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Keywords = snake venom metalloproteinase

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36 pages, 1878 KB  
Review
Targeting Key Enzymatic Snake Venom Proteins Using Repurposed Small Molecule Inhibitors: Emerging Adjuncts to Antivenom Therapy
by Nisha Reghu, S. Kiruthika, Anand Krishna Santhosh, Aparna Lakshmi Narayanan, Krishna Geetha Geetha, Noureen Sidheek, Sai Sahithi Danthuluri, Bipin Gopalakrishnan Nair and Muralidharan Vanuopadath
Int. J. Mol. Sci. 2026, 27(13), 6000; https://doi.org/10.3390/ijms27136000 - 3 Jul 2026
Viewed by 395
Abstract
Snakebite envenoming is a neglected tropical disease causing approximately 81,410–137,880 deaths globally each year and four-fold more disabilities than mortality rate. Despite the availability of antivenoms for treatment, several in vitro and in vivo preclinical studies have shown that their efficacy is limited [...] Read more.
Snakebite envenoming is a neglected tropical disease causing approximately 81,410–137,880 deaths globally each year and four-fold more disabilities than mortality rate. Despite the availability of antivenoms for treatment, several in vitro and in vivo preclinical studies have shown that their efficacy is limited by many factors including regional venom variation and poor neutralization of major venom toxins. To address these limitations, the potential of alternatives including aptamers, recombinant monoclonal antibodies, camelid antibodies, small molecule inhibitors, and natural product-based inhibitors targeting key venom proteins have been explored. Among these, small molecule inhibitors targeting key enzymatic snake venom proteins are emerging as adjuvants to antivenom treatment. Most of these small molecules are repurposed drugs with established safety, oral bioavailability, and lower cost compared to antivenoms. In this regard, this review tries to compile available information regarding the use of small molecule inhibitors to counteract envenomation with special emphasis on three major enzymatic snake venom protein families: phospholipase A2, snake venom metalloproteinases, and snake venom serine proteases. In vitro studies have shown that these small molecule inhibitors used either alone or in combination with antivenom can potentially reduce the adverse effects of venom-induced coagulopathy, neurotoxicity, tissue damage, and inflammation. However, critical gaps remain including limited human clinical trial data, uncertain efficacy across diverse venoms, and undefined dosing strategies. Overall, small molecules represent a mechanistically targeted and clinically promising adjunct to antivenom therapy, warranting further validation through randomized trials, pharmacokinetic studies, and development of field-applicable treatment protocols. Full article
(This article belongs to the Special Issue Molecular Mechanisms of Venom and Antivenom)
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15 pages, 15392 KB  
Article
Transcriptomic Dissection of Bothrops moojeni Venom Reveals Fraction-Specific Modulation of Host Cellular Pathways
by Fernanda D’Amélio, Rodrigo Pinheiros Araldi, Isabel de Fátima Correia Batista, Álvaro Rossan de Brandão Prieto-da-Silva and Irina Kerkis
Int. J. Mol. Sci. 2026, 27(13), 5943; https://doi.org/10.3390/ijms27135943 - 1 Jul 2026
Viewed by 295
Abstract
Snake venom is a remarkably complex cocktail of bioactive molecules capable of hijacking diverse host physiological processes, yet how individual venom components drive these cellular responses remains a bit of a black box. To map these dynamics, we ran a comparative transcriptomic analysis [...] Read more.
