Biocatalytic Detoxification of Paralytic Shellfish Toxins.
April L LukowskiNicholas DenommeMeagan E HinzeSherwood HallLori L IsomAlison R H NarayanPublished in: ACS chemical biology (2019)
Small molecules that bind to voltage-gated sodium channels (VGSCs) are promising leads in the treatment of numerous neurodegenerative diseases and pain. Nature is a highly skilled medicinal chemist in this regard, designing potent VGSC ligands capable of binding to and blocking the channel, thereby offering compounds of potential therapeutic interest. Paralytic shellfish toxins (PSTs), produced by cyanobacteria and marine dinoflagellates, are examples of these naturally occurring small molecule VGSC blockers that can potentially be leveraged to solve human health concerns. Unfortunately, the remarkable potency of these natural products results in equally exceptional toxicity, presenting a significant challenge for the therapeutic application of these compounds. Identifying less potent analogs and convenient methods for accessing them therefore provides an attractive approach to developing molecules with enhanced therapeutic potential. Fortunately, Nature has evolved tools to modulate the toxicity of PSTs through selective hydroxylation, sulfation, and desulfation of the core scaffold. Here, we demonstrate the function of enzymes encoded in cyanobacterial PST biosynthetic gene clusters that have evolved specifically for the sulfation of highly functionalized PSTs, the substrate scope of these enzymes, and elucidate the biosynthetic route from saxitoxin to monosulfated gonyautoxins and disulfated C-toxins. Finally, the binding affinities of the nonsulfated, monosulfated, and disulfated products of these enzymatic reactions have been evaluated for VGSC binding affinity using mouse whole brain membrane preparations to provide an assessment of relative toxicity. These data demonstrate the unique detoxification effect of sulfotransferases in PST biosynthesis, providing a potential mechanism for the development of more attractive PST-derived therapeutic analogs.
Keyphrases
- human health
- small molecule
- risk assessment
- oxidative stress
- climate change
- molecular docking
- chronic pain
- oxide nanoparticles
- electronic health record
- hydrogen peroxide
- neuropathic pain
- dna binding
- anti inflammatory
- quantum dots
- white matter
- copy number
- gene expression
- genome wide
- deep learning
- protein protein
- molecular dynamics simulations
- amino acid
- nitric oxide
- spinal cord injury
- molecularly imprinted
- liquid chromatography