Cargando…

β-Cyclodextrin-Stabilized Biosynthesis Nanozyme for Dual Enzyme Mimicking and Fenton Reaction with a High Potential Anticancer Agent

[Image: see text] The myth of inactivity of inorganic materials in a biological system breaks down by the discovery of nanozymes. From this time, the nanozyme has attracted huge attention for its high durability, cost-effective production, and easy storage over the natural enzyme. Moreover, the mult...

Descripción completa

Detalles Bibliográficos
Autores principales: Ali, Salim, Sikdar, Suranjan, Basak, Shatarupa, Rajbanshi, Biplab, Mondal, Modhusudan, Roy, Debadrita, Dutta, Ankita, Kumar, Anoop, Dakua, Vikas Kumar, Chakrabarty, Rinku, Roy, Ashim, Barman, Abhinath, Datta, Anupam, Roy, Pijush K., Chakraborty, Bhaskar, Roy, Mahendra Nath
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8829946/
https://www.ncbi.nlm.nih.gov/pubmed/35155938
http://dx.doi.org/10.1021/acsomega.1c06322
_version_ 1784648174522073088
author Ali, Salim
Sikdar, Suranjan
Basak, Shatarupa
Rajbanshi, Biplab
Mondal, Modhusudan
Roy, Debadrita
Dutta, Ankita
Kumar, Anoop
Dakua, Vikas Kumar
Chakrabarty, Rinku
Roy, Ashim
Barman, Abhinath
Datta, Anupam
Roy, Pijush K.
Chakraborty, Bhaskar
Roy, Mahendra Nath
author_facet Ali, Salim
Sikdar, Suranjan
Basak, Shatarupa
Rajbanshi, Biplab
Mondal, Modhusudan
Roy, Debadrita
Dutta, Ankita
Kumar, Anoop
Dakua, Vikas Kumar
Chakrabarty, Rinku
Roy, Ashim
Barman, Abhinath
Datta, Anupam
Roy, Pijush K.
Chakraborty, Bhaskar
Roy, Mahendra Nath
author_sort Ali, Salim
collection PubMed
description [Image: see text] The myth of inactivity of inorganic materials in a biological system breaks down by the discovery of nanozymes. From this time, the nanozyme has attracted huge attention for its high durability, cost-effective production, and easy storage over the natural enzyme. Moreover, the multienzyme-mimicking activity of nanozymes can regulate the level of reactive oxygen species (ROS) in an intercellular system. ROS can be generated by peroxidase (POD), oxidase (OD), and Fenton-like catalytic reaction by a nanozyme which kills the cancer cells by oxidative stress; therefore, it is important in CDT (chemo dynamic therapy). Our current study designed to investigate the enzyme mimicking behavior and anticancer ability of cerium-based nanomaterials because the cerium-based materials offer a high redox ability while maintaining nontoxicity and high stability. Our group synthesized CeZrO(4) nanoparticles by a green method using β-cyclodextrin as a stabilizer and neem leaf extract as a reducing agent, exhibiting POD- and OD-like dual enzyme activities. The best enzyme catalytic activity is shown in pH = 4, indicating the high ROS generation in an acidic medium (tumor microenvironment) which is also supported by the Fenton-like behavior of CeZrO(4) nanoparticles. Inspired by the high ROS generation in vitro method, we investigated the disruption of human kidney cells by this nanoparticle, successfully verified by the MTT assay. The harmful effect of ROS in a normal cell is also investigated by the in vitro MTT assay. The results suggested that the appreciable anticancer activity with minimal side effects by this synthesized nanomaterial.
format Online
Article
Text
id pubmed-8829946
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-88299462022-02-11 β-Cyclodextrin-Stabilized Biosynthesis Nanozyme for Dual Enzyme Mimicking and Fenton Reaction with a High Potential Anticancer Agent Ali, Salim Sikdar, Suranjan Basak, Shatarupa Rajbanshi, Biplab Mondal, Modhusudan Roy, Debadrita Dutta, Ankita Kumar, Anoop Dakua, Vikas Kumar Chakrabarty, Rinku Roy, Ashim Barman, Abhinath Datta, Anupam Roy, Pijush K. Chakraborty, Bhaskar Roy, Mahendra Nath ACS Omega [Image: see text] The myth of inactivity of inorganic materials in a biological system breaks down by the discovery of nanozymes. From this time, the nanozyme has attracted huge attention for its high durability, cost-effective production, and easy storage over the natural enzyme. Moreover, the multienzyme-mimicking activity of nanozymes can regulate the level of reactive oxygen species (ROS) in an intercellular system. ROS can be generated by peroxidase (POD), oxidase (OD), and Fenton-like catalytic reaction by a nanozyme which kills the cancer cells by oxidative stress; therefore, it is important in CDT (chemo dynamic therapy). Our current study designed to investigate the enzyme mimicking behavior and anticancer ability of cerium-based nanomaterials because the cerium-based materials offer a high redox ability