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1.
Protein Expr Purif ; 215: 106405, 2024 Mar.
Article in English | MEDLINE | ID: mdl-37979629

ABSTRACT

α-Conotoxin ImI is a selective antagonist of alpha7 nicotinic acetylcholine receptor (α7 nAChR) that is involved in cancer development. Human alpha fetoprotein domain 3 (AFP3) is a prototype of anticancer agents. In an effort to design drugs for anticancer treatments, we fused the ImI peptide to AFP3 as a fusion protein for testing. The fusion protein (ImI-AFP3) was highly expressed in the insect Bac-to-Bac system. The purified fusion protein was found to have improved anticancer activity and synergized with the drug gefitinib to inhibit the growth and migration of A549 and NCI-H1299 lung cancer cells. Our data have demonstrated that the recombinant protein ImI-AFP3 is a promising candidate for drug development to suppress lung cancer cell growth, especially to suppress hepatoid adenocarcinoma of the lung (HAL) cell growth.


Subject(s)
Conotoxins , Lung Neoplasms , Humans , Lung Neoplasms/drug therapy , Conotoxins/chemistry , Conotoxins/metabolism , Conotoxins/pharmacology , Recombinant Proteins/genetics , Recombinant Proteins/pharmacology , Lung
2.
J Mol Evol ; 91(6): 837-853, 2023 12.
Article in English | MEDLINE | ID: mdl-37962577

ABSTRACT

Venomous marine gastropods of the family Conidae are among the most diversified predators in marine realm-in large due to their complex venoms. Besides being a valuable source of bioactive neuropeptides conotoxins, cone-snails venoms are an excellent model for molecular evolution studies, addressing origin of key innovations. However, these studies are handicapped by scarce current knowledge on the tissues involved in venom production, as it is generally assumed the sole prerogative of the venom gland (VG). The role of other secretory glands that are present in all Conus species (salivary gland, SG) or only in some species (accessory salivary gland, ASG) remains poorly understood. Here, for the first time, we carry out a detailed analysis of the VG, SG, and ASG transcriptomes in the vermivorous Conus virgo. We detect multiple transcripts clusters in both the SG and ASG, whose annotations imply venom-related functions. Despite the subsets of transcripts highly-expressed in the VG, SG, and ASG being very distinct, SG expresses an L-, and ASG-Cerm08-, and MEFRR- superfamily conotoxins, all previously considered specific for VG. We corroborate our results with the analysis of published SG and VG transcriptomes from unrelated fish-hunting C. geographus, and C. striatus, possibly fish-hunting C. rolani, and worm-hunting Conus quercinus. In spite of low expression levels of conotoxins, some other specific clusters of putative venom-related peptides are present and may be highly expressed in the SG of these species. Further functional studies are necessary to determine the role that these peptides play in envenomation. In the meantime, our results show importance of routine multi-tissue sampling both for accurate interpretation of tissue-specific venom composition in cone-snails, and for better understanding origin and evolution of venom peptides genes.


Subject(s)
Conotoxins , Conus Snail , Animals , Conus Snail/genetics , Conus Snail/metabolism , Venoms , Conotoxins/genetics , Conotoxins/metabolism , Gene Expression Profiling , Peptides/metabolism
3.
Pharmacol Res ; 191: 106747, 2023 05.
Article in English | MEDLINE | ID: mdl-37001708

ABSTRACT

The pentameric nicotinic acetylcholine receptors (nAChRs) are typically classed as muscle- or neuronal-type, however, the latter has also been reported in non-neuronal cells. Given their broad distribution, nAChRs mediate numerous physiological and pathological processes including synaptic transmission, presynaptic modulation of transmitter release, neuropathic pain, inflammation, and cancer. There are 17 different nAChR subunits and combinations of these subunits produce subtypes with diverse pharmacological properties. The expression and role of some nAChR subtypes have been extensively deciphered with the aid of knock-out models. Many nAChR subtypes expressed in heterologous systems are selectively targeted by the disulfide-rich α-conotoxins. α-Conotoxins are small peptides isolated from the venom of cone snails, and a number of them have potential pharmaceutical value.


