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Using Human Induced Pluripotent Stem Cell-derived Hepatocyte-like Cells for Drug Discovery
Published on: May 19, 2018
Targeting cancer stem cells in drug discovery: Current state and future perspectives
Fang-Yu Du1, Qi-Fan Zhou1, Wen-Jiao Sun1
1Key Laboratory of Structure-Based Drug Design and Discovery of Ministry of Education, Shenyang Pharmaceutical University, Shenyang 110016, Liaoning Province, China.
Abstract:
In recent decades, cancer stem cells (CSCs) have been increasingly identified in many malignancies. CSC-related signaling pathways and their functions provide new strategies for treating cancer. The aberrant activation of related signaling pathways (e.g., Wnt, Notch, and Hedgehog pathways) has been linked to multiple types of malignant tumors, which makes these pathways attractive targets for cancer therapy. CSCs display many characteristic features, such as self-renewal, differentiation, high tumorigenicity, and drug resistance. Therefore, there is an urgent need to develop new therapeutic strategies to target these pathways to control stem cell replication, survival, and differentiation. Notable crosstalk occurs among different signaling pathways and potentially leads to compensatory escape. Therefore, multitarget inhibitors will be one of the main methods to overcome the drug resistance of CSCs. Many small molecule inhibitors of components of signaling pathways in CSCs have entered clinical trials, and some inhibitors, such as vismodegib, sonidegib, and glasdegib, have been approved. Tumor cells are susceptible to sonidegib and vismodegib resistance due to mutations in the Smo protein. The signal transducers and activators of transcription 3 (STAT3) inhibitor BBI608 is being evaluated in a phase III trial for a variety of cancers. Structural derivatives of BBI608 are the main focus of STAT3 inhibitor development, which is another strategy for CSC therapy. In addition to the potential pharmacological inhibitors targeting CSC-related signaling pathways, other methods of targeting CSCs are available, such as nano-drug delivery systems, mitochondrion targeting, autophagy, hyperthermia, immunotherapy, and CSC microenvironment targeting. In addition, we summarize the latest advances in the clinical development of agents targeting CSC-related signaling pathways and other methods of targeting CSCs.
Insights
Cancer stem cells (CSCs) drive tumor growth and resistance. Targeting CSC signaling pathways with multitarget inhibitors and novel strategies offers new hope for effective cancer therapy.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Cancer stem cells (CSCs) are implicated in various malignancies, exhibiting self-renewal, differentiation, and drug resistance.
- Aberrant signaling pathways like Wnt, Notch, and Hedgehog are crucial for CSC functions and tumor progression.
- CSCs pose significant challenges in cancer treatment due to their inherent resistance mechanisms.
Purpose of the Study:
- To review current therapeutic strategies targeting CSCs and their associated signaling pathways.
- To highlight the potential of multitarget inhibitors in overcoming CSC drug resistance.
- To summarize recent clinical advancements and novel approaches for CSC-directed cancer therapy.
Main Methods:
- Review of literature on CSCs, signaling pathways, and therapeutic interventions.
- Analysis of clinical trial data for approved and investigational CSC-targeting agents.
- Exploration of emerging strategies beyond pharmacological inhibition.
Main Results:
- Several small molecule inhibitors targeting CSC pathways (e.g., vismodegib, sonidegib, glasdegib) are approved or in trials.
- STAT3 inhibitors, like BBI608, show promise in CSC therapy.
- Drug resistance in CSCs can arise from pathway mutations, necessitating multitarget approaches.
Conclusions:
- Targeting CSC signaling pathways is a promising strategy for cancer treatment.
- Multitarget inhibitors and novel approaches like nano-drug delivery and immunotherapy are crucial for overcoming CSC resistance.
- Continued research and clinical development are essential for advancing CSC-directed cancer therapies.
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