Snake venom is a remarkably complex cocktail of bioactive molecules capable of hijacking diverse host physiological processes, yet how individual venom components drive these cellular responses remains a bit of a black box. To map these dynamics, we ran a comparative transcriptomic analysis on human osteoclastogenic cultures, exposing them continuously to crude Bothrops moojeni venom and its high (HMM) and low (LMM) molecular mass fractions throughout differentiation. This allowed us to capture the cumulative transcriptional shifts that unfold across the entire lifecycle of osteoclast development. The crude venom triggered a sweeping response, deeply impacting neuroimmune, extracellular matrix remodeling, inflammatory, and apoptotic pathways—reflecting a massive reshuffling of cellular regulatory networks. When we looked at the fractions, clear dividing lines emerged. The HMM fraction, packed with metalloproteinases and serine proteases, mostly drove pathways tied to cytoskeletal remodeling, intracellular trafficking, and osteoclast-associated signaling. In contrast, the LMM fraction—home to phospholipases A2, disintegrins, and small peptides—steered a much more targeted course, influencing immune regulation, proliferative signaling, and metabolic homeostasis while noticeably turning down catalytic and binding functions. Interestingly, all venom-treated groups shared a drop-off in ATP-dependent and ligand-binding categories, pointing to a common disruption in core metabolic and signaling processes. Taken together, these findings offer a clearer mechanistic look at how different B. moojeni venom components target bone remodeling pathways, highlighting the power of transcriptomics for untangling complex venom–host interactions. Full article
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19 pages, 8001 KB  
Article
Preliminary Insights into Geographic Variation in Venom Profiles and Functional Activities of Nigerian Snakes, Bitis arietans and Naja nigricollis
by Akindele Oluwatosin Adeyi, Oluwatimilehin Stephen Emmanuel, Samuel Itang Itang, Babafemi Siji Ajisebiola, Mihir Kumar, Gotravalli V. Rudresha, Prasad Gopalkrishna Gond, Thomas Crasset, Damien Redureau, Fernanda Gobbi Amorim, Kartik Sunagar and Loïc Quinton
Toxins 2026, 18(5), 221; https://doi.org/10.3390/toxins18050221 - 7 May 2026
Cited by 1 | Viewed by 1358
Abstract
Snakebite envenoming is a major yet neglected tropical disease in sub-Saharan Africa, where antivenom efficacy is critically limited by intraspecific venom variation shaped by local ecological pressures. Nigeria’s sharply contrasting Sudan Savanna (North) and Lowland Rainforest (South) provide an ideal natural system to [...] Read more.
Snakebite envenoming is a major yet neglected tropical disease in sub-Saharan Africa, where antivenom efficacy is critically limited by intraspecific venom variation shaped by local ecological pressures. Nigeria’s sharply contrasting Sudan Savanna (North) and Lowland Rainforest (South) provide an ideal natural system to investigate this variation, yet a comparative analysis of its medically important snakes has been lacking. We conducted an integrated proteomic and functional characterization of venoms from the puff adder (Bitis arietans) and black-necked spitting cobra (Naja nigricollis) collected in Kaduna (North) and Ibadan (South). Using high-resolution LC-MS/MS, SDS-PAGE, and biochemical assays (phospholipase A2, protease, fibrinogenolytic, hemolytic, and coagulation activities), we mapped region-specific venom compositions and characterized their functional activities. Bitis arietans displayed region-associated divergence: southern venom was enriched in serine proteases, whereas northern venom was dominated by lectins and distinct snake venom metalloproteinase isoforms. Naja nigricollis showed a conserved phospholipase A2/three-finger toxins backbone, yet southern venoms exhibited elevated snake venom metalloproteinase III and L-amino acid oxidase. These molecular differences manifested functionally, with southern B. arietans venom showing higher protease activity than northern B. arietans, whereas southern and northern N. nigricollis venom exhibited similar protease activity but enhanced phospholipase A2 activity in southern N. nigricollis. This work provides the first integrated proteomic and functional comparison of venoms from northern and southern Nigerian venom sample of B. arietans and N. nigricollis. While based on a limited number of individuals, the observed differences should be considered preliminary and indicative of potential regional trends rather than population-level characteristics. Full article
(This article belongs to the Special Issue Unlocking the Deep Secrets of Toxins)
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16 pages, 1959 KB  
Article
Selective Anticancer Effects of a P-I Metalloproteinase from Bothrops Moojeni Snake Venom (BthMP) on Lung Cancer Cells
by Vinícius Queiroz Oliveira, Luísa Carregosa Santos, Leonardo Oliveira Silva Bastos Andrade, Lucas Miranda Marques, Amélia Cristina Mendes de Magalhães Gusmão, Thiago Macedo Lopes Correia, Samuel Cota Teixeira, Eloisa Amália Vieira Ferro, Veridiana de Melo Rodrigues, Sarah Natalie Cirilo Gimenes, Mônica Colombini, Patricia Bianca Clissa, Sabri Saeed Sanabani and Daiana Silva Lopes
Pharmaceuticals 2026, 19(3), 428; https://doi.org/10.3390/ph19030428 - 6 Mar 2026
Viewed by 1165
Abstract
Background: Lung cancer remains a leading cause of mortality, mainly due to aggressive metastasis and therapeutic resistance. Snake venom metalloproteinases (svMPs), particularly the P-I class, are promising sources for novel antitumor agents. Objectives: This study investigated the impacts of BthMP, a P-I svMPs [...] Read more.