while maintaining nontoxicity and high stability. Our group synthesized CeZrO(4) nanoparticles by a green method using β-cyclodextrin as a stabilizer and neem leaf extract as a reducing agent, exhibiting POD- and OD-like dual enzyme activities. The best enzyme catalytic activity is shown in pH = 4, indicating the high ROS generation in an acidic medium (tumor microenvironment) which is also supported by the Fenton-like behavior of CeZrO(4) nanoparticles. Inspired by the high ROS generation in vitro method, we investigated the disruption of human kidney cells by this nanoparticle, successfully verified by the MTT assay. The harmful effect of ROS in a normal cell is also investigated by the in vitro MTT assay. The results suggested that the appreciable anticancer activity with minimal side effects by this synthesized nanomaterial. American Chemical Society 2022-01-28 /pmc/articles/PMC8829946/ /pubmed/35155938 http://dx.doi.org/10.1021/acsomega.1c06322 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Ali, Salim
Sikdar, Suranjan
Basak, Shatarupa
Rajbanshi, Biplab
Mondal, Modhusudan
Roy, Debadrita
Dutta, Ankita
Kumar, Anoop
Dakua, Vikas Kumar
Chakrabarty, Rinku
Roy, Ashim
Barman, Abhinath
Datta, Anupam
Roy, Pijush K.
Chakraborty, Bhaskar
Roy, Mahendra Nath
β-Cyclodextrin-Stabilized Biosynthesis Nanozyme for Dual Enzyme Mimicking and Fenton Reaction with a High Potential Anticancer Agent
title β-Cyclodextrin-Stabilized Biosynthesis Nanozyme for Dual Enzyme Mimicking and Fenton Reaction with a High Potential Anticancer Agent
title_full β-Cyclodextrin-Stabilized Biosynthesis Nanozyme for Dual Enzyme Mimicking and Fenton Reaction with a High Potential Anticancer Agent
title_fullStr β-Cyclodextrin-Stabilized Biosynthesis Nanozyme for Dual Enzyme Mimicking and Fenton Reaction with a High Potential Anticancer Agent
title_full_unstemmed β-Cyclodextrin-Stabilized Biosynthesis Nanozyme for Dual Enzyme Mimicking and Fenton Reaction with a High Potential Anticancer Agent
title_short β-Cyclodextrin-Stabilized Biosynthesis Nanozyme for Dual Enzyme Mimicking and Fenton Reaction with a High Potential Anticancer Agent
title_sort β-cyclodextrin-stabilized biosynthesis nanozyme for dual enzyme mimicking and fenton reaction with a high potential anticancer agent
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8829946/
https://www.ncbi.nlm.nih.gov/pubmed/35155938
http://dx.doi.org/10.1021/acsomega.1c06322
work_keys_str_mv AT alisalim bcyclodextrinstabilizedbiosynthesisnanozymefordualenzymemimickingandfentonreactionwithahighpotentialanticanceragent
AT sikdarsuranjan bcyclodextrinstabilizedbiosynthesisnanozymefordualenzymemimickingandfentonreactionwithahighpotentialanticanceragent
AT basakshatarupa bcyclodextrinstabilizedbiosynthesisnanozymefordualenzymemimickingandfentonreactionwithahighpotentialanticanceragent
AT rajbanshibiplab bcyclodextrinstabilizedbiosynthesisnanozymefordualenzymemimickingandfentonreactionwithahighpotentialanticanceragent
AT mondalmodhusudan bcyclodextrinstabilizedbiosynthesisnanozymefordualenzymemimickingandfentonreactionwithahighpotentialanticanceragent
AT roydebadrita bcyclodextrinstabilizedbiosynthesisnanozymefordualenzymemimickingandfentonreactionwithahighpotentialanticanceragent
AT duttaankita bcyclodextrinstabilizedbiosynthesisnanozymefordualenzymemimickingandfentonreactionwithahighpotentialanticanceragent
AT kumaranoop bcyclodextrinstabilizedbiosynthesisnanozymefordualenzymemimickingandfentonreactionwithahighpotentialanticanceragent
AT dakuavikaskumar bcyclodextrinstabilizedbiosynthesisnanozymefordualenzymemimickingandfentonreactionwithahighpotentialanticanceragent
AT chakrabartyrinku bcyclodextrinstabilizedbiosynthesisnanozymefordualenzymemimickingandfentonreactionwithahighpotentialanticanceragent
AT royashim bcyclodextrinstabilizedbiosynthesisnanozymefordualenzymemimickingandfentonreactionwithahighpotentialanticanceragent
AT barmanabhinath bcyclodextrinstabilizedbiosynthesisnanozymefordualenzymemimickingandfentonreactionwithahighpotentialanticanceragent
AT dattaanupam bcyclodextrinstabilizedbiosynthesisnanozymefordualenzymemimickingandfentonreactionwithahighpotentialanticanceragent
AT roypijushk bcyclodextrinstabilizedbiosynthesisnanozymefordualenzymemimickingandfentonreactionwithahighpotentialanticanceragent
AT chakrabortybhaskar bcyclodextrinstabilizedbiosynthesisnanozymefordualenzymemimickingandfentonreactionwithahighpotentialanticanceragent
AT roymahendranath bcyclodextrinstabilizedbiosynthesisnanozymefordualenzymemimickingandfentonreactionwithahighpotentialanticanceragent