| Literature DB >> 29246030 |
Rui Ma1, Ravikiran Mahadevappa1, Hang Fai Kwok1.
Abstract
The 5-year relative survival rate of all types of cancer has increased significantly over the past three decades partly due to the targeted therapy. However, still there are many targeted therapy drugs could play a role only in a portion of cancer patients with specific molecular alternation. It is necessary to continue to develop new biological agents which could be used alone and/or in combination with current FDA approved drugs to treat complex cancer diseases. Venom-based drugs have been used for hundreds of years in human history. Nevertheless, the venom-origin of the anti-cancer drug do rarely appear in the pharmaceutical market; and this is due to the fact that the mechanism of action for a large number of the venom drug such as venom-based peptide is not clearly understood. In this review, we focus on discussing some identified venom-based peptides and their anti-cancer mechanisms including the blockade of cancer cell proliferation, invasion, angiogenesis, and metastasis (hallmarks of cancer) to fulfill the gap which is hindering their use in cancer therapy. Furthermore, it also highlights the importance of immunotherapy based on venom peptide. Overall, this review provides readers for further understanding the mechanism of venom peptide and elaborates on the need to explore peptide-based therapeutic strategies.Entities:
Keywords: anticancer mechanism; metastasis; signaling pathway; targeted therapy; venom
Year: 2017 PMID: 29246030 PMCID: PMC5725072 DOI: 10.18632/oncotarget.21740
Source DB: PubMed Journal: Oncotarget ISSN: 1949-2553
Figure 1Current venom-based drugs in the market used for different forms of human disease
Mechanism of action of some of the venom based drugs currently available in the market[6]
| Generic name (BRAND NAME) | Mechanism of action | Indication (Diseases) |
|---|---|---|
| Captopril (CAPOTEN®) | Angiotensin-converting enzyme inhibitor | Hypertension, Cardiac failure |
| Enalapril (VASOTEC®) | ||
| Exenatide (BYETTA®) (BYDUREON®) | Glucagon-like peptide-1 receptor agonist | Type 2 diabetes mellitus |
| Ziconotide (PRIALT®) | Cav2.2 channel antagonist | Management of severe chronic pain |
| Bivalirudin (ANGIOMAX®) | Reversible direct thrombin inhibitor | Anticoagulant in percutaneous coronary intervention |
| Lepirudin (REFLUDAN®) | Binds irreversibly to thrombin | Anticoagulation in heparin-associated thrombocytopenia; Thromboembolic disease |
| Desirudin (IPRIVASK®) | ||
| Tirofiban (AGGRASTAT®) | Prevents binding of fibrinogen, von Willebrand factor, and other adhesive ligands to GPIIb/IIIa | Acute coronary syndrome; Percutaneous coronary intervention |
| Eptifibatide (INTEGRILIN®) | ||
| Batroxobin (DEFIBRASE®) | Cleaves Aα-chain of fibrinogen | Acute cerebral infarction; unspecific angina pectoris; Sudden deafness; |
| Platelet gel (PLATELTEX-ACT®) | ||
| Hemocoagulase (REPTILASE®) | Fibrinogenase | Prophylaxis and treatment of hemorrhage in surgery |
| Fibrin sealant (VIVOSTAT®) | Cleaves Aα-chain of fibrinogen; factor X and/or prothrombin activation | Autologous fibrin sealant in surgery |
*The source is from [6].