Background: Lung cancer remains a leading cause of mortality, mainly due to aggressive metastasis and therapeutic resistance. Snake venom metalloproteinases (svMPs), particularly the P-I class, are promising sources for novel antitumor agents. Objectives: This study investigated the impacts of BthMP, a P-I svMPs from Bothrops moojeni venom, on human lung carcinoma (A549) cells in comparison to non-cancerous human bronchial epithelial cells (BEAS-2B). Methods and Results: BthMP demonstrated potent and selective anti-cancer activity. It significantly inhibited key metastatic processes in A549 cells, including adhesion, migration, and invasion, while suppressing long-term proliferation, as shown by reduced colony formation and increased lactate dehydrogenase (LDH) release. Mechanistically, BthMP induced a massive increase in intracellular reactive oxygen species (ROS) by over 2000% and elevated nitric oxide (NO) by 35% in A549 cells, driving a state of lethal oxidative stress. Crucially, these cytotoxic and anti-metastatic effects were minimal in BEAS-2B cells; BthMP even suppressed basal ROS and NO levels in this non-cancerous line. The anti-migratory effects of BthMP were completely dependent on its zinc-based catalytic activity, as they were abolished by pretreatment with ethylenediaminetetraacetic acid. By simultaneously disrupting cell–matrix interactions and inducing selective, catastrophic oxidative stress in cancer cells, BthMP presents a dual-pronged anti-metastatic mechanism. Conclusions: These findings establish BthMP as a promising therapeutic scaffold for developing novel treatments against lung cancer progression. Full article
(This article belongs to the Section Natural Products)
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18 pages, 2032 KB  
Article
Inter- and Intraspecific Venom Variation in the Reclusive Rear-Fanged Black-Striped Snakes (Coniophanes)
by John Henry Fowler, Ramses Alejandro Rosales-García, Rhett M. Rautsaw, Michael P. Hogan, Erich P. Hofmann, Andrew J. Mason, Ramon Nagesan, Miguel Borja, Luis Herrera, Gamaliel Castañeda-Gaytan, Alison R. Davis Rabosky, Darin R. Rokyta and Christopher L. Parkinson
Toxins 2026, 18(2), 108; https://doi.org/10.3390/toxins18020108 - 20 Feb 2026
Viewed by 2412
Abstract
Our current understanding of snake venom is highly biased towards species known to be medically significant in human envenomations. This vastly under-represents the true evolutionary and ecological breadth of snake venom, with gaps spanning entire clades and unique lifestyles. As a result, many [...] Read more.
Our current understanding of snake venom is highly biased towards species known to be medically significant in human envenomations. This vastly under-represents the true evolutionary and ecological breadth of snake venom, with gaps spanning entire clades and unique lifestyles. As a result, many genera of rear-fanged snakes lack well-understood venom profiles despite these taxa composing around 65% of known extant snake species. Methodological challenges associated with venom extraction have long been a key reason responsible for the lack of venom research on this group. Modern advancements in venomics technologies have allowed researchers to overcome many of these challenges and investigate the venom components of understudied genera. The genus Coniophanes (black-striped snakes) presents an ideal system for investigating venom and the venom delivery system in a rear-fanged venomous species with well-documented accounts of human envenomations. We sequenced and annotated de novo transcriptomes of the Duvernoy’s gland (DVG) for seven individuals across four species of Coniophanes (Dipsadidae) and confirmed toxin expression in representative venom proteomes. We assessed interspecific venom variation within this genus and further examined intraspecific venom variation within C. imperialis. We found that toxins account for 38.8% to 66% of the total DVG transcriptomes and that 18 toxin families are represented in this genus, with prominent expression of cystine-rich secretory proteins (CRiSPs) in three species and snake venom metalloproteinases (SVMPs) in all four species. In addition, we used diffusible iodine-based contrast-enhanced computed tomography (diceCT) to better understand the venom delivery system for C. fissidens, a widespread species within this genus, showcasing enlarged, grooved, rear fangs in close proximity to a prominent DVG. We provide the first ever characterization of the venom profiles of Coniophanes, highlight venom variation between and within species, and outline the venom delivery system of this understudied genus. Full article
(This article belongs to the Special Issue Snake Venom Genes Expression, Evolution and Variation)
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19 pages, 9828 KB  
Article
Conserved Enzymatic Peptides in Bitis arietans Venom Revealed by Comparative Proteomics: Implications for Cross-Reactive Antibody Targeting
by Kemily Stephanie de Godoi, Fernanda Calheta Vieira Portaro, Patrick Jack Spencer, Hugo Vigerelli and Wilmar Dias da Silva
Int. J. Mol. Sci. 2026, 27(3), 1431; https://doi.org/10.3390/ijms27031431 - 31 Jan 2026
Cited by 1 | Viewed by 676
Abstract
Snakebite envenoming remains a critical public health issue, and the molecular variability of venoms limits the cross-species efficacy of conventional antivenoms. Here, we conducted a comparative proteomic analysis of Bitis arietans venom to identify conserved peptide regions derived from enzymatic toxins and evaluate [...] Read more.
