Medical Potential of Insect Symbionts
- PMID: 40429170
- PMCID: PMC12111880
- DOI: 10.3390/insects16050457
Medical Potential of Insect Symbionts
Abstract
Insect symbionts and their metabolites are complex and diverse and are gradually becoming an important source of new medical materials. Some culturable symbionts from insects produce a variety of active compounds with medical potential. Among them, fatty acids, antibacterial peptides, polyene macrolides, alkaloids, and roseoflavin can inhibit the growth of human pathogenic bacteria and fungi; lipases, yeast killer toxins, reactive oxygen species, pyridines, polyethers, macrotetrolide nactins, and macrolides can kill human parasites; and peptides and polyketides can inhibit human tumors. However, due to difficulty in the culture of symbionts in vitro, difficulty in targeting bacteria to specific sites in the human body, the limited capability of symbionts to produce active metabolites in vitro, inconsistent clinical research results, adverse reactions on humans, and the development of antibiotic resistance, the application of insect symbionts and their metabolites in the medical field remains in its infancy. This paper summarizes the medical potential of insect symbionts and their metabolites and analyzes the status quo and existing problems with their medical application. Possible solutions to these problems are also proposed, with the aim of hastening the utilization of insect symbionts and their metabolites in the medical field.
Keywords: antibiotic; antiparasitic activity; antitumor activity; insect symbiont; medical application; secondary metabolite.
Conflict of interest statement
The authors declare no conflicts of interest.
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References
-
- Zhang Z.Q. Phylum Arthropoda. Zootaxa. 2013;3703:17–26. doi: 10.11646/zootaxa.3703.1.6. - DOI
-
- Wang Z.Y., Zhao Y.R., Yong H.Z., Liu Z.Y., Wang W.F., Lu Y.J. The contribution of gut bacteria to pesticide resistance of Tribolium castaneum (Herbst) J. Stored Prod. Res. 2023;103:102160. doi: 10.1016/j.jspr.2023.102160. - DOI
-
- Bisson L.F., Walker G., Ramakrishnan V., Luo Y., Fan Q., Wiemer E., Luong P., Ogawa M., Joseph L. The two faces of Lactobacillus kunkeei: Wine spoilage agent and bee probiotic. Am. J. Enol. Vitic. 2017;1:1–11. doi: 10.5344/catalyst.2016.16002. - DOI
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