Toxicology and Pharmacology, KU Leuven, Campus Gasthuisberg O&N2, Herestraat 49, PO Box 922, 3000 Leuven, Belgium.
Department of Environmental Science, Fukuoka Women's University, Fukuoka 813-8529, Japan.
Peptides. 2017 Dec;98:43-50. doi: 10.1016/j.peptides.2016.08.008. Epub 2016 Aug 28.
Peptide toxins, such as scorpion peptides, are interesting lead compounds in the search for novel drugs. In this paper, the focus is on the scorpion peptide κ-hefutoxin 1. This peptide displays a cysteine-stabilized helix-loop-helix fold (CSα/α) and is known to be a weak K1.x inhibitor. Due to the low affinity of κ-hefutoxin 1 for these channels, it is assumed that the main target(s) of κ-hefutoxin 1 remain(s) unknown. In order to identify novel targets, electrophysiological measurements and antifungal assays were performed. The effect of κ-hefutoxin 1 was previously evaluated on a panel of 11 different voltage-gated potassium channels. Here, we extended this target screening with the oncogenic potassium channel K10.1. κ-Hefutoxin 1 was able to inhibit this channel in a dose-dependent manner (IC∼26μM). Although the affinity is rather low, this is the first peptide toxin ever described to be a K10.1 inhibitor. The structure-activity relationship of κ-hefutoxin 1 on K10.1 was investigated by testing eight κ-hefutoxin 1 variants using the two-electrode voltage clamp technique. Several important amino acid residues were identified; the functional dyad residues (Tyr and Lys), N-terminal residues (Gly and His) and the amidated C-terminal residue (Cys). Since the CSα/α fold is also found in a class of antifungal plant peptides, the α-hairpinines, we investigated the antifungal activity of κ-hefutoxin 1. κ-Hefutoxin 1 showed low activity against the plant pathogen Fusarium culmorum and no activity against three other yeast and fungal species, even at high concentrations (∼100μM).
肽毒素,如蝎子肽,是寻找新型药物的有趣先导化合物。本文重点介绍蝎子肽 κ-hefutoxin 1。这种肽显示出半胱氨酸稳定的螺旋-环-螺旋折叠(CSα/α),已知是一种弱 K1.x 抑制剂。由于 κ-hefutoxin 1 与这些通道的亲和力低,因此假设 κ-hefutoxin 1 的主要靶标仍然未知。为了鉴定新的靶标,进行了电生理测量和抗真菌测定。κ-hefutoxin 1 的作用以前在一组 11 种不同的电压门控钾通道上进行了评估。在这里,我们通过致癌性钾通道 K10.1 扩展了这个靶标筛选。κ-hefutoxin 1 能够以剂量依赖的方式抑制这种通道(IC∼26μM)。尽管亲和力相当低,但这是第一个被描述为 K10.1 抑制剂的肽毒素。通过使用双电极电压钳技术测试八种 κ-hefutoxin 1 变体,研究了 κ-hefutoxin 1 对 K10.1 的结构-活性关系。确定了几个重要的氨基酸残基;功能二联体残基(Tyr 和 Lys)、N 端残基(Gly 和 His)和酰胺化的 C 端残基(Cys)。由于 CSα/α 折叠也存在于一类抗真菌植物肽中,即α-发夹素中,我们研究了 κ-hefutoxin 1 的抗真菌活性。κ-hefutoxin 1 对植物病原体镰刀菌的活性较低,即使在高浓度(约 100μM)下,对其他三种酵母和真菌也没有活性。