Development of alkaloid derivatives to probe novel α4β2 nicotinic acetylcholine receptor (nAChR) binding sites
Abstract
Nicotinic acetylcholine receptors (nAChRs) are a complex class of
ligand gated ion channels consisting of multiple subtypes with
different stoichiometries. Of these, the two most commonly found
in the brain are the α7 and α4β2 nAChRs. The binding site of
agonists and competitive antagonists at nAChRs is well
established. However, the binding site of many allosteric
modulators remains unknown. Additionally, despite their
importance in brain function, the role of specific subtypes and
stoichiometries is largely unknown. This thesis deals with the
synthesis of alkaloid derivatives that can be used to establish
the binding sites of allosteric modulators and study the role of
specific subtypes and stoichiometries in the brain. Such
information can be used to develop better drugs and drug targets
for the treatment of neurological diseases.
Galanthamine and codeine are reported to be positive allosteric
modulators at nAChRs. In order to establish their binding site,
thiol reactive analogues of galanthamine, codeine and the
structurally similar alkaloid, morphine, were synthesised for use
as probes in covalent trapping experiments. The α,β-unsaturated
ketone derivatives of each alkaloid; narwedine, codeinone and
morphinone were synthesised along with the codeine mustard and a
protected derivative of the benzyl chloride analogue of codeine.
While the chlorinated derivatives were too unstable for use as
probes, the α,β-unsaturated ketone derivatives were stable in
aqueous solution and their reactivity towards thiols was assessed
by monitoring their reaction with a cysteine derivative. All of
the α,β-unsaturated ketone derivatives displayed sufficient
reactivity for use as thiol reactive probes.
Methyllycaconitine (MLA) is an antagonist at nAChRs that is known
to bind at the α7–α7 interface of α7 nAChRs and at the
α4–α4 and α4–β2 interfaces of α4β2 nAChRs. Small
bicyclic ester analogues of MLA were synthesised with functional
groups targeting key residues that are unique to the binding
sites at the α4–α4 and α4–β2 interfaces of α4β2 nAChRs.
Esters with the pyridine moiety were synthesised to target an
aspartic acid residue in the α4–β2 binding site via salt
bridge interactions. Esters with the acetamide moiety were
synthesised to target a tryptophan residue in the α4–α4
binding site via hydrogen bonding interactions. Preliminary
screening of the esters with both moieties for inhibition at α7
and α4β2 nAChRs revealed them to be inhibitors at α4β2
nAChRs, particularly (α4)3(β2)2 nAChRs which contain the
α4–α4 binding site.
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