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Ph-responsive release of ruthenium metallotherapeutics from mesoporous silica-based nanocarriers

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2021
osnovni rad (596.7Kb)
Authors
Mladenović, Minja
Morgan, Ibrahim
Ilić, Nebojša
Saoud, Mohamad
Pergal, Marija
Kaluđerović, Goran N.
Knežević, Nikola Ž.
Article (Published version)
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Abstract
Ruthenium complexes are attracting interest in cancer treatment due to their potent cytotoxic activity. However, as their high toxicity may also affect healthy tissues, efficient and selective drug delivery systems to tumour tissues are needed. Our study focuses on the construction of such drug delivery systems for the delivery of cytotoxic Ru(II) complexes upon exposure to a weakly acidic environment of tumours. As nanocarriers, mesoporous silica nanoparticles (MSN) are utilized, whose surface is functionalized with two types of ligands, (2-thienylmethyl)hydrazine hydrochloride (H1) and (5,6-dimethylthieno[2,3-d]pyrimidin-4-yl)hydrazine (H2), which were attached to MSN through a pH-responsive hydrazone linkage. Further coordination to ruthenium(II) center yielded two types of nanomaterials MSN-H1[Ru] and MSN-H2[Ru]. Spectrophotometric measurements of the drug release kinetics at different pH (5.0, 6.0 and 7.4) confirm the enhanced release of Ru(II) complexes at lower pH values, which ...is further supported by inductively coupled plasma optical emission spectrometry (ICP-OES) measurements. Furthermore, the cytotoxicity effect of the released metallotherapeutics is evaluated in vitro on metastatic B16F1 melanoma cells and enhanced cancer cell-killing efficacy is demonstrated upon exposure of the nanomaterials to weakly acidic conditions. The obtained results showcase the promising capabilities of the designed MSN nanocarriers for the pH-responsive delivery of metallotherapeutics and targeted treatment of cancer.

Keywords:
Cancer treatment / Controlled drug delivery / Mesoporous silica nanoparticles / PH-responsive drug delivery / Ruthenium-based anti-cancer drugs
Source:
Pharmaceutics, 2021, 13, 4, 460-
Publisher:
  • MDPI
Funding / projects:
  • Ministry of Education, Science and Technological Development, Republic of Serbia, Grant no. 200358 (BioSense Institute) (RS-200358)
  • Ministry of Education, Science and Technological Development, Republic of Serbia, Grant no. 200026 (University of Belgrade, Institute of Chemistry, Technology and Metallurgy - IChTM) (RS-200026)
  • The European Union’s Horizon 2020 research and innovation programme under grant agreement 952259 (NANOFACTS)
  • The German Academic Exchange Service (DAAD) [grant number: 57393212]
  • ANTARES - Centre of Excellence for Advanced Technologies in Sustainable Agriculture and Food Security (EU-739570)
Note:
  • Supplementary material: https://cer.ihtm.bg.ac.rs/handle/123456789/4573
Related info:
  • Referenced by
    https://cer.ihtm.bg.ac.rs/handle/123456789/4573

