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Studying Pancreatic Cancer Stem Cell Characteristics for Developing New Treatment Strategies
Published on: June 20, 2015
Cancer Stem Cells and Stem Cell Tumors in Drosophila
Shree Ram Singh1, Poonam Aggarwal1, Steven X Hou2
1The Basic Research Laboratory, Center for Cancer Research, National Cancer Institute at Frederick, National Institutes of Health, Frederick, MD, USA.
Abstract:
Accumulative studies suggest that a fraction of cells within a tumor, known as cancer stem cells (CSCs) that initiate tumors, show resistance to most of the therapies, and causes tumor recurrence and metastasis. CSCs could be either transformed normal stem cells or reprogrammed differentiated cells. The eventual goal of CSC research is to identify pathways that selectively regulate CSCs and then target these pathways to eradicate CSCs. CSCs and normal stem cells share some common features, such as self-renewal, the production of differentiated progeny, and the expression of stem-cell markers, however, CSCs vary from normal stem cells in forming tumors. Specifically, CSCs are normally resistant to standard therapies. In addition, CSCs and non-CSCs can be mutually convertible in response to different signals or microenvironments. Even though CSCs are involved in human cancers, the biology of CSCs, is still not well understood, there are urgent needs to study CSCs in model organisms. In the last several years, discoveries in Drosophila have greatly contributed to our understanding of human cancer. Stem-cell tumors in Drosophila share various properties with human CSCs and maybe used to understand the biology of CSCs. In this chapter, we first briefly review CSCs in mammalian systems, then discuss stem-cell tumors in the Drosophila posterior midgut and Malpighian tubules (kidney) and their unique properties as revealed by studying oncogenic Ras protein (RasV12)-transformed stem-cell tumors in the Drosophila kidney and dominant-negative Notch (NDN)-transformed stem-cell tumors in the Drosophila intestine. At the end, we will discuss potential approaches to eliminate CSCs and achieve tumor regression. In future, by screening adult Drosophila neoplastic stem-cell tumor models, we hope to identify novel and efficacious compounds for the treatment of human cancers.
Insights
Cancer stem cells (CSCs) drive tumor growth and resistance. Studying CSCs in Drosophila offers insights into human cancer and potential therapeutic targets for eliminating these cells.
Area of Science:
- Oncology
- Developmental Biology
- Genetics
Background:
- Cancer stem cells (CSCs) are a subpopulation of tumor cells responsible for tumor initiation, recurrence, and metastasis.
- CSCs exhibit resistance to conventional therapies and share self-renewal properties with normal stem cells.
- Understanding CSC biology is crucial for developing effective cancer treatments, necessitating research in model organisms.
Purpose of the Study:
- To review cancer stem cells (CSCs) in mammalian systems.
- To discuss stem-cell tumors in Drosophila, focusing on RasV12-transformed kidney tumors and N(DN)-transformed intestinal tumors.
- To explore potential therapeutic strategies for eliminating CSCs and achieving tumor regression.
Main Methods:
- Review of existing literature on CSCs in mammalian systems.
- Analysis of stem-cell tumor models in Drosophila, specifically focusing on oncogenic Ras (RasV12) and dominant-negative Notch (N(DN)) pathways.
- Discussion of potential CSC eradication and tumor regression approaches.
Main Results:
- Drosophila stem-cell tumors share properties with human CSCs, providing a valuable model system.
- Studies involving RasV12 and N(DN) in Drosophila have revealed unique aspects of stem-cell tumor biology.
- The research highlights the potential of Drosophila models for understanding CSCs and identifying therapeutic targets.
Conclusions:
- Drosophila serves as a powerful model organism for unraveling the complexities of cancer stem cell biology.
- Targeting CSCs holds promise for developing novel cancer therapies aimed at tumor eradication.
- Future research in Drosophila may lead to the discovery of new compounds for human cancer treatment.
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