Snakebite envenoming remains a critical public health issue, and the molecular variability of venoms limits the cross-species efficacy of conventional antivenoms. Here, we conducted a comparative proteomic analysis of Bitis arietans venom to identify conserved peptide regions derived from enzymatic toxins and evaluate their potential relevance for complementary immunotherapeutic applications. Enzyme-enriched venom fractions were isolated through sequential affinity and ion-exchange chromatography and were subsequently characterized using fluorogenic FRET substrates and inhibitor assays. LC–MS/MS analysis identified 1099 proteins and revealed 36 conserved peptides within snake venom metalloproteinases (SVMPs), serine proteases (SVSPs), and phospholipase A2 (PLA2), particularly located near catalytic residues and structurally essential motifs such as the HExxHxxGxxH zinc-binding site in SVMPs, the His-Asp-Ser catalytic triad in SVSPs, and the Ca2+-binding loop in PLA2, across Viperidae venoms. These conserved regions were also observed in homologous toxin isoforms from additional Viperidae genera, supporting the evolutionary conservation of key functional domains. While sequence conservation alone does not guarantee neutralization capacity, the identified regions represent strong candidates for structural epitope mapping and targeted antibody development. This study provides a peptide-level framework for advancing complementary antibody-based therapies designed to broaden cross-species toxin recognition, reduce antivenom dosage requirements, and improve clinical outcomes in snakebite envenoming. Full article
(This article belongs to the Special Issue Molecular Toxicity Research of Biological Venoms)
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18 pages, 2176 KB  
Article
The Venom Proteome and Immunorecognition Profile of Clinically Important Echis carinatus sochureki from Northwestern India Underscores the Need for Regionally Specific Antivenoms
by Akhilesh Kumar, Alka Sahu, Maya Gopalakrishnan, Avni Blotra, Vishal Kumar Rout, Sourish Kuttalam, Shibi Muralidar, Anita Malhotra and Karthikeyan Vasudevan
Toxins 2026, 18(1), 54; https://doi.org/10.3390/toxins18010054 - 21 Jan 2026
Viewed by 1969
Abstract
The saw-scaled viper Echis carinatus, one of the “Big Four” causes of snakebites in India, is found from Sri Lanka to eastern Iraq. To investigate clinical reports regarding the limited efficacy of Indian polyvalent antivenom (IPAV) against envenomation in Echis carinatus sochureki [...] Read more.
The saw-scaled viper Echis carinatus, one of the “Big Four” causes of snakebites in India, is found from Sri Lanka to eastern Iraq. To investigate clinical reports regarding the limited efficacy of Indian polyvalent antivenom (IPAV) against envenomation in Echis carinatus sochureki (ECS) in northwestern India, we obtained 22 snakes from three locations in Rajasthan and identified 148–174 toxin isoforms belonging to 21–25 toxin families in their venom using a bottom-up proteomics approach. All samples showed a high abundance of snake venom metalloproteinases (SVMPs), particularly SVMP class III. Other major components were phospholipases A2, L-amino-acid oxidases, snake venom serine proteases and snaclecs (C-type lectins). Variation in venom composition among locations in Rajasthan, compared to E. c. carinatus (ECC) from southern India, was primarily due to differences in the relative abundance of these toxin families. Recognition of all venom components by IPAV was poor at lower antivenom concentrations. Notably, SVMP classes II and III were poorly recognized at all venom-to-antivenom ratios in all ECS venoms, and a plasma clotting assay revealed poor neutralization of procoagulant activity. This collaborative study highlights the need for the development of regional antivenoms to effectively treat snakebites in northwestern India. Full article
(This article belongs to the Special Issue Collaborative Approaches to Mitigation of Snakebite Envenoming)
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43 pages, 3650 KB  
Review
Snake Toxins Affecting Blood Vessel Walls: Mode of Action and Biological Significance
by Alexey V. Osipov and Yuri N. Utkin
Int. J. Mol. Sci. 2025, 26(19), 9439; https://doi.org/10.3390/ijms26199439 - 26 Sep 2025
Cited by 5 | Viewed by 2558
Abstract
One of the main targets for snake venoms in animal and human organisms is the circulatory system. Mechanisms of circulatory system injury within the victim’s body include, among others, the direct effect of snake toxins on structures in blood vessel walls. The interaction [...] Read more.
