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Metal-based molecules in the treatment of cancer: From bench to bedside
Giuliano Bernal1, Gisela Aquea1, Sebastián Ramírez-Rivera1
1Laboratory of Molecular and Cellular Biology of Cancer, Department of Biomedical Sciences, Faculty of Medicine, Universidad Católica del Norte, Coquimbo, 1781421, Chile.
Abstract:
Cancer remains one of the leading causes of death in the world, with more than 9 million deaths in 2022, a number that continues to rise. This highlights the urgent need for the development of new drugs, with enhanced antitumor capabilities and fewer side effects. Metal-based drugs have been used in clinical practice since the late 1970s, beginning with the introduction of cisplatin. Later, two additional platinum-based molecules, carboplatin, and oxaliplatin, were introduced, and all three continue to be widely used in the treatment of various cancers. However, despite their significant anticancer activity, the undesirable side effects of these drugs have motivated the scientific community to explore other metal-based complexes with greater anticancer potential and fewer adverse effects. In this context, metals such as ruthenium, copper, gold, zinc, palladium, or iridium, present promising alternatives for the development of new anticancer agents. Unfortunately, although thousands of metal-based drugs have been synthesized and tested both in vitro and in animal models, only a few ruthenium-based drugs have entered clinical trials in recent years. Meanwhile, many other molecules with comparable or even greater anticancer potential have not advanced beyond the laboratory stage. In this review, we will revisit the mechanisms of action and anticancer activities of established platinum-based drugs and explore their use in recent clinical trials. Additionally, we will examine the development of potential new metal-based drugs that could one day contribute to cancer treatment worldwide.
Insights
The urgent need for novel cancer drugs is growing. This review explores established platinum-based chemotherapy and promising alternative metal-based drugs for improved cancer treatment.
Area of Science:
- Oncology
- Medicinal Chemistry
- Pharmacology
Background:
- Cancer is a leading global cause of death, necessitating innovative treatments.
- Platinum-based drugs like cisplatin, carboplatin, and oxaliplatin are mainstays in cancer therapy but have significant side effects.
- The limitations of current treatments drive research into novel metal-based anticancer agents.
Purpose of the Study:
- To review the mechanisms of action and clinical applications of platinum-based anticancer drugs.
- To explore the potential of alternative metal complexes (ruthenium, copper, gold, zinc, palladium, iridium) in cancer treatment.
- To bridge the gap between laboratory research and clinical application for new metal-based cancer therapies.
Main Methods:
- Literature review of established platinum-based drugs and their clinical trials.
- Exploration of preclinical data and mechanisms of action for novel metal-based compounds.
- Analysis of recent advancements in metal-based drug development for oncology.
Main Results:
- Platinum-based drugs remain critical but have dose-limiting toxicities.
- Numerous metal complexes show significant in vitro and in vivo anticancer activity.
- Few novel metal-based drugs, particularly ruthenium complexes, have progressed to clinical trials.
Conclusions:
- There is a critical need for anticancer drugs with improved efficacy and reduced side effects.
- Alternative metal-based drugs offer promising therapeutic potential beyond platinum agents.
- Further research and clinical translation are essential to realize the full potential of novel metal-based cancer therapies.
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