κ-Bungarotoxin (kappa-bungarotoxin) is a neurotoxin that is part of the bungarotoxin family. The neurotoxin can be found in the venom of the many-banded krait (Bungarus multicinctus). This snake species can be found in China, Myanmar, Laos, North Vietnam and Thailand. The toxin attacks the neuronal nicotinic acetylcholine receptors, inhibiting neurotransmission. Even though a snake bite of this species is rare, they do have a case-fatality range from 7% to 50%. Death can occur between 6 and 30 hours after a Bungarus multicinctus snakebite.
History The neurotoxin was reported in 1983 when researchers studied the snake venom for their effects on neuromuscular transmission. Since then, it has contributed to the knowledge about synaptic transmission, cholinergic synapses, and nicotinic acetylcholine receptors (nAChRs). κ-Bungarotoxin is still widely used in research due to its specificity to various nAChRs. The toxin got the kappa in its name as reference to the Latin word kiliaris, which means "related to the eye", from which the ciliary ganglion got its name. Two toxins, named "toxin F" and "bungarotoxin 2.1" were identified by protein sequencing the same way as κ-bungarotoxin.
Chemical infobox
Structure and reactivity κ-Bungarotoxin has a single polypeptide chain consisting of 66 amino acids. The overall weight of this chain is 7313 DA. Two single polypeptide chains can arrange together into a dimer. The subunit of the dimer consists of three main chain loops. These loops have a rotation of 178.6 degrees. Overall, κ-bungarotoxin has ten beta strands. This forms a six stranded antiparallel beta sheet configuration[8]. This is formed by three out of the five beta strands of each subunit of the dimer. Arg 34 is at the top of the central loop for each subunit. The outer strand of loop III is involved in an antiparallel arrangement. The κ-bungarotoxin dimer can make disulfide bonds, hydrogen bonds and van der Waals connections.
Hydrogen bonds: six main chain hydrogen bonds and three side chain hydrogen bonds can be made Van Der Waals interactions: Phe 49 and Leu 57 can form Van Der Waals interactions across the dimer Disulfide bonds: the polypeptide chain has 10 cysteine residues that can form five disulfide bonds The toxin shows high affinity for the nicotinic acetylcholine receptor (nAChRs) in the postsynaptic membrane, mostly the ones containing the α3 with an IC50 smaller than 100 nM. This means blocking nicotinic transmission at very low concentrations. Loop II is most important for binding the nAChRs. The two binding surfaces are both the N-terminal extracellular regions of the receptor subunit. These are the 51-70 and 183-201 residues. The most important is Arg-34 at position 36 for binding the α3 receptors. However, κ-bungarotoxin has low affinity for neuromuscular receptors.
Available forms κ-Bungarotoxin naturally occurs in Bungarus multicinctus venom glands[11]. The polypeptide consists of 66 amino acids and is cross-linked by five disulfide bonds. This is similar to LS-III, a venom purified from Laticauda semifasciata[12]. κ-Bungarotoxin can form heterodimers, thereby creating κ-2-Bungarotoxin and κ-3-Bungarotoxin. These differences are also observed globally. Though both κ-2- and κ-3-bungarotoxin are derived from Bungarus multicinctus venom, these are prevalent in the province of Guangdong, China, whereas κ-bungarotoxin is found in the Taiwanese B. multicinctus. These forms might have an evolutionary advantage in each specific region. Another form of κ-bungarotoxin is the α-bungarotoxin. κ-Bungarotoxin exhibits a 47% structural homology to α-bungarotoxin, but has an even shorter COOH-terminal than LS-III. α-Bungarotoxin also consists of the amino acid tryptanophyl, which is not present in κ-bungarotoxin. α-Bungarotoxin binds with a 200 times stronger affinity to nicotinic receptors than κ-bungarotoxin. Lastly, β-bungarotoxin also resembles the bungarotoxin family. β-Bungarotoxin is a potent inhibitor of the transport system for choline on the presynaptic terminal. It differs in the fact that β-bungarotoxin does not bind to a receptor, but binds enzymatically. β-Bungarotoxin will bind to voltage-gated potassium channels, after which phospholipase A2-mediated destruction of membrane phospholipids occurs in the nerves.
Synthesis There are several ways of synthesizing κ-bungarotoxin:
κ-Bungarotoxin can be extracted from the Bungarus multicinctus venom glands. Upon extraction, the κ-bungarotoxin needs to be isolated and purified for further use. Another way to yield κ-bungarotoxin is by chemically synthesizing the gene which codes for the toxin. Transplanting this gene into Escherichia coli does not result in a stable product. However, after fusing the toxin with rat intestinal fatty acids, the fusion proteins differed only in cleavage sites. Hereafter, the κ-bungarotoxin could be isolated and purified. Further research discovered that an active form of yeast, Pichia pastoris, was able to make biologically active Kappa-Bungarotoxin. This process does not require additional manipulation of genes or proteins. Furthermore, the produced quantity is five times higher than that of E. coli produced κ-bungarotoxin.
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