One of the main targets for snake venoms in animal and human organisms is the circulatory system. Mechanisms of circulatory system injury within the victim’s body include, among others, the direct effect of snake toxins on structures in blood vessel walls. The interaction of a toxin with cells and the extracellular matrix of the vessel wall may manifest as cytotoxicity, leading to cell death by necrosis or apoptosis, and damage to vascular wall structures. Such interactions may increase capillary permeability, promoting hemorrhage or edema, and may also induce alterations in vascular tone, resulting in changes in blood pressure. Snake toxins may also affect the growth, function, and regenerative ability of the endothelium, thus modulating angiogenesis; some toxins exert protective or anti-atherosclerotic effects. Toxins interacting with the vasculature may be classified as enzymes (phospholipases A2, metalloproteinases, L-amino acid oxidases, and hyaluronidases), proteins without enzymatic activity (vascular endothelial growth factors, disintegrins, C-type lectins and snaclecs, three-finger toxins, etc.), peptides (bradykinin-potentiating peptides, natriuretic peptides, sarafotoxins), and low-molecular-weight substances. This review summarizes the data on the vascular effects, particularly on the blood vessel wall, exhibited by various classes and groups of snake toxins. Full article
(This article belongs to the Special Issue Molecular Mechanisms of Animal Toxins, Venoms and Antivenoms 2.0)
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14 pages, 1470 KB  
Article
Coffea arabica Extracts and Metabolites with Potential Inhibitory Activity of the Major Enzymes in Bothrops asper Venom
by Erika Páez, Yeisson Galvis-Pérez, Jaime Andrés Pereañez, Lina María Preciado and Isabel Cristina Henao-Castañeda
Pharmaceuticals 2025, 18(8), 1151; https://doi.org/10.3390/ph18081151 - 1 Aug 2025
Cited by 1 | Viewed by 1269
Abstract
Background/Objectives: Most snakebite incidents in Latin America are caused by species of the Bothrops genus. Their venom induces severe local effects, against which antivenom therapy has limited efficacy. Metabolites derived from Coffea arabica have demonstrated anti-inflammatory and anticoagulant properties, suggesting their potential [...] Read more.
Background/Objectives: Most snakebite incidents in Latin America are caused by species of the Bothrops genus. Their venom induces severe local effects, against which antivenom therapy has limited efficacy. Metabolites derived from Coffea arabica have demonstrated anti-inflammatory and anticoagulant properties, suggesting their potential as therapeutic agents to inhibit the local effects induced by B. asper venom. Methods: Three enzymatic assays were performed: inhibition of the procoagulant and amidolytic activities of snake venom serine proteinases (SVSPs); inhibition of the proteolytic activity of snake venom metalloproteinases (SVMPs); and inhibition of the catalytic activity of snake venom phospholipases A2 (PLA2s). Additionally, molecular docking studies were conducted to propose potential inhibitory mechanisms of the metabolites chlorogenic acid, caffeine, and caffeic acid. Results: Green and roasted coffee extracts partially inhibited the enzymatic activity of SVSPs and SVMPs. Notably, the green coffee extract, at a 1:20 ratio, effectively inhibited PLA2 activity. Among the individual metabolites tested, partial inhibition of SVSP and PLA2 activities was observed, whereas no significant inhibition of SVMP proteolytic activity was detected. Chlorogenic acid was the most effective metabolite, significantly prolonging plasma coagulation time and achieving up to 82% inhibition at a concentration of 62.5 μM. Molecular docking analysis revealed interactions between chlorogenic acid and key active site residues of SVSP and PLA2 enzymes from B. asper venom. Conclusions: The roasted coffee extract demonstrated the highest inhibitory effect on venom toxins, potentially due to the formation of bioactive compounds during the Maillard reaction. Molecular modeling suggests that the tested inhibitors may bind to and occupy the substrate-binding clefts of the target enzymes. These findings support further in vivo research to explore the use of plant-derived polyphenols as adjuvant therapies in the treatment of snakebite envenoming. Full article
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14 pages, 1611 KB  
Article
Explaining Echis: Proteotranscriptomic Profiling of Echis carinatus carinatus Venom
by Salil Javed, Prasad Gopalkrishna Gond, Arpan Samanta, Ajinkya Unawane, Muralidhar Nayak Mudavath, Anurag Jaglan and Kartik Sunagar
Toxins 2025, 17(7), 353; https://doi.org/10.3390/toxins17070353 - 16 Jul 2025
Cited by 2 | Viewed by 3781
Abstract
Snakebite remains the most neglected tropical disease globally, with India experiencing the highest rates of mortality and morbidity. While most envenomation cases in India are attributed to the ‘big four’ snakes, research has predominantly focused on Russell’s viper (Daboia russelii), [...] Read more.
