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Author Spotlight: Optimizing Scorpion Venom Extraction for Antivenom Production
Published on: October 6, 2023
Design of a new therapy to treat snake envenomation
1Department of Pharmacology, College of Pharmacy, Kerman University of Medical Sciences, International Campus, Kerman, Iran.
Abstract:
The prospective removal of snake venoms from the blood of snake-bitten patients is discussed here. Opportune neutralization of killer antigens from the blood of poisoned victims is a vital treatment step. Delays may lead to death, or cripple the patient permanently. The present procedure describes the elimination of venom antigens of a wide range of snakes from the blood of such patients. Compared to conventional treatments, the treatment is administrable in the lack of proper antivenoms, expected to be more effective with less side effects, covers a vast range of snake venoms, minimizes contact of venoms with internal tissues and organs, is applicable in patients sensitive to serum injections, has a high chance of effectiveness because there is no need to identity the snake involved to administer its specific antibody, and is capable of universal application. The principal component to this approach is a "polyvalent venom antibody column" (PVAC), which selectively traps venom antigens from blood in an extracorporeal circuit while detoxified blood returns back to the patient's body. The PVAC is intended for removal of numerous snake venom antigens in a relatively simple procedure. Detoxification is performed under the supervision of trained personnel using simple blood-circulating machines in which blood circulates from patient to PVAC and back to the patient aseptically. The device acts as a biological filter that selectively immobilizes harmful venom antigens from poisoned blood. For effective neutralization, the PVAC provides a large contact surface area with blood. The PVAC's reactive sites would consist of carbon nanotubes, on which a vast spectra of venoms' antibodies are bonded to. In this extracorporeal detoxification process, nocent antigens conjugate with their antibodies and become immobilized, and are eliminated from the poisoned patient blood. Detoxification resuscitation is expected to take 2-3 hours, when the titers of venom antigens in the blood reach harmless levels, as confirmed by sampling of the blood and appropriate serological evaluations. If conventional antivenoms do not cover the entire spectrum of venom antigens in blood, rehabilitation would be a matter of a longer period; whilst the PVAC covers the widest range of antibodies to remove the broadest range of venom antigens, the rehabilitation period would be shorter since venom antigens have been removed from the body in a few hours duration. PVACs are to be biotechnologically engineered against a wide spectra of antigens present in the venoms of the dominant poisonous snakes for a defined geographical zone; ie, a country, part of a continent, or an entire continent. As a polyvalent column, the PVAC bears a sufficient amount of venom antibodies of all snakes that pose a threat in the region. PVAC treatment would have high applicability in cases where the patient is unconscious and/or the snake identity is not clear for administration of related antivenom medication. For opportune administration, research on the use of PVACs in emergency ambulances should receive special attention. Starting in situ detoxification, such ambulances would provide more efficient resuscitations to envenomed patients.
Insights
A novel polyvalent venom antibody column (PVAC) offers a promising new treatment for snakebites, effectively removing venom antigens from blood. This extracorporeal detoxification method provides a faster, broader-acting alternative to traditional antivenoms.
Area of Science:
- Biotechnology
- Toxicology
- Medical Devices
Background:
- Snakebite envenomation is a critical medical emergency requiring prompt neutralization of venom antigens.
- Conventional antivenoms have limitations, including narrow specificity, potential for allergic reactions, and the need for snake identification.
- Delays in treatment can lead to severe morbidity or mortality.
Purpose of the Study:
- To introduce and describe a novel extracorporeal detoxification method for snakebite treatment.
- To present the polyvalent venom antibody column (PVAC) as a potentially more effective and versatile alternative to current therapies.
- To highlight the advantages of PVAC in terms of broad applicability, reduced side effects, and independence from snake species identification.
Main Methods:
- Development of a "polyvalent venom antibody column" (PVAC) utilizing carbon nanotubes functionalized with a wide spectrum of venom antibodies.
- Implementation of an extracorporeal blood circuit where patient blood is passed through the PVAC for selective trapping of venom antigens.
- Aseptic detoxification procedure supervised by trained personnel using blood-circulating machines.
Main Results:
- The PVAC selectively immobilizes and removes a broad range of venom antigens from patient blood.
- Detoxification is expected to take 2-3 hours, leading to harmless venom antigen titers.
- The procedure is effective even when the snake species is unidentified and in patients with serum sensitivities.
Conclusions:
- The PVAC represents a significant advancement in snakebite management, offering universal applicability and improved patient outcomes.
- This technology has the potential for widespread use, including in emergency settings like ambulances, for rapid in situ detoxification.
- Further research and development of PVACs tailored to specific geographical regions are warranted.
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