molecular biology↗