The interaction between the osteosarcoma cell and stainless steel surface, modified by high-fluence, nanosecond laser pulses
Взаимодействие клеток остеосаркомы с поверхностью нержавеющей стали, модифицированной высокоэнергетическими наносекундными лазерными импульсами
2020-05-05
SCID: 54.1/vggr3z7s
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hexavalent chromium oxidelaser-textured stainless steelnanosecond Nd:YAG laserosteosarcoma cell adhesionsurface wettability
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Abstract (AI)
The irradiation of metallic surfaces by high-fluence laser pulses in an oxygen-containing atmosphere inevitably modifies the surface topography, chemistry, and wettability. These modifications significantly influence cell-surface interactions and, consequently, surface biocompatibility. We investigate how surface texturing by high-fluence nanosecond laser pulses from a Nd:YAG laser (wavelength of 1064 nm) influences cell adhesion and morphology with the aim of assessing its impact on initial cell behaviour. Quantitative and qualitative analysis of osteosarcoma cell adhesion, viability, and cell morphology were evaluated after 24-hour exposure to non-treated and laser-textured stainless-steel (AISI 316L) surfaces by fluorescent and scanning electron microscopy. The results reveal that this, initial interaction between the cells and the laser-textured surfaces leads to round shaped cells with a smaller footprint. Contrarily, on the non-processed stainless-steel and control-glass surfaces the polygonal, highly elongated, and flattened cells are observed. The cells on the laser-textured surfaces are less dendritic, with short tubular protrusions and an overexpression of extracellular vesicles, which are rarely found on non-treated and control samples. This likely happens due to the formation of nanostructured, high-temperature oxides that are induced by laser ablation. The analysis by X-ray photoelectron spectroscopy reveals that the laser-textured stainless-steel surfaces contain Cr hexavalent oxide, which is more toxic than the native oxide layer on the non-processed samples.
Key Findings
1
After 24 hours, osteosarcoma cells on laser-textured AISI 316L surfaces were rounder and had smaller footprints than cells on untreated steel and control glass.
2
High-fluence, nanosecond Nd:YAG laser texturing substantially alters stainless-steel surface topography, chemistry, and wettability, thereby changing osteosarcoma cell interactions.
3
Laser-induced nanostructured, high-temperature oxides likely drive the altered initial cell morphology and adhesion behavior.
4
Laser-textured surfaces produced less dendritic cells with shorter tubular protrusions and increased extracellular-vesicle expression compared with untreated and control surfaces.
5
X-ray photoelectron spectroscopy detected hexavalent chromium oxide on laser-textured steel, suggesting greater potential toxicity than the native oxide layer on untreated samples.
Research Object
Osteosarcoma cells interacting with non-treated and high-fluence nanosecond-laser-textured AISI 316L stainless-steel surfaces
Research Subject
Initial cell–surface interaction, including adhesion, viability, morphology, protrusion formation, and the influence of laser-induced nanostructured oxides and surface chemistry
Publication Details
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2020-05-05
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