Snakebite remains the most neglected tropical disease globally, with India experiencing the highest rates of mortality and morbidity. While most envenomation cases in India are attributed to the ‘big four’ snakes, research has predominantly focused on Russell’s viper (Daboia russelii), spectacled cobra (Naja naja), and common krait (Bungarus caeruleus), leading to a considerable gap in our understanding of saw-scaled viper (Echis carinatus carinatus) venoms. For instance, the venom gland transcriptome and inter- and intra-population venom variation in E. c. carinatus have largely remained uninvestigated. A single study to date has assessed the effectiveness of commercial antivenoms against this species under in vivo conditions. To address these crucial knowledge gaps, we conducted a detailed investigation of E. c. carinatus venom and reported the first venom gland transcriptome. A proteotranscriptomic evaluation revealed snake venom metalloproteinases, C-type lectins, L-amino acid oxidases, phospholipase A2s, and snake venom serine proteases as the major toxins. Moreover, we assessed the intra-population venom variation in this species using an array of biochemical analyses. Finally, we determined the venom toxicity and the neutralising efficacy of a commercial antivenom using a murine model of snake envenoming. Our results provide a thorough molecular and functional profile of E. c. carinatus venom. Full article
(This article belongs to the Special Issue Venom Genes and Genomes of Venomous Animals: Evolution and Variation)
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21 pages, 1637 KB  
Article
Comparative Label-Based Proteomics of Venoms from Echis ocellatus, Naja nigricollis, and Bitis arietans
by Abdulbaki Alfa-Ibrahim Adio, Samuel Odo Uko, Jiddah Muhammad Lawal, Ibrahim Malami, Nafiu Lawal, Amina Jega Yusuf Jega, Bilyaminu Abubakar, Muhammad Bashir Bello, Kasimu Ghandi Ibrahim, Murtala Bello Abubakar, Abdussamad Muhammad Abdussamad, Mujtaba Sulaiman Abubakar and Mustapha Umar Imam
Proteomes 2025, 13(3), 31; https://doi.org/10.3390/proteomes13030031 - 2 Jul 2025
Cited by 2 | Viewed by 3220
Abstract
Background: Snake envenomation is a major public health issue in Nigeria, primarily due to bites from Echis ocellatus, Naja nigricollis, and Bitis arietans. Understanding their venom composition is essential for effective antivenom development. This study characterizes and compares the venom proteomes [...] Read more.
Background: Snake envenomation is a major public health issue in Nigeria, primarily due to bites from Echis ocellatus, Naja nigricollis, and Bitis arietans. Understanding their venom composition is essential for effective antivenom development. This study characterizes and compares the venom proteomes of these snakes using iTRAQ-based proteomics, focusing on key toxin families and their relative abundances. Methods: Venom samples were ethically collected from adult snakes, pooled by species, lyophilized, and stored for proteomic analysis. Proteins were extracted, digested with trypsin, and labeled with iTRAQ. Peptides were analyzed via mass spectrometry, and data were processed using Mascot and IQuant for protein identification and quantification. Results: E. ocellatus and B. arietans venoms had similar profiles, rich in C-type lectins, serine proteases, and phospholipase A2s. These comprised 17%, 11%, and 5% in E. ocellatus and 47%, 10%, and 7% in B. arietans, with metalloproteinases dominating both (53% and 47%). In N. nigricollis, three-finger toxins (9%) were most abundant, followed by metalloproteinases (3%). All species shared four core protein families, with N. nigricollis also containing four uncharacterized proteins. Conclusions: This study highlights venom compositional differences, advancing snake venom biology and informing targeted antivenom development. Full article
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20 pages, 3412 KB  
Article
Snake Venom Metalloproteinases from Puff Adder and Saw-Scaled Viper Venoms Cause Cytotoxic Effects in Human Keratinocytes
by Keirah E. Bartlett, Adam Westhorpe, Mark C. Wilkinson and Nicholas R. Casewell
Toxins 2025, 17(7), 328; https://doi.org/10.3390/toxins17070328 - 28 Jun 2025
Cited by 3 | Viewed by 3437
Abstract
Snakebite envenoming is a neglected tropical disease that causes substantial mortality and morbidity globally. The puff adder (Bitis arietans) and saw-scaled viper (Echis romani) have cytotoxic venoms that cause permanent injury via dermonecrosis around the bite site. Identifying the [...] Read more.
