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Pharmacologic Induction of Epidermal Melanin and Protection Against Sunburn in a Humanized Mouse Model
Published on: September 7, 2013
Multidrug resistance decreases with mutations of melanosomal regulatory genes
Tong Xie1, Thuyen Nguyen, Melanie Hupe
1Department of Dermatology, University of California-San Francisco, San Francisco, California, USA.
Abstract:
Whereas resistance to chemotherapy has long impeded effective treatment of metastatic melanoma, the mechanistic basis of this resistance remains unknown. One possible mechanism of drug resistance is alteration of intracellular drug distribution either by drug efflux or sequestration into intracellular organelles. Melanomas, as well as primary melanocytes from which they arise, have intracellular organelles, called melanosomes, wherein the synthesis and storage of the pigment melanin takes place. In this study, comparisons of congenic cells with and without functional molecules regulating melanosome formation show that sensitivity to the chemotherapeutic agent cis-diaminedichloroplatinum II (cis-platin) significantly increases with the mutation of genes regulating melanosome formation, concomitant disruption of melanosome morphology, and loss of mature melanosomes. Absence of the melanosomal structural protein gp100/Pmel17 causes increased cis-platin sensitivity. Independent mutations in three separate genes that regulate melanosome biogenesis (Dtnbp1, Pldn, Vps33a) also result in increased cis-platin sensitivity. In addition, a mutation of the gene encoding the integral melanosomal protein tyrosinase, resulting in aberrant melanosome formation, also causes increased cis-platin sensitivity. Furthermore, sensitivity to agents in other chemotherapeutic classes (e.g., vinblastine and etoposide) also increased with the mutation of Pldn. In contrast, a mutation in another melanosomal regulatory gene, Hps1, minimally affects melanosome biogenesis, preserves the formation of mature melanosomes, and has no effect on cis-platin or vinblastine response. Together, these data provide the first direct evidence that melanosomal regulatory genes influence drug sensitivity and that the presence of mature melanosomes likely contributes to melanoma resistance to therapy.
Insights
Melanoma cells with disrupted melanosomes show increased sensitivity to chemotherapy drugs like cis-platin. This suggests mature melanosomes contribute to drug resistance in melanoma, offering new therapeutic targets.
Area of Science:
- Melanoma research
- Cancer biology
- Drug resistance mechanisms
Background:
- Chemotherapy resistance is a major challenge in treating metastatic melanoma.
- The underlying mechanisms of this resistance are not fully understood.
- Intracellular drug sequestration or efflux is a potential resistance pathway.
Purpose of the Study:
- To investigate the role of melanosomes in melanoma chemotherapy resistance.
- To determine if melanosomal regulatory genes impact sensitivity to anti-cancer drugs.
Main Methods:
- Comparison of congenic melanoma cells with and without functional melanosome-regulating molecules.
- Assessment of cis-diaminedichloroplatinum II (cis-platin) sensitivity in cells with mutated melanosome genes.
- Evaluation of sensitivity to other chemotherapeutic agents (vinblastine, etoposide).
Main Results:
- Mutations in melanosome formation genes increased cis-platin sensitivity.
- Loss of mature melanosomes, including absence of gp100/Pmel17, enhanced drug sensitivity.
- Mutations in Dtnbp1, Pldn, and Vps33a genes increased cis-platin sensitivity.
- Aberrant tyrosinase expression also led to increased cis-platin sensitivity.
- Pldn mutations increased sensitivity to vinblastine and etoposide.
- Hps1 mutations, with minimal melanosome disruption, did not affect drug response.
Conclusions:
- Melanosomal regulatory genes significantly influence melanoma drug sensitivity.
- Mature melanosomes appear to play a role in conferring resistance to chemotherapy.
- Targeting melanosome biogenesis or function could be a strategy to overcome melanoma drug resistance.
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