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A Perspective on the Characterization of Early Neural Progenitor Cell-Derived Extracellular Vesicles for Targeted Delivery to Neuroblastoma Cells.
Kirbas, Oguz Kaan; Bozkurt, Batuhan Turhan; Yildirim, Melis Rahime; Tasli, Pakize Neslihan; Abdik, Hüseyin; Sahin, Fikrettin; Avsar Abdik, Ezgi.
Affiliation
  • Kirbas OK; Department of Genetics and Bioengineering, Faculty of Engineering and Architecture, Yeditepe University, Istanbul, 34755, Turkey.
  • Bozkurt BT; Department of Genetics and Bioengineering, Faculty of Engineering and Architecture, Yeditepe University, Istanbul, 34755, Turkey.
  • Yildirim MR; Department of Genetics and Bioengineering, Faculty of Engineering and Architecture, Yeditepe University, Istanbul, 34755, Turkey.
  • Tasli PN; Department of Genetics and Bioengineering, Faculty of Engineering and Architecture, Yeditepe University, Istanbul, 34755, Turkey.
  • Abdik H; Department of Molecular Biology and Genetics, Faculty of Engineering and Natural Sciences, Istanbul Sabahattin Zaim University, Istanbul, 34303, Turkey.
  • Sahin F; Department of Genetics and Bioengineering, Faculty of Engineering and Architecture, Yeditepe University, Istanbul, 34755, Turkey.
  • Avsar Abdik E; Department of Genomics, Faculty of Aquatic Sciences, Istanbul University, Istanbul, 34134, Turkey. e.avsarabdik@istanbul.edu.tr.
Neurochem Res ; 49(9): 2364-2378, 2024 Sep.
Article in En | MEDLINE | ID: mdl-38837091
ABSTRACT
As an element of the cellular signaling systems, extracellular vesicles (EVs) exhibit many desirable traits for usage as targeted delivery vehicles. When administered, EVs cause little to no toxic or immune response, stay in circulation for longer periods compared to synthetic carriers, preferentially accumulate in tissues that are the same or similar to their cell-of-origin and can pass through the blood-brain barrier. Combined, these traits make neural EVs a particularly promising tool for delivering drugs to the brain. This study aims to combine tissue and EVs engineering to prepare neural differentiated cells derived EVs that exhibit neural properties, to develop an effective, tissue-homing drug and gene delivery platform for the brain. Early neural differentiated cell-derived EVs were produced with neural characteristics from neural differentiated human neonatal dermal fibroblasts. The EVs carried key neural proteins such as Nestin, Sox2 and Doublecortin. The cellular uptake of early neural differentiated cell-derived EVs was higher compared to non-neural EVs during in vitro uptake assays on neuroblastoma cells. Moreover, eND-EVs were significantly decreased the viability of neuroblastoma cells. In conclusion, this study revealed that early neural differentiated cell-derived EVs have potential as a promising drug carrier for the treatment of various neural disorders.
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Full text: 1 Database: MEDLINE Main subject: Neural Stem Cells / Extracellular Vesicles / Neuroblastoma Limits: Humans Language: En Year: 2024 Type: Article

Full text: 1 Database: MEDLINE Main subject: Neural Stem Cells / Extracellular Vesicles / Neuroblastoma Limits: Humans Language: En Year: 2024 Type: Article