Snakebite envenoming is a neglected tropical disease that causes substantial mortality and morbidity globally. The puff adder (Bitis arietans) and saw-scaled viper (Echis romani) have cytotoxic venoms that cause permanent injury via dermonecrosis around the bite site. Identifying the cytotoxic toxins within these venoms will allow for the development of targeted treatments to prevent snakebite morbidity. In this study, venoms from both species were fractionated using gel filtration chromatography, and a combination of cytotoxicity approaches, SDS-PAGE gel electrophoresis, and enzymatic assays were applied to identify the venom cytotoxins in the resulting fractions. Our results indicate that snake venom metalloproteinase (SVMP) toxins are responsible for causing cytotoxic effects across both venoms. The PI subclass of SVMPs is likely the main driver of cytotoxicity following envenoming by B. arietans, while the structurally distinct PIII subclass of SVMPs is mostly responsible for conveying this effect in E. romani venom. Identifying distinct SVMPs as cytotoxicity-causing toxins in these two African viper venoms will facilitate the future design and development of novel therapeutics targeting these medically important venoms, which in turn could help to mitigate the severe life- and limb-threatening consequences of tropical snakebites. Full article
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17 pages, 1021 KB  
Article
Strophanthus sarmentosus Extracts and the Strophanthus Cardenolide Ouabain Inhibit Snake Venom Proteases from Echis ocellatus
by Julius Abiola, Olapeju Aiyelaagbe, Akindele Adeyi, Babafemi Ajisebiola and Simone König
Molecules 2025, 30(12), 2625; https://doi.org/10.3390/molecules30122625 - 17 Jun 2025
Cited by 1 | Viewed by 2184
Abstract
Strophanthus sarmentosus is recognised for various ethnomedicinal applications, including treatment after snakebites. However, only limited scientific evidence exists on its antivenomous capabilities. This study investigates the efficacy of methanol and ethylacetate extracts from S. sarmentosus leaves and roots against Echis ocellatus venom. A [...] Read more.
Strophanthus sarmentosus is recognised for various ethnomedicinal applications, including treatment after snakebites. However, only limited scientific evidence exists on its antivenomous capabilities. This study investigates the efficacy of methanol and ethylacetate extracts from S. sarmentosus leaves and roots against Echis ocellatus venom. A non-toxic range for the extracts was determined in rats, and assays were performed to test their anti-hemorrhagic and anti-hemolytic activity as well as their influence on venom-induced blood clotting. In all of these experiments, the extracts demonstrated significant positive effects equal to or better than antivenom. Moreover, the extracts strongly inhibited and even abolished the digestion of the vasoactive neuropeptide bradykinin by snake venom metalloproteinases. Strophantus plants are known for their high content of cardiac glycosides, one of which is the commercially available ouabain, that by itself also considerably inhibited venom-induced bradykinin cleavage. Although ouabain is only present in low amounts in S. sarmentosus when compared to other cardenolides of similar structure, it can be hypothesized that members of this substance class may also have inhibitory properties against venom proteases. S. sarmentosus additionally contains bioactive substances such as flavonoids, terpenoids, tannins, saponins, and alkaloids, which contribute to its protective effects. The study provides scientific data to explain the success of the traditional use of S. sarmentosus plant extracts as a first aid against envenomation in rural Africa. Full article
(This article belongs to the Section Applied Chemistry)
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17 pages, 5735 KB  
Article
Combination of Rhamnetin and RXP03 Mitigates Venom-Induced Toxicity in Murine Models: Preclinical Insights into Dual-Target Antivenom Therapy
by Jianqi Zhao, Guangyao Liu, Xiao Shi and Chunhong Huang
Toxins 2025, 17(6), 280; https://doi.org/10.3390/toxins17060280 - 4 Jun 2025
Cited by 4 | Viewed by 1965
Abstract
Snakebite is a significant global public health challenge, and the limited application of antivenom has driven the exploration of novel therapies. Combination therapy using small-molecule drugs targeting phospholipases A2 (PLA2) and metalloproteinases (SVMP) in venom shows great potential. Although Rhamnetin and RXP03 [...] Read more.
