In Vitro Contact Guidance of Glioblastoma Cells on Metallic Biomaterials
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Date
2021
Authors
Journal Title
Journal ISSN
Volume Title
Publisher
Springer
Open Access Color
GOLD
Green Open Access
Yes
OpenAIRE Downloads
80
OpenAIRE Views
110
Publicly Funded
No
Abstract
Cancer cells' ability to sense their microenvironment and interpret these signals for the regulation of directional adhesion plays crucial role in cancer invasion. Furthermore, given the established influence of mechanical properties of the substrate on cell behavior, the present study aims to elucidate the relationship between the contact guidance of glioblastoma cell (GBM) and evolution of microstructural and mechanical properties of the implants. SEM analyses of the specimens subjected to 5 and 25% of plastic strains revealed directional groove-like structures in micro and submicro-sizes, respectively. Microscale cytoplasmic protrusions of GBMs showed elongation favored along the grooves created via deformation markings on 5% deformed sample. Whereas filopodia, submicro-sized protrusions facilitating cancer invasion, elongated in the direction perpendicular to the deformation markings on the 25% deformed sample, which might lead to easy and rapid retraction. Furthermore, number of cell attachment was 1.7-fold greater on 25% deformed sample, where these cells showed the greatest cellular aspect ratio. The directional attachment and contact guidance of GBMs was reported for the first time on metallic implants and these findings propose the idea that GBM response could be regulated by controlling the spacing of the deformation markings, namely the degree of plastic deformation. These findings can be applied in the design of cell-instructive implants for therapeutic purposes to suppress cancer dissemination.
Description
Uzer, Benay/0000-0001-8778-1660;
ORCID
Keywords
Cytoplasm, Cell Culture Techniques, Groove (engineering), FOS: Mechanical engineering, Biocompatible Materials, Cancer cell, Cell Communication, Biochemistry, Engineering, Cell Movement, Tumor Microenvironment, Cell Mechanics, Nanotechnology, Pseudopodia, Cancer, Filopodia, Bone Tissue Engineering and Biomaterials, Deformation (meteorology), Perpendicular, Life Sciences, Chemistry, Metals, Ultimate tensile strength, Manufacture and Application of Cellular Materials, Physical Sciences, Metallurgy, Adhesion, Medicine, Biocompatibility Studies, Biomedical engineering, Composite material, Cell Mechanics and Extracellular Matrix Interactions, Osteoblast Adhesion, Surface Properties, Biomedical Engineering, Biophysics, Geometry, Cell Migration, Cancer research, In Vitro Techniques, FOS: Medical engineering, Biochemistry, Genetics and Molecular Biology, Cell Adhesion, FOS: Mathematics, Genetics, Humans, Neoplasm Invasiveness, Cell migration, Elongation, Biology, FOS: Nanotechnology, Tissue Engineering, Mechanical Engineering, Microscale chemistry, Cell adhesion, Cell Biology, Materials science, Mathematics education, FOS: Biological sciences, Microscopy, Electron, Scanning, Anisotropy, Stress, Mechanical, Cell, Glioblastoma, Mathematics
Fields of Science
0301 basic medicine, 0303 health sciences, 03 medical and health sciences
Citation
WoS Q
Q2
Scopus Q
Q2

OpenCitations Citation Count
2
Source
Journal of Materials Science-Materials in Medicine
Volume
32
Issue
4
Start Page
End Page
PlumX Metrics
Citations
Scopus : 3
PubMed : 1
Captures
Mendeley Readers : 14
SCOPUS™ Citations
3
checked on Mar 04, 2026
Web of Science™ Citations
2
checked on Mar 04, 2026
Page Views
3
checked on Mar 04, 2026
Downloads
4
checked on Mar 04, 2026
Google Scholar™

OpenAlex FWCI
0.2154
Sustainable Development Goals
3
GOOD HEALTH AND WELL-BEING