Subject(s)
Conotoxins , Receptors, Nicotinic , Conotoxins/pharmacology , Conotoxins/chemistry , Conotoxins/metabolism , Receptors, Nicotinic/metabolism , Peptides/pharmacology , Cell Membrane/metabolism , Neurons/metabolism , Nicotinic Antagonists/pharmacology , Nicotinic Antagonists/therapeutic use
4.
Mol Pharmacol ; 102(4): 196-208, 2022 10.
Article in English | MEDLINE | ID: mdl-35944919

ABSTRACT

The analgesic α-conotoxins Vc1.1, RgIA, and PeIA attenuate nociceptive transmission via activation of G protein-coupled GABAB receptors (GABABRs) to modulate N-type calcium channels in primary afferent neurons and recombinantly coexpressed human GABABR and Cav2.2 channels in human embryonic kidney 293T cells. Here, we investigate the effects of analgesic α-conotoxins following the mutation of amino acid residues in the Venus flytrap (VFT) domains of the GABABR subunits predicted through computational peptide docking and molecular dynamics simulations. Our docking calculations predicted that all three of the α-conotoxins form close contacts with VFT residues in both B1 and B2 subunits, comprising a novel GABABR ligand-binding site. The effects of baclofen and α-conotoxins on the peak Ba2+ current (IBa) amplitude were investigated on wild-type and 15 GABABR mutants individually coexpressed with human Cav2.2 channels. Mutations at the interface of the VFT domains of both GABABR subunits attenuated baclofen-sensitive IBa inhibition by the analgesic α-conotoxins. In contrast, mutations located outside the putative peptide-binding site (D380A and R98A) did not. The key GABABR residues involved in interactions with the α-conotoxins are K168 and R207 on the B2 subunit and S130, S153, R162, E200, F227, and E253 on the B1 subunit. The double mutant, S130A + S153A, abolished inhibition by both baclofen and the α-conotoxins. Depolarization-activated IBa mediated by both wild-type and all GABABR mutants were inhibited by the selective GABABR antagonist CGP 55845. This study identifies specific residues of GABABR involved in the binding of the analgesic α-conotoxins to the VFT domains of the GABABR. SIGNIFICANCE STATEMENT: This study defines the binding site of the analgesic α-conotoxins Vc1.1, RgIA, and PeIA on the human GABAB receptor to activate Gi/o proteins and inhibit Cav2.2 channels. Computational docking and molecular dynamics simulations of GABABR identified amino acids of the Venus flytrap (VFT) domains with which the α-conotoxins interact. GABABR alanine mutants attenuated baclofen-sensitive Cav2.2 inhibition by the α-conotoxins. We identify an allosteric binding site at the interface of the VFT domains of the GABABR subunits for the analgesic α-conotoxins.


Subject(s)
Conotoxins , Receptors, GABA-B , Alanine , Amino Acids , Analgesics/chemistry , Analgesics/pharmacology , Baclofen/pharmacology , Binding Sites , Calcium Channel Blockers/pharmacology , Calcium Channels, N-Type/genetics , Calcium Channels, N-Type/metabolism , Conotoxins/chemistry , Conotoxins/metabolism , Conotoxins/pharmacology , GABA Antagonists/pharmacology , GTP-Binding Proteins/metabolism , Humans , Ligands , Receptors, GABA-B/metabolism
5.
Biotechnol Appl Biochem ; 69(4): 1611-1621, 2022 Aug.
Article in English | MEDLINE | ID: mdl-34337794

ABSTRACT

Conotoxins are small cysteine-rich peptides secreted by the Conus venom glands, which act on ion channels or membrane receptors with high specificity and potency. Conotoxins are invaluable sources for neuroscience research and drug leads, but their application is hindered by the limited successes in quantitative engineering using either chemical or biotechnological approaches. Here, we explore the Pichia pastoris to express 23 selected conopeptides using a GFP-based fluorescence screen. We found that, in a protease-deficient strain PichiaPink™ Strain 4 (ade2 prb1 pep4), most of the recombinant conopeptides were expressed as two major folding variants including a compact form that was somehow resistant to reduction and high temperature. The GFP-αTxIA was the only one displaying a single band that showed a dose-dependent neurotoxicity on larvae of the insect Plutella xylostella, with a 48-h LD50 lower than 1.12 pmol mg-1 body weight. Furthermore, the recombinant αTxIA after cleavage from the fusion was able to inhibit cell proliferation of the LYCT and HEK293T cell lines with an appearance IC50 of 341 ± 8 and 235 ± 15 nM, respectively. This screening method is straightforward and easy to scale up, providing a versatile tool for further optimization of conotoxin production in the yeast cell.