Snakebite is a significant global public health challenge, and the limited application of antivenom has driven the exploration of novel therapies. Combination therapy using small-molecule drugs targeting phospholipases A2 (PLA2) and metalloproteinases (SVMP) in venom shows great potential. Although Rhamnetin and RXP03 exhibit notable anti-phospholipase and anti-metalloproteinase activities, respectively, their antiophidic potential remains poorly explored. This study aims to evaluate the inhibitory effects of Rhamnetin and RXP03 on snake venom toxicity. Methodologically, we conducted in vitro enzymatic assays to quantify PLA2/SVMP inhibition, murine models of envenomation (subcutaneous/intramuscular venom injection) to assess local tissue damage and systemic toxicity, and histopathological/biochemical analyses. In vitro experiments demonstrated that Rhamnetin effectively inhibited PLA2 activity while RXP03 showed potent suppression of SVMP activity, with their combination significantly reducing venom-induced hemorrhagic activity. In murine models, the combined therapy markedly alleviated venom-triggered muscle toxicity and ameliorated oxidative stress. Furthermore, the combination enhanced motor performance and survival rate in mice, improved serum biochemical parameters, corrected coagulation disorders, and attenuated pathological damage in liver, kidney, heart, and lung tissues. This research demonstrates that dual-targeted therapy against metalloproteinases and phospholipases in snake venom can effectively prevent a series of injuries caused by snake venom. Collectively, the combined application of Rhamnetin and RXP03 exhibits significant inhibitory effects on a variety of venom-induced toxicities, providing pharmacological evidence for the development of antivenom therapies. However, the efficacy validation in this study was limited to murine models, and there is a discrepancy with clinical needs for delayed treatment in real-world envenomation scenarios. Despite these limitations, the findings provide robust preclinical evidence supporting the Rhamnetin–RXP03 combination therapy as a cost-effective, broad-spectrum antivenom strategy. Future studies are required to optimize dosing regimens and evaluate clinical translatability. Full article
(This article belongs to the Section Animal Venoms)
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25 pages, 2812 KB  
Article
Dual Proteomics Strategies to Dissect and Quantify the Components of Nine Medically Important African Snake Venoms
by Damien Redureau, Fernanda Gobbi Amorim, Thomas Crasset, Imre Berger, Christiane Schaffitzel, Stefanie Kate Menzies, Nicholas R. Casewell and Loïc Quinton
Toxins 2025, 17(5), 243; https://doi.org/10.3390/toxins17050243 - 13 May 2025
Cited by 7 | Viewed by 3623
Abstract
Snakebite envenoming constitutes a significant global health issue, particularly in Africa, where venomous species such as Echis vipers and Dendroaspis mambas pose substantial risks to human health. This study employs a standardized venomics workflow to comprehensively characterize and comparatively quantify the venom composition [...] Read more.
Snakebite envenoming constitutes a significant global health issue, particularly in Africa, where venomous species such as Echis vipers and Dendroaspis mambas pose substantial risks to human health. This study employs a standardized venomics workflow to comprehensively characterize and comparatively quantify the venom composition of nine medically relevant snake species chosen from among the deadliest in Africa. Utilizing shotgun venom proteomics and venom gland transcriptomics, we report detailed profiles of venom complexity, highlighting the relative abundance of dominant toxin families such as three-finger toxins and Kunitz-type proteins in Dendroaspis, and metalloproteinases and phospholipases A2 in Echis. We delineate here the relative abundance and structural diversity of venom components. Key to our proteomic approach is the implementation of Multi-Enzymatic Limited Digestion (MELD), which improved protein sequence coverage and enabled the identification of rare toxin families such as hyaluronidases and renin-like proteases, by multiplying the overlap of generated peptides and enhancing the characterization of both toxin and non-toxin components within the venoms. The culmination of these efforts resulted in the construction of a detailed toxin database, providing insights into the biological roles and potential therapeutic targets of venom proteins and peptides. The findings here compellingly validate the MELD technique, reinforcing its reproducibility as a valuable characterization approach applied to venomics. This research significantly advances our understanding of venom complexity in African snake species, including representatives of both Viperidae and Elapidae families. By elucidating venom composition and toxin profiles, our study paves the way for the development of targeted therapies aimed at mitigating the morbidity and mortality associated with snakebite envenoming globally. Full article
(This article belongs to the Special Issue Toxins: From the Wild to the Lab)
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