Back to Search
Start Over
Triphenylphosphonium derivatives disrupt metabolism and inhibit melanoma growth in vivo when delivered via a thermosensitive hydrogel
- Source :
- PLoS ONE, Vol 15, Iss 12, p e0244540 (2020), PLoS ONE
- Publication Year :
- 2020
- Publisher :
- Public Library of Science (PLoS), 2020.
-
Abstract
- Despite dramatic improvements in outcomes arising from the introduction of targeted therapies and immunotherapies, metastatic melanoma is a highly resistant form of cancer with 5 year survival rates of In vitroexperiments demonstrated that TPP-derivatives modified with aliphatic side chains accumulated in melanoma cell mitochondria; disrupted mitochondrial metabolism; led to increases in steady-state levels of reactive oxygen species; decreased total glutathione; increased the fraction of glutathione disulfide; and caused cell killing by a thiol-dependent process that could be rescued by N-acetylcysteine. Furthermore, TPP-derivative-induced melanoma toxicity was enhanced by glutathione depletion (using buthionine sulfoximine) as well as inhibition of thioredoxin reductase (using auranofin). In addition, there was a structure-activity relationship between the aliphatic side-chain length of TPP-derivatives (5–16 carbons), where longer carbon chains increased melanoma cell metabolic disruption and cell killing.In vivobio-distribution experiments showed that intratumoral administration of a C14-TPP-derivative (12-carbon aliphatic chain), using a slow-release thermosensitive hydrogel as a delivery vehicle, localized the drug at the melanoma tumor site. There, it was observed to persist and decrease the growth rate of melanoma tumors. These results demonstrate that TPP-derivatives selectively induce thiol-dependent metabolic oxidative stress and cell killing in malignant melanoma and support the hypothesis that a hydrogel-based TPP-derivative delivery system could represent a therapeutic drug-delivery strategy for melanoma.
- Subjects :
- Physiology
Toxicology
Pathology and Laboratory Medicine
medicine.disease_cause
Biochemistry
Mice
chemistry.chemical_compound
Medicine and Health Sciences
Melanoma
Materials
Energy-Producing Organelles
Cultured Tumor Cells
Multidisciplinary
Respiration
Temperature
Drug Synergism
Hydrogels
Mitochondria
Cell killing
Oncology
Physical Sciences
Melanoma Cells
Medicine
Female
Biological Cultures
Cellular Structures and Organelles
Research Article
medicine.drug
Cell Physiology
Auranofin
Cell Survival
Amorphous Solids
Science
Materials Science
Bioenergetics
Research and Analysis Methods
Structure-Activity Relationship
Organophosphorus Compounds
Oxygen Consumption
In vivo
Cell Line, Tumor
medicine
Animals
Humans
Buthionine sulfoximine
Buthionine Sulfoximine
Toxicity
Biology and Life Sciences
Cancers and Neoplasms
Cell Biology
Glutathione
Cell Cultures
medicine.disease
Xenograft Model Antitumor Assays
Cell Metabolism
Oxidative Stress
chemistry
Delayed-Action Preparations
Mixtures
Cancer research
Glutathione disulfide
Physiological Processes
Gels
Oxidative stress
Subjects
Details
- ISSN :
- 19326203
- Volume :
- 15
- Database :
- OpenAIRE
- Journal :
- PLOS ONE
- Accession number :
- edsair.doi.dedup.....dc46bacd8920762acdf93cdf319c756e
- Full Text :
- https://doi.org/10.1371/journal.pone.0244540