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Template-free preparation of iron oxide loaded hollow silica spheres and their anticancer proliferation capabilities

Hollow silica spheres (HSS) exhibited high-specific surface area, low toxicity, low density, and good biocompatibility. The effectivity of HSS material can be improved further by loading nanoparticles for smart biological applications. In this work, magnetic nanoparticle (iron oxide; Fe(3)O(4))-load...

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Autores principales: Akhtar, Sultan, Gunday, Seyda Tugba, Alqosaibi, Amany I., Aldossary, Hanan, Bozkurt, Ayhan, Khan, Firdos Alam
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8981845/
https://www.ncbi.nlm.nih.gov/pubmed/35424646
http://dx.doi.org/10.1039/d1ra08216g
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author Akhtar, Sultan
Gunday, Seyda Tugba
Alqosaibi, Amany I.
Aldossary, Hanan
Bozkurt, Ayhan
Khan, Firdos Alam
author_facet Akhtar, Sultan
Gunday, Seyda Tugba
Alqosaibi, Amany I.
Aldossary, Hanan
Bozkurt, Ayhan
Khan, Firdos Alam
author_sort Akhtar, Sultan
collection PubMed
description Hollow silica spheres (HSS) exhibited high-specific surface area, low toxicity, low density, and good biocompatibility. The effectivity of HSS material can be improved further by loading nanoparticles for smart biological applications. In this work, magnetic nanoparticle (iron oxide; Fe(3)O(4))-loaded pure HSS (c-HSS-Fe) were synthesized successfully using a template-free chemical route and investigated for their anticancer cell proliferation capabilities against cancerous cell lines: human colorectal carcinoma cells (HCT-116). The structure, morphology, chemical bonding, and thermal stability of the prepared HSS derivatives were studied using spectroscopic and microscopic techniques. Our analyses confirmed the successful preparation of Fe(3)O(4) loaded HSS material (sphere diameter ∼515 nm). The elemental analysis revealed the existence of Fe along with Si and O in the Fe(3)O(4) loaded HSS material, thus reaffirming the production of the c-HSS-Fe product. The effects of silica spheres on HCT-116 cells were examined microscopically and by MTT assays. It was observed that the c-HSS-Fe demonstrated dose-dependent behavior and significantly reduced the cancer cell proliferation at higher doses. Our results showed that c-HSS-Fe was more effective and profound in reducing the cancer cells' activities as compared to unloaded HSS material where the cancer cells have undergone nuclear disintegration and fragmentation. It is concluded that c-HSS-Fe is a powerful bio-active material against cancerous cells.
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spelling pubmed-89818452022-04-13 Template-free preparation of iron oxide loaded hollow silica spheres and their anticancer proliferation capabilities Akhtar, Sultan Gunday, Seyda Tugba Alqosaibi, Amany I. Aldossary, Hanan Bozkurt, Ayhan Khan, Firdos Alam RSC Adv Chemistry Hollow silica spheres (HSS) exhibited high-specific surface area, low toxicity, low density, and good biocompatibility. The effectivity of HSS material can be improved further by loading nanoparticles for smart biological applications. In this work, magnetic nanoparticle (iron oxide; Fe(3)O(4))-loaded pure HSS (c-HSS-Fe) were synthesized successfully using a template-free chemical route and investigated for their anticancer cell proliferation capabilities against cancerous cell lines: human colorectal carcinoma cells (HCT-116). The structure, morphology, chemical bonding, and thermal stability of the prepared HSS derivatives were studied using spectroscopic and microscopic techniques. Our analyses confirmed the successful preparation of Fe(3)O(4) loaded HSS material (sphere diameter ∼515 nm). The elemental analysis revealed the existence of Fe along with Si and O in the Fe(3)O(4) loaded HSS material, thus reaffirming the production of the c-HSS-Fe product. The effects of silica spheres on HCT-116 cells were examined microscopically and by MTT assays. It was observed that the c-HSS-Fe demonstrated dose-dependent behavior and significantly reduced the cancer cell proliferation at higher doses. Our results showed that c-HSS-Fe was more effective and profound in reducing the cancer cells' activities as compared to unloaded HSS material where the cancer cells have undergone nuclear disintegration and fragmentation. It is concluded that c-HSS-Fe is a powerful bio-active material against cancerous cells. The Royal Society of Chemistry 2022-02-28 /pmc/articles/PMC8981845/ /pubmed/35424646 http://dx.doi.org/10.1039/d1ra08216g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Akhtar, Sultan
Gunday, Seyda Tugba
Alqosaibi, Amany I.
Aldossary, Hanan
Bozkurt, Ayhan
Khan, Firdos Alam
Template-free preparation of iron oxide loaded hollow silica spheres and their anticancer proliferation capabilities
title Template-free preparation of iron oxide loaded hollow silica spheres and their anticancer proliferation capabilities
title_full Template-free preparation of iron oxide loaded hollow silica spheres and their anticancer proliferation capabilities
title_fullStr Template-free preparation of iron oxide loaded hollow silica spheres and their anticancer proliferation capabilities
title_full_unstemmed Template-free preparation of iron oxide loaded hollow silica spheres and their anticancer proliferation capabilities
title_short Template-free preparation of iron oxide loaded hollow silica spheres and their anticancer proliferation capabilities
title_sort template-free preparation of iron oxide loaded hollow silica spheres and their anticancer proliferation capabilities
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8981845/
https://www.ncbi.nlm.nih.gov/pubmed/35424646
http://dx.doi.org/10.1039/d1ra08216g
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