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SMO-CRISPR-mediated apoptosis in CD133-targeted cancer stem cells and tumor growth inhibition

Cited 9 time in Web of Science Cited 9 time in Scopus
Authors

Pandey, Shambhavi; Lee, Myung Chul; Lim, Jae Woon; Park, Sang Bae; Choung, Yun Hoon; Kim, Jae Eun; Garg, Pankaj; Chung, Jong Hoon

Issue Date
2023-05
Publisher
Elsevier BV
Citation
Journal of Controlled Release, Vol.357, pp.94-108
Abstract
Cancer stem cells (CSCs) possess the ability to indefinitely proliferate and resist therapy, leading to cancer relapse and metastasis. To address this, we aimed to develop a CSC-inclusive therapy that targets both CSCs and non-CSC glioblastoma (GBM) cells. We accomplished this by using a smoothened (SMO) CRISPR/Cas9 plasmid to suppress the hedgehog pathway in CSCs, in combination with inhibiting the serine hydroxymethyl transferase 1 (SHMT1)-driven thymidylate biosynthesis pathway in non-CSC GBM cells using SHMT1 siRNA (siSHMT1). We targeted CSCs using a CD133 peptide attached to an osmotically active vitamin B6-coupled polydixylitol vector (VPX-CD133) by a photoactivatable heterobifunctional linker. VPX-CD133 nanocomplexes in comparison to VPX complexes remarkably targeted and transfected CSCs both in vitro and in subcutaneous tumor. The VPX-CD133-mediated targeted delivery of SMO CRISPR in CSCs led to SMO suppression that negatively affected its growth. Next, we performed comprehensive therapy in xenograft mice using VPX-CD133, which delivered SMO-CRISPR to CSCs, and VPX, which delivered siSHMT1 to non-CSC GBM cells. The combined treatment induced apoptosis in a large number of cells, reduced tumor volume by up to 81%, and improved the health of treated mice significantly. By eliminating CSCs together with the non-CSC GBM cells, the combined study paves the way for developing CSC-inclusive therapies for GBM.
ISSN
0168-3659
URI
https://hdl.handle.net/10371/219087
DOI
https://doi.org/10.1016/j.jconrel.2023.03.023
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  • College of Agriculture and Life Sciences
  • Department of Biosystems Engineering
Research Area Biomaterials, Micro-, Nanofabrication, Tissue Engineering, 나노가공, 마이크로, 생체재료, 조직공학

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