Subject(s)
Conotoxins , Conus Snail , Saccharomycetales , Animals , Conotoxins/metabolism , Conotoxins/pharmacology , Conus Snail/metabolism , HEK293 Cells , Humans , Pichia/genetics , Pichia/metabolism , Saccharomycetales/metabolism
6.
Sci Rep ; 11(1): 21928, 2021 11 09.
Article in English | MEDLINE | ID: mdl-34753970

ABSTRACT

α-Conotoxins are small disulfide-rich peptides targeting nicotinic acetylcholine receptors (nAChRs) characterised by a CICII-Xm-CIII-Xn-CIV framework that invariably adopt the native globular conformations which is typically most potent. α-Conotoxins are divided into several structural subgroups based on the number of residues within the two loops braced by the disulfide bonds (m/n), with the 4/7 and 4/3 subgroups dominating. AusIA is a relatively rare α5/5-conotoxin isolated from the venom of Conus australis. Surprisingly, the ribbon isomer displayed equipotency to the wild-type globular AusIA at human α7-containing nAChR. To understand the molecular basis for equipotency, we determined the co-crystal structures of both isomers at Lymnea stagnalis acetylcholine binding protein. The additional residue in the first loop of AusIA was found to be a critical determinant of equipotency, with 11-fold and 86-fold shifts in potency in favour of globular AusIA over ribbon AusIA observed following deletion of Ala4 or Arg5, respectively. This divergence in the potency between globular AusIA and ribbon AusIA was further enhanced upon truncation of the non-conserved Val at the C-termini. Conversely, equipotency could be replicated in LsIA and TxIA [A10L] following insertion of an Ala in the first loop. These findings provide a new understanding of the role the first loop in ribbon and globular α-conotoxins can play in directing α-conotoxin nAChR pharmacology.


Subject(s)
Conotoxins/metabolism , Conus Snail/metabolism , Amino Acid Sequence , Animals , Conotoxins/chemistry , Crystallography, X-Ray , Humans , Isomerism , Protein Conformation , Receptors, Nicotinic/metabolism
7.
Sci Rep ; 11(1): 13282, 2021 06 24.
Article in English | MEDLINE | ID: mdl-34168165

ABSTRACT

The venom duct origins of predatory and defensive venoms has not been studied for hook-and-line fish hunting cone snails despite the pharmacological importance of their venoms. To better understand the biochemistry and evolution of injected predatory and defensive venoms, we compared distal, central and proximal venom duct sections across three specimens of C. striatus (Pionoconus) using proteomic and transcriptomic approaches. A total of 370 conotoxin precursors were identified from the whole venom duct transcriptome. Milked defensive venom was enriched with a potent cocktail of proximally expressed inhibitory α-, ω- and µ-conotoxins compared to milked predatory venom. In contrast, excitatory κA-conotoxins dominated both the predatory and defensive venoms despite their distal expression, suggesting this class of conotoxin can be selectively expressed from the same duct segment in response to either a predatory or defensive stimuli. Given the high abundance of κA-conotoxins in the Pionoconus clade, we hypothesise that the κA-conotoxins have evolved through adaptive evolution following their repurposing from ancestral inhibitory A superfamily conotoxins to facilitate the dietary shift to fish hunting and species radiation in this clade.


Subject(s)
Conotoxins/metabolism , Conus Snail/metabolism , Animals , Biological Evolution , Conotoxins/genetics , Conus Snail/anatomy & histology , Conus Snail/physiology , Gene Expression Profiling , Predatory Behavior , Proteomics , Sequence Alignment , Transcriptome/genetics
8.
Mar Drugs ; 19(4)2021 Apr 03.
Article in English | MEDLINE | ID: mdl-33916793

ABSTRACT

Marine cone snails are predatory gastropods characterized by a well-developed venom apparatus and highly evolved hunting strategies that utilize toxins to paralyze prey and defend against predators. The venom of each species of cone snail has a large number of pharmacologically active peptides known as conopeptides or conotoxins that are usually unique in each species. Nevertheless, venoms of only very few species have been characterized so far by transcriptomic approaches. In this study, we used transcriptome sequencing technologies and mass spectrometric methods to describe the diversity of venom components expressed by a worm-hunting species, Conus bayani. A total of 82 conotoxin sequences were retrieved from transcriptomic data that contain 54 validated conotoxin sequences clustered into 21 gene superfamilies including divergent gene family, 17 sequences clustered to 6 different conotoxin classes, and 11 conotoxins classified as unassigned gene family. Seven new conotoxin sequences showed unusual cysteine patterns. We were also able to identify 19 peptide sequences using mass spectrometry that completely overlapped with the conotoxin sequences obtained from transcriptome analysis. Importantly, herein we document the presence of 16 proteins that include five post-translational modifying enzymes obtained from transcriptomic data. Our results revealed diverse and novel conopeptides of an unexplored species that could be used extensively in biomedical research due to their therapeutic potentials.


