Pompilidotoxins (PMTXs) are toxic substances that can only be found in the venom of several solitary wasps. This kind of wasp uses their venom to offensively capture prey and is relatively harmless to humans. This is in stark contrast to social insects that defend themselves and their colonies with their venom. The pompilidotoxin producing wasps are part of the Pompilinae subfamily which consists of fifty known genus groups of which only two groups are known to produce the toxin. Both groups produce different variants. The first notice of a pompilidotoxin variant was made by Konno et.al in 1997 after a survey was conducted of neurotoxins in solitary wasps that inhabit Japan. He purified and synthesised this toxin, now called α-pompilidotoxin from the solitary spider wasp (Anoplius samariensis). The second, closely related variant, β-pompilidotoxin, was found by Konno et.al. a year later in 1998 in another solitary wasp (Batozonellus maculifrons) In this year Konno et.al. also shed concrete light on the structure and function of these toxins. Anoplius samariensis is known to live distributed over the globe with reported cases in east-Asia, east and central Europe, and Russia. It produces the α-PMTX to act upon the nervous system of a stung victim. This way they can paralyse a wide range of spiders that will then be dragged to the wasp's nest that is located in the ground, in a cavity of a plant stem, or made from mud. The spider wasp lays its eggs on paralysed spiders so that the hatching larvae can feed on living prey. In addition to hunting spiders, Batozonellus maculifrons wasps also hunt a large variety of insects. The animals within this genus use both the α-PMTX and β-PMTX. As of date, the wasp has only been reported in China and Japan.
Structure and reactivity The structure of α-PMTX consists of 13 amino acid residues with the sequence Arg-Ile-Lys-Ile-Gly-Leu-Phe-Asp-Gln-Leu-Ser-Lys-Leu-NH2. Replacement of the lysine residue at position 12 of α-PMTX with arginine results in β-PMTX. This single amino acid difference appears to be responsible for a difference in potency, as β-PMTX appeared to be five times as potent as α-PMTX in lobster neuromuscular junctions. The location of the three basic residues at positions 1, 3 and 12 was found to be crucial for toxin action. The length of the compound also appeared to be crucial for its function. Analogues of α- and β-PMTX have been synthesized by implementing changes in the amino acid sequence to understand the structure-activity relationship (SAR) with respect to activity for human voltage-gated sodium channel 1.1 (hNaV1.1) and selectivity over other isoforms of human Na+ channels such as hNaV1.2-1.7. 3D models have suggested that β-PMTX may adopt a kinked conformation assisted by its Gly-5 residue and is further stabilised by electrostatic interaction between its negatively charged Asp-8 and positively charged residues Arg-1 and/or Lys-3. This led to the hypothesis that a β-turn-like conformation depending on Gly-5, since it is the most sterically flexible amino acid, could be an important feature of the pharmacologically active conformation. This was tested by replacing Gly-5 with other (β-)turn-favouring residues, but this change was not tolerated. By interchanging the Arg-1, Lys-3, and Asp-8 residues to see if their positions are essential for sodium channel binding or formation of the secondary structure, inactive peptides were obtained which proposes that correct positioning of these residues is critical for activity. The introduction of disulfide bonds in the kink structure to make it less flexible also led to inactive peptides as they appeared to be very sensitive to structural changes. However, a peptide where Lys-3 was replaced with a more basic Arg residue showed better activity. This was designed based on observations that some of the acidic residues in the neuronal sodium channels are important for binding and that removal of basic residue Lys-3 from α-PMTX was not tolerated, while removal of acidic residue Asp-8 was. By combining K3R (lysine-3 to arginine) and S11L (serine-11 to leucine) mutations, a higher activity could also be obtained. Lipophilic residues in other toxins that block sodium channels have been assumed to be important for binding at site 3 of neuronal sodium channels. Additionally, it was found that replacing Phe-7 of β-PMTX with more lipophilic amino non-natural amino acids such as 1-Nal and 2-Nal resulted in a boost in activity, while replacement with a polar residue led to a complete loss of activity. This suggests an essential role of the endogenous Phe-7 residue in mediating the interaction between the venom toxin and the sodium channel. Even though PMTX has no structural homology with other toxins acting on sodium channels, such as sea anemone toxins or scorpion toxins, some parts of these toxins show similar structures to interact with the receptor site of the sodium channels.
Synthesis Although Pompilidotoxins can be extracted from the venom of solitary wasps, where they are made via standard protein synthesis pathways, they can also be obtained via synthetic routes such as a stepwise solid-phase addition method using Fmoc chemistry.
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