The anticancer mechanisms of some venomous peptides and indirectly derived drugs
| Target | The major mechanisms of action | Molecular target | Drug | Drug class | Indications | Clinical phase | Reference | |
|---|---|---|---|---|---|---|---|---|
| Ion channels | The proliferation and invasion of cancer cells | Chloride (Cl-) channels: | 131I-TM601 | peptide(36aa) | Gliomas | Phase III | [ | |
| BLZ-100 | peptide(36aa) | Gliomas tumor marker for surgery | Phase I | [ | ||||
| Sodium (Na+) channels | AGAP | peptide(66aa) | Colon cancer cells, | Preclinical studies | [ | |||
| Potassium (K+) channels: | Ergtoxin | peptide | Ovarian cancer cells | Preclinical studies | [ | |||
| Transient receptor potential | SOR-C13 | peptide(13aa) | Solid tumors with overexpressing the TRPV6 | Phase I | [ | |||
| Integrins | The invasion, migration, | αvβ3, αvβ5 | Cilengitide | Peptidomimetic | 1 Glioblastoma with methylated MGMT promoter | 1 Phase III | [ | |
| α5β1 | ATN-161 | Peptidomimetic | Malignant Glioma | Phase II | [ | |||
| Five integrin receptors | GLPG0187 | Peptidomimetic | Bone metastasis in metastatic breast cancer | Phase I | [ | |||
| αvβ3, αvβ5, α5β1 | Vicrostatin | peptide(69aa) | Ovarian cancer, Gliomas | Preclinical studies | [ | |||
| G protein-coupled receptor | The metastasis of cancer cells | Gastrin-releasing peptide receptor | BAY86-7548 | peptide(14aa) | Prostate cancer imaging | Phase II/III | [ | |
| Membrane molecules | The disruption of cancer cell membrane | Sialic acid-rich glycoproteins,PS and PC,heparan sulfate | 1 MP1 | 1 peptide(14aa) | 1 Human leukemic Jurkat cells | Preclinical studies | [ | |
| Phospholipids | Hemilipin | heterodimer | HUVECs and HPAECs | Preclinical studies | [ | |||
*BLZ-100: Chlorotoxin-indocyanine green Imaging Agent; CTX: chlorotoxin; ICG: dye indocyanine green; AGAP: Analgesic-Antitumor Peptide; hERG is a gene (KCNH2) that codes for potassium channels Kv11.1; Ergtoxin is a family of toxins from the venom of the Mexican scorpion; MGMT: O6-alkylguanine DNA alkyltransferase; TRPV (“V” for vanilloid); PS: phosphatidylserine; PE: phosphatidylethanolamine; NSCLC: Non-Small Cell Lung Cancer; Hemilipin is a novel sPLA2; HUVECs: Human Umbilical Vein Endothelial Cells; HPAECs: Human Pulmonary Artery Endothelial Cells.
Figure 23D structure of venom peptides
(A and B) Amphipathic peptides melittin (PDB ID:2MLT) and mastoparan (PDB ID: 2CZP) exhibiting the increase of hydrophobicity in the alpha helix (yellow region), respectively. (C and D) Another key feature of venom peptides, disulfide bridges show in ion channel blocker chlorotoxin (PDB ID: 1CHL) and mitochondrial membrane binding peptide cardiotoxin III (PDB ID: 2CRT), respectively. (E) Jararhagin, a metalloprotease with multiple alpha helices and beta sheets and its 3D structure is modeled from SWISS-MODEL. Figures were constructed by Discovery Studio version 2016.
Figure 3Schematic representation of PLA2 action on glycerophospholipids
PLA2 enzymes catalyze the hydrolysis of the sn-2 ester bond in glycerophospholipids to produce free fatty acids and lysophospholipids.
Figure 4Chlorotoxin, Soricidin, and their related peptides
(A) The sequence alignment of Chlorotoxin, BmKCTa, GaTx1, GaTx2, and AaCtx. (B) The phylogenetic tree of Chlorotoxin, BmKCTa, GaTx1, GaTx2, and AaCtx. From an evolutionary point of view, chlorine toxins, BmKCTa and GaTx1 may be relatively closer relationship than AaCtx and GaTx2. (C) The sequence alignment of Soricidin, SOR-C27, and SOR-C13.
List of disintegrins and disintegrin-like proteins with anti-angiogenic effect
| Disintegrin | Snake species | Molecular weight | Functional class | References |
|---|---|---|---|---|
| Salmosin | 8.0 kDa | RGD | [ | |
| Albolabrin | 7.5 kDa | RGD | [ | |
| Alternagin-C | 29.0 kDa | ECD | [ | |
| Obtustatin | 4.4 kDa | KTS | [ | |
| Contortrostatin | 13.5 kDa | RGD | [ | |
| Lebein | 7.0 kDa | RGD | [ | |
| Jerdostatin | 4.0 kDa | RTS | [ | |
| Rhodostomin | 7.0 kDa | RGD | [ | |
| Saxatilin | 7.7 kDa | RGD | [ | |
| Triflavin | 7.57 kDa | RGD | [ | |
| Acurhagin-C | 1.3 kDa | ECD | [ | |
| Lebestatin | 4.4 kDa | KTS | [ |
Figure 5Molecular modeling between Integrin αvβ3 (PDB: 1JV2) and disintegrin salmosin (PDB: 1L3X) based on the crystal structure of αvβ3 complex (PDB: 1L5G)
(A) Ribbon modeling is depicting the interaction between salmosin and integrin αvβ3 receptor. Salmosin binds to the hinge created between αv and β3 subunits of integrin. Yellow-subunit αv, green-subunit β3 and red-salmosin (the ball structure represents the RGD site). (B) The integrin αvβ3 receptor surface of the RGB motif interactions are shown in the charge mode (PDB 1L5G). Figures were constructed by Discovery Studio version 2016.