Subject(s)
Conotoxins/genetics , Conus Snail/genetics , Enzymes/genetics , Gene Expression Profiling , Mollusk Venoms/genetics , Peptides/genetics , Proteomics , Animals , Conotoxins/metabolism , Conus Snail/enzymology , Databases, Genetic , Enzymes/metabolism , High-Throughput Nucleotide Sequencing , Mass Spectrometry , Mollusk Venoms/enzymology , Peptides/metabolism , Proteome , Transcriptome
9.
J Med Chem ; 64(9): 5620-5631, 2021 05 13.
Article in English | MEDLINE | ID: mdl-33902275

ABSTRACT

The α7 nicotinic acetylcholine receptor (nAChR) is present in the central nervous system and plays an important role in cognitive function and memory. α-Conotoxin LvIB, identified from genomic DNA of Conus lividus, its three isomers and four globular isomer analogues were synthesized and screened at a wide range of nAChR subtypes. One of the analogues, amidated [Q1G,ΔR14]LvIB, was found to be a potent blocker of rat α7 nAChRs. Importantly, it differentiates between α7 nAChRs of human (IC50: 1570 nM) and rat (IC50: 97 nM). Substitutions between rat and human α7 nAChRs at three key mutation sites revealed that no single mutant could completely change the activity profile of amidated [Q1G,ΔR14]LvIB. Rather, we found that the combined influence of Gln141, Asn184, and Lys186 determines the α7 nAChR species specificity of this peptide. This engineered α4/4 conotoxin has potential applications as a template for designing ligands to selectively block human α7 nAChRs.


Subject(s)
Conotoxins/chemistry , alpha7 Nicotinic Acetylcholine Receptor/metabolism , Amino Acid Sequence , Animals , Binding Sites , Conotoxins/chemical synthesis , Conotoxins/metabolism , Humans , Inhibitory Concentration 50 , Isomerism , Ligands , Molecular Dynamics Simulation , Mutagenesis , Oocytes/metabolism , Rats , Sequence Alignment , Species Specificity , Xenopus/metabolism , alpha7 Nicotinic Acetylcholine Receptor/antagonists & inhibitors , alpha7 Nicotinic Acetylcholine Receptor/genetics
10.
Peptides ; 139: 170525, 2021 05.
Article in English | MEDLINE | ID: mdl-33684482

ABSTRACT

Conus venoms comprise a large variety of biologically active peptides (conopeptides or conotoxins) that are employed for prey capture and other biological functions. Throughout the course of evolution of the cone snails, they have developed an envenomation scheme that necessitates a potent mixture of peptides, most of which are highly post-translationally modified, that can cause rapid paralysis of their prey. The great diversity of these peptides defines the ecological interactions and evolutionary strategy of cone snails. Such scheme has led to some pharmacological applications for pain, epilepsy, and myocardial infarction, that could be further explored to ultimately find unique peptide-based therapies. This review focuses on ∼ 60 representative post-translationally modified conopeptides that were isolated from Conus venoms. Various conopeptides reveal post-translational modifications of specific amino acids, such as hydroxylation of proline and lysine, gamma-carboxylation of glutamate, formation of N-terminal pyroglutamate, isomerization of l- to d-amino acid, bromination of tryptophan, O-glycosylation of threonine or serine, sulfation of tyrosine, and cysteinylation of cysteine, other than the more common disulfide crosslinking and C-terminal amidation. Many of the post-translationally modified peptides paved the way for the characterization, by alternative analytical methods, of other pharmacologically important peptides that are classified under 27 conopeptide families denoting pharmacological classes.


Subject(s)
Conotoxins/metabolism , Conotoxins/pharmacology , Mollusk Venoms/metabolism , Peptides/metabolism , Protein Processing, Post-Translational , Amino Acid Sequence , Animals , Mollusk Venoms/chemistry , Peptides/chemistry
11.
Immunobiology ; 226(1): 152047, 2021 01.
Article in English | MEDLINE | ID: mdl-33340828

