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Published on: May 23, 2018
Enhancement of oncolytic virotherapy by vanadium(V) dipicolinates
Anabel Bergeron1,2, Kateryna Kostenkova3, Mohammed Selman1,2
1Center for Innovative Cancer Research, Ottawa Hospital Research Institute, Ottawa, ON, Canada.
Abstract:
Oncolytic viruses rewire the immune system and can lead to long-lasting antitumor defenses against primary and metastatic tumors. However, results from clinical studies have shown heterogeneity in responses suggesting that multiplexed approaches may be necessary to consistently generate positive outcomes in patients. To this end, we explored the combination of oncolytic rhabdovirus VSV∆51 with vanadium(V) dipicolinate derivatives, which have already been explored for their antidiabetic properties in animal models. The combination of vanadium-based dipicolinate compounds with VSV∆51 significantly increased viral replication and cytotoxicity in the human renal cell carcinoma cell line 786-0. The effects of three vanadium(V)-dipicolinate coordination complexes ([VO2dipic]-, [VO2dipic-OH]- and [VO2dipic-Cl]- with -OH or -Cl in the para position) were compared to that of the simple salts using spectroscopy and speciation profiles. Like the vanadate salts and the vanadyl cation, all dioxovanadium(V) dipicolinate complexes tested were found to increase viral infection and cytotoxicity when used in combination with VSV∆51. Viral sensitization is dependent on the vanadium since free dipicolinate ligands exerted no effect on viral infection and viability. The ability of these complexes to interact with interfaces and the stability of the complexes were evaluated under physiological conditions. Results indicate that these complexes undergo hydrolysis in cell culture media thereby generating vanadate. The vanadium dipicolinate derivatives in the context of immunovirotherapy shares similarities with previous studies exploring the antidiabetic properties of the compounds. The synergy between vanadium compounds and the oncolytic virus suggests that these compounds may be valuable in the development of novel and effective pharmaco-viral therapies.
Insights
Oncolytic virus therapy shows varied results, but combining VSVΔ51 with vanadium dipicolinate compounds enhances viral replication and cancer cell killing. This synergy suggests potential for new cancer treatments.
Area of Science:
- Immunology
- Virology
- Oncology
- Chemistry
Background:
- Oncolytic viruses show promise in cancer treatment but exhibit response heterogeneity.
- Multiplexed therapeutic strategies are needed for consistent antitumor effects.
- Vanadium dipicolinate derivatives have demonstrated antidiabetic properties.
Purpose of the Study:
- To investigate the combination of oncolytic rhabdovirus VSVΔ51 with vanadium(V) dipicolinate derivatives for cancer therapy.
- To evaluate the impact of these combinations on viral replication and cancer cell cytotoxicity.
Main Methods:
- Utilized human renal cell carcinoma cell line 786-0.
- Tested three vanadium(V)-dipicolinate coordination complexes ([VO2dipic]−, [VO2dipic-OH]−, and [VO2dipic-Cl]−) and simple vanadium salts.
- Assessed viral replication, cytotoxicity, and complex stability under physiological conditions using spectroscopy and speciation profiles.
Main Results:
- The combination of VSVΔ51 with vanadium dipicolinate compounds significantly increased viral replication and cytotoxicity in 786-0 cells.
- All tested dioxovanadium(V) dipicolinate complexes enhanced viral infection and cytotoxicity, similar to vanadate salts and vanadyl cation.
- Viral sensitization was dependent on vanadium; free dipicolinate ligands had no effect.
- Complexes hydrolyzed in cell culture media, generating vanadate.
Conclusions:
- Vanadium dipicolinate derivatives synergize with the oncolytic virus VSVΔ51, enhancing its antitumor effects.
- These findings suggest potential for developing novel pharmaco-viral therapies by combining vanadium compounds with oncolytic viruses.
- The observed synergy in immunovirotherapy mirrors previous findings on the antidiabetic properties of vanadium compounds.
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