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Isolation and Characterization of Tumor-initiating Cells from Sarcoma Patient-derived Xenografts
Published on: June 13, 2019
Oncolytic designer host defense peptide suppresses growth of human liposarcoma
Lars Steinstraesser1, Cornelius Schubert, Jennifer Hauk
1Department of Plastic and Reconstructive Surgery, BG University Hospital Bergmannsheil, Ruhr University Bochum, Bochum, Nordrhein-Westfalen, Germany. lars.steinstraesser@ruhr-uni-bochum.de
Abstract:
Sarcomas display a rare and heterogeneous group of tumors. Treatment options are limited. Host defense peptides (HDPs), effector molecules of the innate immune system, might provide a more effective treatment option. The aim of our study was to analyze the oncolytic activity and mode of action of a designer HDP. In vitro, the human liposarcoma cell line SW-872 and primary human fibroblasts as a control were exposed to [D]-K(3)H(3)L(9), a 15-mer D,L-amino acid designer peptide. Cell growth (MTT assay), proliferation (BrdU assay) and genotoxicity (TUNEL assay) were analyzed. The mode of action was examined via fluorescence-activated cell sorter (FACS) analysis and confocal laser scanning microscopy. In vivo, [D]-K(3)H(3)L(9) (n = 7) was administered intratumorally in a SW-872 xenograft mouse model (Foxn1nu/nu). Phosphate buffered saline served as a control (n = 5). After 4 weeks, tumor sections were histologically analyzed with respect to proliferation, cytotoxicity, vessel density and signs of apoptosis and necrosis, respectively. In vitro, [D]-K(3)H(3)L(9) highly significantly (p < 0.01) inhibited cell metabolism and proliferation. TUNEL assay revealed corresponding genotoxicity. FACS analysis suggested induction of necrosis as a cause of cell death. The mean tumor volume of the control group exponentially increased sevenfold, whereas the mean tumor growth was negligible in the treatment group. Macroscopically, [D]-K(3)H(3)L(9) induced full tumor remission in 43% of treated animals and partial remission in 43%. Vessel density was significantly reduced by 52%. Morphological analyses supported the hypothesis of cancer cell killing by necrosis. In summary, [D]-K(3)H(3)L(9) exerts very promising oncolytic activity on liposarcoma cells. Our study demonstrates the potential of HDPs as a novel therapeutic option in future soft tissue sarcoma therapy.
Insights
Host defense peptides (HDPs) show promise for treating soft tissue sarcomas. A designer HDP, [D]-K(3)H(3)L(9), demonstrated significant oncolytic activity against liposarcoma cells in vitro and in vivo, inducing tumor remission and reducing vessel density.
Area of Science:
- Oncology
- Immunology
- Biochemistry
Background:
- Sarcomas are rare, heterogeneous tumors with limited treatment options.
- Host defense peptides (HDPs) are innate immune molecules with potential therapeutic applications.
- Investigating novel treatments for soft tissue sarcomas is crucial.
Purpose of the Study:
- To analyze the oncolytic activity and mechanism of action of a designer HDP, [D]-K(3)H(3)L(9).
- To evaluate the efficacy of [D]-K(3)H(3)L(9) in a liposarcoma cell line and a xenograft mouse model.
Main Methods:
- In vitro studies used liposarcoma cell line SW-872 and fibroblasts, assessing cell growth, proliferation, and genotoxicity.
- Mode of action was investigated using fluorescence-activated cell sorting (FACS) and confocal microscopy.
- In vivo studies involved intratumoral administration of [D]-K(3)H(3)L(9) in a SW-872 xenograft mouse model, followed by histological analysis.
Main Results:
- In vitro, [D]-K(3)H(3)L(9) significantly inhibited liposarcoma cell metabolism, proliferation, and induced genotoxicity, suggesting cell death via necrosis.
- In vivo, [D]-K(3)H(3)L(9) treatment resulted in negligible tumor growth, with 43% complete and 43% partial tumor remission.
- Vessel density was reduced by 52% in treated tumors, supporting the necrotic cell death mechanism.
Conclusions:
- The designer HDP [D]-K(3)H(3)L(9) exhibits significant oncolytic activity against liposarcoma cells.
- HDPs represent a promising novel therapeutic strategy for soft tissue sarcoma treatment.
- Further research into HDPs could lead to new treatment options for sarcomas.