ABSTRACT

Polymorphonuclear neutrophilic granulocytes (PMNs) are extremely important in defense of the organism against infections and in inflammatory processes including neuroinflammation and pain sensation. Different subtypes of nicotinic acetylcholine receptors (nAChRs) are involved in modulation of PMN activities. Earlier we determined expression of α2-7, α9, ß3, ß4 subunits and regulatory role of α7 and α3ß2 nAChR subtypes in functions of inflammatory PMNs. Other authors detected mRNA of α9 subunit in bone marrow neutrophils (BM-PMNs). Murine BM-PMNs coming out from the bone marrow, where they develop, to blood were characterized as mature. There was no data for α10 and for the presence of functionally active α9α10 nAChRs in BM-PMNs. Here we detected for the first time mRNA expression of the α10 nAChR subunit in BM-PMNs and confirmed the expression of mRNA for α9 nAChR. With the help of α-conotoxins RgIA and Vc1.1, highly selective antagonists of α9α10 nAChRs, we have revealed participation of α9 and/or α9α10 nAChRs in regulation of cytosolic Ca2+ concentration, cell adhesion, and in generation of reactive oxygen species (ROS). Nicotine, choline, RgIA, and Vc1.1 induced Ca2+ transients in BM-PMNs, enhanced cell adhesiveness and decreased production of ROS indicating involvement of α9, possibly co-assembled with α10, nAChRs in the BM-PMN activity for recruitment and cytotoxicity.


Subject(s)
Bone Marrow Cells/metabolism , Granulocytes/metabolism , Receptors, Nicotinic/metabolism , Animals , Calcium Signaling , Cell Adhesion , Cells, Cultured , Conotoxins/metabolism , Cytotoxicity, Immunologic , Mice , Mice, Inbred BALB C , Neurogenic Inflammation , Pain , RNA, Messenger/genetics , Reactive Oxygen Species/metabolism , Receptors, Nicotinic/genetics , Sensation
12.
J Med Chem ; 63(22): 13656-13668, 2020 11 25.
Article in English | MEDLINE | ID: mdl-33196189

ABSTRACT

The α3ß2 and α3ß4 nicotinic acetylcholine receptors (nAChRs) are widely expressed in the central and peripheral nervous systems, playing critical roles in various physiological processes and in such pathologies as addiction to nicotine and other drugs of abuse. α-Conotoxin LvIA, which we previously isolated from Conus lividus, modestly discriminates α3ß2 and α3ß4 rat nAChRs exhibiting a ∼17-fold tighter binding to the former. Here, alanine scanning resulted in two more selective analogues [N9A]LvIA and [D11A]LvIA, the former having a >2000-fold higher selectivity for α3ß2. The determined crystal structures of [N9A]LvIA and [D11A]LvIA bound to the acetylcholine-binding protein (AChBP) were followed by homologous modeling of the complexes with the α3ß2 and α3ß4 nAChRs and by receptor mutagenesis, which revealed Phe106, Ser108, Ser113, and Ser168 residues in the ß2 subunit as essential for LvIA binding. These results may be useful for the design of novel compounds of therapeutic potential targeting α3ß2 nAChRs.


Subject(s)
Conotoxins/chemistry , Conotoxins/metabolism , Receptors, Nicotinic/chemistry , Receptors, Nicotinic/metabolism , Animals , Carrier Proteins/chemistry , Carrier Proteins/metabolism , Conotoxins/pharmacology , Conus Snail , Crystallization , Female , Humans , Insecta , Nicotinic Antagonists/chemistry , Nicotinic Antagonists/metabolism , Nicotinic Antagonists/pharmacology , Protein Binding/physiology , Protein Structure, Secondary , Rats , Xenopus laevis
13.
J Med Chem ; 63(21): 12773-12785, 2020 11 12.
Article in English | MEDLINE | ID: mdl-33078946

ABSTRACT

Voltage-gated sodium (NaV) channels are pore-forming transmembrane proteins that play essential roles in excitable cells, and they are key targets for antiepileptic, antiarrhythmic, and analgesic drugs. We implemented a heterobivalent design strategy to modulate the potency, selectivity, and binding kinetics of NaV channel ligands. We conjugated µ-conotoxin KIIIA, which occludes the pore of the NaV channels, to an analogue of huwentoxin-IV, a spider-venom peptide that allosterically modulates channel gating. Bioorthogonal hydrazide and copper-assisted azide-alkyne cycloaddition conjugation chemistries were employed to generate heterobivalent ligands using polyethylene glycol linkers spanning 40-120 Å. The ligand with an 80 Å linker had the most pronounced bivalent effects, with a significantly slower dissociation rate and 4-24-fold higher potency compared to those of the monovalent peptides for the human NaV1.4 channel. This study highlights the power of heterobivalent ligand design and expands the repertoire of pharmacological probes for exploring the function of NaV channels.


