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Microgel Bioreactors for Cancer Cell Targeting by pH-Dependent Generation of Radicals
Monika Majerská, Martin Jakubec, Vojtěch Klimša
1Institute of Molecular Genetics of the Czech Academy of Sciences, Prague , Vídeňská 1083 , 142 20 Prague 4 , Czech Republic.
Abstract:
The lack of specificity of traditional cytostatics and increasing resistance of cancer cells represent important challenges in cancer therapy. One of the characteristics of cancer cells is their intrinsic oxidative stress caused by higher metabolic activity, mitochondrial malfunction, and oncogene stimulation. This feature can be exploited in the pursuit of more selective cancer therapy, as there is increasing evidence that cancer cells are more sensitive to elevated concentrations of reactive oxygen species than normal cells. In this study, we demonstrate a new concept for cancer cell targeting by in situ production of radicals under physiological conditions. The biologically active radicals are produced in the milieu of cancer cells by enzymatic conversion from an inactive precursor, 2,2'-azino-bis(3-ethylbenzothiazoline-6-sulfonic acid)diammonium salt, by using miniature bioreactors represented by cell-sized microgels containing immobilized laccase. We utilize the pH-dependent activity of laccase to generate radicals only at a lower pH (5.7-6.1) that is characteristic of the tumor microenvironment. The composition of the microgels was optimized so as to allow sufficient substrate and radical diffusion, high enzyme activity, and stability under physiological conditions. The functionality of this system was evaluated on three cancer cell lines (HeLa, HT-29, and DLD1) and the cytotoxicity of in situ-produced radicals was successfully proven in all cases. These results demonstrate that cancer cell targeting by in situ-generated radicals using miniature enzymatic reactors may represent an alternative to traditional cytostatics. In particular, the pH-dependence of radical generation and their short-lived nature can ensure localized functionality in the tumor microenvironment and thereby reduce systemic side-effects.
Insights
This study introduces a novel cancer therapy using microgels to produce radicals selectively within tumor environments. This approach targets cancer cells by exploiting their sensitivity to reactive oxygen species, offering a promising alternative to traditional chemotherapy.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Cancer Therapeutics
Background:
- Traditional cytostatics face challenges with specificity and cancer cell resistance.
- Cancer cells exhibit intrinsic oxidative stress, making them potentially more sensitive to reactive oxygen species (ROS).
- Targeting cancer cells by exploiting their unique metabolic vulnerabilities is a key area of research.
Purpose of the Study:
- To develop a novel cancer cell targeting strategy using in situ radical production.
- To create miniature enzymatic bioreactors for localized radical generation within the tumor microenvironment.
- To evaluate the efficacy and selectivity of this new therapeutic concept.
Main Methods:
- Utilized cell-sized microgels containing immobilized laccase as miniature bioreactors.
- Employed 2,2'-azino-bis(3-ethylbenzothiazoline-6-sulfonic acid)diammonium salt as an inactive radical precursor.
- Leveraged the pH-dependent activity of laccase to confine radical generation to the acidic tumor microenvironment (pH 5.7-6.1).
- Optimized microgel composition for substrate/radical diffusion, enzyme activity, and stability.
Main Results:
- Successfully demonstrated in situ radical production and subsequent cytotoxicity in HeLa, HT-29, and DLD1 cancer cell lines.
- Confirmed the pH-dependent radical generation, ensuring localized activity within the tumor microenvironment.
- Showcased the potential for reduced systemic side-effects due to the localized nature and short-lived radicals.
Conclusions:
- In situ radical generation using miniature enzymatic reactors presents a viable alternative to traditional cytostatics.
- The pH-sensitive and localized radical production offers a targeted approach to cancer therapy.
- This method holds promise for improving cancer treatment efficacy while minimizing off-target effects.
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