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Updated: May 17, 2026

Experimental Approaches to Study Mitochondrial Localization and Function of a Nuclear Cell Cycle Kinase, Cdk1
Published on: February 25, 2016
Shikonin directly targets mitochondria and causes mitochondrial dysfunction in cancer cells
Benjamin Wiench1, Tolga Eichhorn, Malte Paulsen
1Department of Pharmaceutical Biology, Institute of Pharmacy and Biochemistry, Johannes Gutenberg University, Staudinger Weg 5, 55128 Mainz, Germany.
Abstract:
Chemotherapy is a mainstay of cancer treatment. Due to increased drug resistance and the severe side effects of currently used therapeutics, new candidate compounds are required for improvement of therapy success. Shikonin, a natural naphthoquinone, was used in traditional Chinese medicine for the treatment of different inflammatory diseases and recent studies revealed the anticancer activities of shikonin. We found that shikonin has strong cytotoxic effects on 15 cancer cell lines, including multidrug-resistant cell lines. Transcriptome-wide mRNA expression studies showed that shikonin induced genetic pathways regulating cell cycle, mitochondrial function, levels of reactive oxygen species, and cytoskeletal formation. Taking advantage of the inherent fluorescence of shikonin, we analyzed its uptake and distribution in live cells with high spatial and temporal resolution using flow cytometry and confocal microscopy. Shikonin was specifically accumulated in the mitochondria, and this accumulation was associated with a shikonin-dependent deregulation of cellular Ca(2+) and ROS levels. This deregulation led to a breakdown of the mitochondrial membrane potential, dysfunction of microtubules, cell-cycle arrest, and ultimately induction of apoptosis. Seeing as both the metabolism and the structure of mitochondria show marked differences between cancer cells and normal cells, shikonin is a promising candidate for the next generation of chemotherapy.
Insights
Shikonin, a natural compound, exhibits potent anticancer effects against diverse cancer cells, including drug-resistant types. Its accumulation in mitochondria disrupts cellular functions, leading to apoptosis and offering a promising avenue for novel chemotherapy development.
Area of Science:
- Natural Product Chemistry
- Cancer Biology
- Pharmacology
Background:
- Current chemotherapy faces challenges with drug resistance and severe side effects.
- Shikonin, a naphthoquinone from traditional Chinese medicine, shows potential anticancer properties.
Purpose of the Study:
- To investigate the anticancer mechanisms and efficacy of shikonin.
- To evaluate shikonin's potential as a next-generation chemotherapy agent.
Main Methods:
- Cytotoxicity assays on 15 cancer cell lines.
- Transcriptome-wide mRNA expression analysis.
- Flow cytometry and confocal microscopy for shikonin uptake and distribution studies.
Main Results:
- Shikonin demonstrated strong cytotoxic effects, including on multidrug-resistant cell lines.
- Shikonin induced pathways regulating cell cycle, mitochondrial function, reactive oxygen species (ROS), and cytoskeleton.
- Shikonin accumulated in mitochondria, disrupting Ca(2+) and ROS levels, leading to apoptosis.
Conclusions:
- Shikonin effectively induces cancer cell death through mitochondrial disruption and apoptosis.
- Mitochondrial targeting and differential cancer cell metabolism make shikonin a promising candidate for next-generation chemotherapy.
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