Subject(s)
Ligands , NAV1.4 Voltage-Gated Sodium Channel/metabolism , NAV1.7 Voltage-Gated Sodium Channel/metabolism , Voltage-Gated Sodium Channel Blockers/chemistry , Action Potentials/drug effects , Amino Acid Sequence , Animals , Binding Sites , Conotoxins/chemistry , Conotoxins/metabolism , Cycloaddition Reaction , Humans , Inhibitory Concentration 50 , Kinetics , Molecular Docking Simulation , NAV1.4 Voltage-Gated Sodium Channel/chemistry , NAV1.7 Voltage-Gated Sodium Channel/chemistry , Patch-Clamp Techniques , Polyethylenes/chemistry , Spider Venoms/chemical synthesis , Spider Venoms/chemistry , Spider Venoms/metabolism , Spiders/metabolism , Voltage-Gated Sodium Channel Blockers/chemical synthesis , Voltage-Gated Sodium Channel Blockers/metabolism , Voltage-Gated Sodium Channel Blockers/pharmacology
14.
Mar Drugs ; 18(11)2020 Oct 26.
Article in English | MEDLINE | ID: mdl-33114777

ABSTRACT

κ-Conotoxin-PVIIA (κ-PVIIA) is a potassium-channel blocking peptide from the venom of the fish-hunting snail, Conus purpurascens, which is essential for quick prey's excitotoxic immobilization. Binding of one κ-PVIIA to Shaker K-channels occludes the K+-conduction pore without additional conformational effects. Because this 27-residue toxin is +4-charged at neutral pH, we asked if electrostatic interactions play a role in binding. With Voltage-Clamp electrophysiology, we tested how ionic strength (IS) affects κ-PVIIA blockade to Shaker. When IS varied from ~0.06 to ~0.16 M, the dissociation constant for open and closed channels increased by ~5- and ~16-fold, respectively. While the association rates decreased equally, by ~4-fold, in open and closed channels, the dissociation rates increased 4-5-fold in closed channels but was IS-insensitive in open channels. To explain this differential IS-dependency, we propose that the bound κ-PVIIA wobbles, so that in open channels the intracellular environment, via ion-conduction pore, buffers the imposed IS-changes in the toxin-channel interface. A Brønsted-Bjerrum analysis on the rates predicts that if, instead of fish, the snail preyed on organisms with seawater-like lymph ionic composition, a severely harmless toxin, with >100-fold diminished affinity, would result. Thus, considerations of the native ionic environment are essential for conotoxins evaluation as pharmacological leads.


Subject(s)
Conotoxins/metabolism , Shaker Superfamily of Potassium Channels/metabolism , Animals , Conotoxins/chemistry , Oocytes , Osmolar Concentration , Potassium Channel Blockers/pharmacology , Protein Binding , Shaker Superfamily of Potassium Channels/chemistry , Xenopus laevis
15.
Mar Drugs ; 18(9)2020 Sep 14.
Article in English | MEDLINE | ID: mdl-32937857

ABSTRACT

The venom of various Conus species is composed of a rich variety of unique bioactive peptides, commonly referred to as conotoxins (conopeptides). Most conopeptides have specific receptors or ion channels as physiologically relevant targets. In this paper, high-throughput transcriptome sequencing was performed to analyze putative conotoxin transcripts from the venom duct of a vermivorous cone snail species, Conus litteratus native to the South China Sea. A total of 128 putative conotoxins were identified, most of them belonging to 22 known superfamilies, with 43 conotoxins being regarded as belonging to new superfamilies. Notably, the M superfamily was the most abundant in conotoxins among the known superfamilies. A total of 15 known cysteine frameworks were also described. The largest proportion of cysteine frameworks were VI/VII (C-C-CC-C-C), IX (C-C-C-C-C-C) and XIV (C-C-C-C). In addition, five novel cysteine patterns were also discovered. Simple sequence repeat detection results showed that di-nucleotide was the major type of repetition, and the codon usage bias results indicated that the codon usage bias of the conotoxin genes was weak, but the M, O1, O2 superfamilies differed in codon preference. Gene cloning indicated that there was no intron in conotoxins of the B1- or J superfamily, one intron with 1273-1339 bp existed in a mature region of the F superfamily, which is different from the previously reported gene structure of conotoxins from other superfamilies. This study will enhance our understanding of conotoxin diversity, and the new conotoxins discovered in this paper will provide more potential candidates for the development of pharmacological probes and marine peptide drugs.


