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Bee Venom and Cancer: A Mini-review Focusing on Melittin Antitumoral Effects
Ana Maria Boaventura de Oliveira1, Tatiane Roquete Amparo2, Morena Brazil Martins Sant'Anna1
1Laboratory of Pain and Signaling, Butantan Institute, Sao Paulo, Brazil.
Abstract:
Cancer remains a major concern, accounting for one in six deaths globally. Developing effective treatments is challenging due to the complex mechanisms involving environmental, genetic, and epigenetic factors. Animal toxins have been utilized as pharmacological agents for treating several diseases. Among these compounds, melittin, derived from bee venom, exhibits significant therapeutic potential against cancer. This efficacy is attributed to its multifaceted nature, enabling it to function as a multi-target modulator of oncogenic signaling pathways and exert a broad spectrum of anticancer effects. In vitro studies have demonstrated that melittin treatment reduces cell viability, adhesion, clonogenic survival, migration, and invasion in various cancer cell types. Additionally, in vitro experiments have demonstrated that melittin induces apoptosis through multiple mechanisms, such as upregulating TNF-α and BAX, triggering ferroptosis, activating the mitochondrial pathway, initiating endoplasmic reticulum stress, and inhibiting METTL3. Furthermore, in vivo assays indicate that melittin reduces angiogenesis and tumor growth, enhances the effects of chemotherapy, and prolongs survival. The effects of melittin on the tumor microenvironment, modulation of the epigenetic process, and inhibition of the epithelial-mesenchymal transition have also been demonstrated. Overall, melittin shows potential as a therapeutic agent for breast, lung, gastric, cervical, colorectal, and bladder cancers by targeting multiple pathways involved in cancer progression. Moreover, other bee venom components, such as apamin and bee venom phospholipase A2, also exhibit potential anticancer effects. In this review, a comprehensive overview of the various actions of melittin and other components of bee venom on different types of cancer is provided. The research discusses their mechanisms of action and potential strategies to enhance efficacy and minimize toxicity.
Insights
Melittin from bee venom shows broad anticancer potential by targeting multiple cancer pathways. This review details its mechanisms and therapeutic promise for various cancers, including breast and lung cancer.
Area of Science:
- Pharmacology
- Oncology
- Toxicology
Background:
- Cancer is a leading global cause of death, driven by complex genetic and environmental factors.
- Melittin, a peptide from bee venom, is explored for its therapeutic properties.
- Animal toxins offer potential pharmacological agents for disease treatment.
Purpose of the Study:
- To review the anticancer mechanisms and therapeutic potential of melittin and other bee venom components.
- To explore melittin's multi-target effects on oncogenic pathways.
- To discuss strategies for enhancing melittin's efficacy and reducing toxicity.
Main Methods:
- In vitro studies assessing melittin's effects on cancer cell viability, apoptosis, migration, and invasion.
- In vivo assays evaluating melittin's impact on tumor growth, angiogenesis, and chemotherapy efficacy.
- Analysis of melittin's modulation of the tumor microenvironment and epigenetic processes.
Main Results:
- Melittin demonstrated significant anticancer effects in vitro, reducing cell viability and inducing apoptosis via multiple pathways.
- In vivo studies showed melittin inhibits tumor growth, reduces angiogenesis, and enhances chemotherapy.
- Melittin modulates the tumor microenvironment and epigenetic factors, and inhibits epithelial-mesenchymal transition.
Conclusions:
- Melittin exhibits broad-spectrum anticancer activity and potential therapeutic applications for various cancers like breast, lung, and gastric.
- Other bee venom components, including apamin and phospholipase A2, also possess anticancer properties.
- Further research can optimize melittin-based cancer therapies.
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