» Articles » PMID: 36982458

Biological Consequences of Vanadium Effects on Formation of Reactive Oxygen Species and Lipid Peroxidation

Overview
Journal Int J Mol Sci
Publisher MDPI
Date 2023 Mar 29
PMID 36982458
Authors
Affiliations
Soon will be listed here.
Abstract

Lipid peroxidation (LPO), a process that affects human health, can be induced by exposure to vanadium salts and compounds. LPO is often exacerbated by oxidation stress, with some forms of vanadium providing protective effects. The LPO reaction involves the oxidation of the alkene bonds, primarily in polyunsaturated fatty acids, in a chain reaction to form radical and reactive oxygen species (ROS). LPO reactions typically affect cellular membranes through direct effects on membrane structure and function as well as impacting other cellular functions due to increases in ROS. Although LPO effects on mitochondrial function have been studied in detail, other cellular components and organelles are affected. Because vanadium salts and complexes can induce ROS formation both directly and indirectly, the study of LPO arising from increased ROS should include investigations of both processes. This is made more challenging by the range of vanadium species that exist under physiological conditions and the diverse effects of these species. Thus, complex vanadium chemistry requires speciation studies of vanadium to evaluate the direct and indirect effects of the various species that are present during vanadium exposure. Undoubtedly, speciation is important in assessing how vanadium exerts effects in biological systems and is likely the underlying cause for some of the beneficial effects reported in cancerous, diabetic, neurodegenerative conditions and other diseased tissues impacted by LPO processes. Speciation of vanadium, together with investigations of ROS and LPO, should be considered in future biological studies evaluating vanadium effects on the formation of ROS and on LPO in cells, tissues, and organisms as discussed in this review.

Citing Articles

Protective role of extracellular vesicles against oxidative DNA damage.

Ribas-Maynou J, Parra A, Martinez-Diaz P, Rubio C, Lucas X, Yeste M Biol Res. 2025; 58(1):14.

PMID: 40075425 PMC: 11905505. DOI: 10.1186/s40659-025-00595-5.


Decavanadate Compound Displays In Vitro and In Vivo Antitumor Effect on Melanoma Models.

Essid A, Elbini I, Ksiksi R, Harrab N, Moslah W, Jendoubi I Bioinorg Chem Appl. 2025; 2025:6680022.

PMID: 39834888 PMC: 11742080. DOI: 10.1155/bca/6680022.


Cytotoxicity of Vanadium(IV) and Vanadium(V) on Caco-2 Cells: The Important Influence of Vanadium Speciation.

Du X, Yu Y, Yang J, Liu H, Yang J Biol Trace Elem Res. 2025; .

PMID: 39755851 DOI: 10.1007/s12011-024-04506-9.


Enhancement of biocompatibility of anodic nanotube structures on biomedical Ti-6Al-4V alloy via ultrathin TiO coatings.

Sepulveda M, Capek J, Baishya K, Rodriguez-Pereira J, Bacova J, Jelinkova S Front Bioeng Biotechnol. 2024; 12:1515810.

PMID: 39687268 PMC: 11646768. DOI: 10.3389/fbioe.2024.1515810.


Quantitative Assessment of Human Health Risks Associated with Heavy Metal and Bacterial Pollution in Groundwater from Mankweng in Limpopo Province, South Africa.

Maliehe T, Mavingo N, Selepe T, Masoko P, Mashao F, Nyamutswa N Int J Environ Res Public Health. 2024; 21(11).

PMID: 39595756 PMC: 11594182. DOI: 10.3390/ijerph21111489.


References
1.
He Z, Han S, Zhu H, Hu X, Li X, Hou C . The Protective Effect of Vanadium on Cognitive Impairment and the Neuropathology of Alzheimer's Disease in APPSwe/PS1dE9 Mice. Front Mol Neurosci. 2020; 13:21. PMC: 7077345. DOI: 10.3389/fnmol.2020.00021. View

2.
Aureliano M, Gandara R . Decavanadate effects in biological systems. J Inorg Biochem. 2005; 99(5):979-85. DOI: 10.1016/j.jinorgbio.2005.02.024. View

3.
Waris G, Ahsan H . Reactive oxygen species: role in the development of cancer and various chronic conditions. J Carcinog. 2006; 5:14. PMC: 1479806. DOI: 10.1186/1477-3163-5-14. View

4.
Dix T, Aikens J . Mechanisms and biological relevance of lipid peroxidation initiation. Chem Res Toxicol. 1993; 6(1):2-18. DOI: 10.1021/tx00031a001. View

5.
Ramos S, Manuel M, Tiago T, Duarte R, Martins J, Gutierrez-Merino C . Decavanadate interactions with actin: inhibition of G-actin polymerization and stabilization of decameric vanadate. J Inorg Biochem. 2006; 100(11):1734-43. DOI: 10.1016/j.jinorgbio.2006.06.007. View