Subject(s)
Conotoxins/genetics , Conus Snail/genetics , Evolution, Molecular , Transcriptome , Animals , Conotoxins/metabolism , Conus Snail/metabolism , Gene Expression Profiling , Gene Expression Regulation , High-Throughput Nucleotide Sequencing , Phylogeny
16.
Mar Drugs ; 18(8)2020 Aug 12.
Article in English | MEDLINE | ID: mdl-32806654

ABSTRACT

α7 nicotinic acetylcholine receptors (nAChR) is an important nicotinic acetylcholine receptors subtype and closely associated with cognitive disorders, such as Alzheimer's and schizophrenia disease. The mutant ArIB (V11L, V16A) of α-conotoxin ArIB with 17-amino acid residues specifically targets α7 nAChR with no obvious effect on other nAChR subtypes. In the study, the synthetic gene encoding mature peptide of ArIB and mutant ArIB (V11L, V16A) carried a fusion protein Trx and 6 × His-tag was separately inserted in pET-32a (+) vector and transformed into Escherichia coli strain BL21(DE3) pLysS for expression. The expressions of Trx-ArIB-His6 and Trx-ArIB (V11L, V16A)-His6 were soluble in Escherichia coli, which were purified by Ni-NTA affinity chromatography column and cleaved by enterokinase to release rArIB and rArIB (V11L, V16A). Then, rArIB and rArIB (V11L, V16A) were purified by high-performance liquid chromatography (HPLC) and identified by matrix-assisted laser desorption ionization-time of flight mass spectrometry (MALDI-TOF MS). Bioactivity of rArIB and rArIB (V11L, V16A) was assessed by two-electrode voltage-clamp electrophysiology in Xenopus laevis oocytes expressing human nAChR subtypes. The results indicated that the yield of the fusion proteins was approximately 50 mg/L and rArIB (V11L, V16A) antagonized the α7 nAChR subtype selectively with 8-nM IC50. In summary, this study provides an efficient method to biosynthesize α-conotoxin ArIB and rArIB (V11L, V16A) in Escherichia coli, which could be economical to obtain massively bioactive disulfide-rich polypeptides at fast speed.


Subject(s)
Conotoxins/pharmacology , Escherichia coli/metabolism , Nicotinic Antagonists/pharmacology , alpha7 Nicotinic Acetylcholine Receptor/antagonists & inhibitors , Animals , Conotoxins/genetics , Conotoxins/metabolism , Dose-Response Relationship, Drug , Escherichia coli/genetics , Histidine/metabolism , Membrane Potentials , Nicotinic Antagonists/metabolism , Oligopeptides/metabolism , Oocytes , Recombinant Fusion Proteins/metabolism , Recombinant Fusion Proteins/pharmacology , Thioredoxins/metabolism , Xenopus laevis , alpha7 Nicotinic Acetylcholine Receptor/genetics , alpha7 Nicotinic Acetylcholine Receptor/metabolism
17.
Database (Oxford) ; 20202020 01 01.
Article in English | MEDLINE | ID: mdl-32754758

ABSTRACT

ConoMode is a database for complex three-dimensional (3D) structures of conopeptides binding with their target proteins. Conopeptides, a large family of peptides from the venom of marine snails of the Conus genus, have exceptionally diverse sequences, and their high specificity to block ion channels makes them crucial as drug leads and tools for physiological studies. ConoMode is a specialized archive for the collection of 3D coordinate data for the conopeptides and their binding target proteins from published literature and the Protein Data Bank. These 3D structures can be determined using experimental methods such as X-ray crystallography and electron microscopy and computational methods including docking, homology modeling and molecular dynamics simulations. The binding modes for the conopeptides determined using computational modeling must be validated based on experimental data. The 3D coordinate data from ConoMode can be searched, visualized, downloaded and uploaded. Currently, ConoMode manages 19 conopeptide sequences (from 10 Conus species), 15 protein sequences and 37 3D structures. ConoMode utilizes a modern technical framework to provide a good user experience on mobile devices with touch interaction features. Furthermore, the database is fully optimized for unstructured data and flexible data models. Database URL: http://conomode.qnlm.ac/conomode/conomode/index.


Subject(s)
Conotoxins , Conus Snail , Databases, Protein , Mollusk Venoms , Peptides , Animals , Conotoxins/chemistry , Conotoxins/genetics , Conotoxins/metabolism , Peptides/chemistry , Peptides/genetics , Peptides/metabolism , Protein Conformation , User-Computer Interface
18.
Cells ; 9(7)2020 06 30.
Article in English | MEDLINE | ID: mdl-32629888

ABSTRACT

Motor neuron degeneration and spinal cord demyelination are hallmark pathological events in Amyotrophic Lateral Sclerosis (ALS). Endogenous retrovirus-K (ERVK) expression has an established association with ALS neuropathology, with murine modeling pointing to a role for the ERVK envelope (env) gene in disease processes. Here, we describe a novel viral protein cryptically encoded within the ERVK env transcript, which resembles two distinct cysteine-rich neurotoxic proteins: conotoxin proteins found in marine snails and the Human Immunodeficiency Virus (HIV) Tat protein. Consistent with Nuclear factor-kappa B (NF-κB)-induced retrotransposon expression, the ERVK conotoxin-like protein (CTXLP) is induced by inflammatory signaling. CTXLP is found in the nucleus, impacting innate immune gene expression and NF-κB p65 activity. Using human autopsy specimens from patients with ALS, we further showcase CTXLP expression in degenerating motor cortex and spinal cord tissues, concomitant with inflammation linked pathways, including enhancement of necroptosis marker mixed lineage kinase domain-like (MLKL) protein and oligodendrocyte maturation/myelination inhibitor Nogo-A. These findings identify CTXLP as a novel ERVK protein product, which may act as an effector in ALS neuropathology.


Subject(s)
Amyotrophic Lateral Sclerosis/metabolism , Amyotrophic Lateral Sclerosis/genetics , Animals , Conotoxins/genetics , Conotoxins/metabolism , Endogenous Retroviruses/metabolism , Endogenous Retroviruses/pathogenicity , Humans , NF-kappa B/metabolism , Necroptosis/genetics , Necroptosis/physiology , Retroviridae/genetics , Retroviridae/pathogenicity
19.
Dokl Biochem Biophys ; 491(1): 89-92, 2020 Mar.
Article in English | MEDLINE | ID: mdl-32483759

ABSTRACT

Blockade of α6, α3ß2, α9α10, and α7 subtypes of nicotinic acetylcholine receptors slows tumor growth in vivo, increases cytotoxic activity of splenocytes from tumor-bearing mice, and, to some extent, reduces the viability of Ehrlich carcinoma cells in vitro. These data indicate that nicotinic acetylcholine receptors are involved in oncogenesis, affecting the survival of tumor cells, inter alia, via modulation of the antitumor immunity.


Subject(s)
Antineoplastic Agents/pharmacology , Carcinoma, Ehrlich Tumor/metabolism , Nicotinic Antagonists/pharmacology , Spleen/cytology , Animals , Antineoplastic Agents/chemistry , Carcinogenesis , Cell Proliferation , Cell Survival , Conotoxins/metabolism , Mice , Neoplasm Transplantation , Nicotinic Antagonists/chemistry , Receptors, Nicotinic/metabolism , alpha7 Nicotinic Acetylcholine Receptor/antagonists & inhibitors
20.
Biochem Pharmacol ; 181: 114124, 2020 11.
Article in English | MEDLINE | ID: mdl-32593612

ABSTRACT

The α9α10 nicotinic acetylcholine receptor (nAChR) has been characterized as an effective anti-pain target that functions through a non-opioid mechanism. However, as a pentameric ion channel comprised of two different subunits, the specific targeting of α9α10 nAChRs has proven challenging. Previously the 13-amino-acid peptide, RgIA, was shown to block α9α10 nAChRs with high potency and specificity. This peptide, characterized from the venom of the carnivorous marine snail, Conus regius, produced analgesia in several rodent models of chronic pain. Despite promising pre-clinical data in behavioral assays, the number of specific α9α10 nAChR antagonists remains small and the physiological mechanisms of analgesia remain cryptic. In this study, we implement amino-acid substitutions to definitively characterize the chemical properties of RgIA that contribute to its activity against α9α10 nAChRs. Using this mutational approach, we determined the vital role of biochemical side-chain properties and amino acids in the second loop that are amenable to substitutions to further engineer next-generation analogs for the blockade of α9α10 nAChRs.


Subject(s)
Amino Acid Substitution , Amino Acids/genetics , Conotoxins/genetics , Receptors, Nicotinic/metabolism , Amino Acid Sequence , Amino Acids/chemistry , Amino Acids/metabolism , Animals , Binding Sites/genetics , Conotoxins/metabolism , Conotoxins/pharmacology , Humans , Mollusk Venoms/chemistry , Mollusk Venoms/metabolism , Nicotinic Antagonists/metabolism , Nicotinic Antagonists/pharmacology , Oocytes/drug effects , Oocytes/metabolism , Oocytes/physiology , Protein Subunits/antagonists & inhibitors , Protein Subunits/genetics , Protein Subunits/metabolism , Rats , Receptors, Nicotinic/genetics , Sequence Homology, Amino Acid , Xenopus laevis
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