DOI: 10.3390/pharmaceutics13040460

ISSN: 1999-4923

PubMed: 33800647

WoS: 000643527200001

Scopus: 2-s2.0-85103904375
[ Google Scholar ]
13
4
URI
https://cer.ihtm.bg.ac.rs/handle/123456789/4572
Collections
  • Radovi istraživača / Researchers' publications
Institution/Community
IHTM
TY  - JOUR
AU  - Mladenović, Minja
AU  - Morgan, Ibrahim
AU  - Ilić, Nebojša
AU  - Saoud, Mohamad
AU  - Pergal, Marija
AU  - Kaluđerović, Goran N.
AU  - Knežević, Nikola Ž.
PY  - 2021
UR  - https://cer.ihtm.bg.ac.rs/handle/123456789/4572
AB  - Ruthenium complexes are attracting interest in cancer treatment due to their potent cytotoxic activity. However, as their high toxicity may also affect healthy tissues, efficient and selective drug delivery systems to tumour tissues are needed. Our study focuses on the construction of such drug delivery systems for the delivery of cytotoxic Ru(II) complexes upon exposure to a weakly acidic environment of tumours. As nanocarriers, mesoporous silica nanoparticles (MSN) are utilized, whose surface is functionalized with two types of ligands, (2-thienylmethyl)hydrazine hydrochloride (H1) and (5,6-dimethylthieno[2,3-d]pyrimidin-4-yl)hydrazine (H2), which were attached to MSN through a pH-responsive hydrazone linkage. Further coordination to ruthenium(II) center yielded two types of nanomaterials MSN-H1[Ru] and MSN-H2[Ru]. Spectrophotometric measurements of the drug release kinetics at different pH (5.0, 6.0 and 7.4) confirm the enhanced release of Ru(II) complexes at lower pH values, which is further supported by inductively coupled plasma optical emission spectrometry (ICP-OES) measurements. Furthermore, the cytotoxicity effect of the released metallotherapeutics is evaluated in vitro on metastatic B16F1 melanoma cells and enhanced cancer cell-killing efficacy is demonstrated upon exposure of the nanomaterials to weakly acidic conditions. The obtained results showcase the promising capabilities of the designed MSN nanocarriers for the pH-responsive delivery of metallotherapeutics and targeted treatment of cancer.
PB  - MDPI
T2  - Pharmaceutics
T1  - Ph-responsive release of ruthenium metallotherapeutics from mesoporous silica-based nanocarriers
VL  - 13
IS  - 4
SP  - 460
DO  - 10.3390/pharmaceutics13040460
ER  - 
@article{
author = "Mladenović, Minja and Morgan, Ibrahim and Ilić, Nebojša and Saoud, Mohamad and Pergal, Marija and Kaluđerović, Goran N. and Knežević, Nikola Ž.",
year = "2021",
abstract = "Ruthenium complexes are attracting interest in cancer treatment due to their potent cytotoxic activity. However, as their high toxicity may also affect healthy tissues, efficient and selective drug delivery systems to tumour tissues are needed. Our study focuses on the construction of such drug delivery systems for the delivery of cytotoxic Ru(II) complexes upon exposure to a weakly acidic environment of tumours. As nanocarriers, mesoporous silica nanoparticles (MSN) are utilized, whose surface is functionalized with two types of ligands, (2-thienylmethyl)hydrazine hydrochloride (H1) and (5,6-dimethylthieno[2,3-d]pyrimidin-4-yl)hydrazine (H2), which were attached to MSN through a pH-responsive hydrazone linkage. Further coordination to ruthenium(II) center yielded two types of nanomaterials MSN-H1[Ru] and MSN-H2[Ru]. Spectrophotometric measurements of the drug release kinetics at different pH (5.0, 6.0 and 7.4) confirm the enhanced release of Ru(II) complexes at lower pH values, which is further supported by inductively coupled plasma optical emission spectrometry (ICP-OES) measurements. Furthermore, the cytotoxicity effect of the released metallotherapeutics is evaluated in vitro on metastatic B16F1 melanoma cells and enhanced cancer cell-killing efficacy is demonstrated upon exposure of the nanomaterials to weakly acidic conditions. The obtained results showcase the promising capabilities of the designed MSN nanocarriers for the pH-responsive delivery of metallotherapeutics and targeted treatment of cancer.",
publisher = "MDPI",
journal = "Pharmaceutics",
title = "Ph-responsive release of ruthenium metallotherapeutics from mesoporous silica-based nanocarriers",
volume = "13",
number = "4",
pages = "460",
doi = "10.3390/pharmaceutics13040460"
}
Mladenović, M., Morgan, I., Ilić, N., Saoud, M., Pergal, M., Kaluđerović, G. N.,& Knežević, N. Ž.. (2021). Ph-responsive release of ruthenium metallotherapeutics from mesoporous silica-based nanocarriers. in Pharmaceutics
MDPI., 13(4), 460.
https://doi.org/10.3390/pharmaceutics13040460
Mladenović M, Morgan I, Ilić N, Saoud M, Pergal M, Kaluđerović GN, Knežević NŽ. Ph-responsive release of ruthenium metallotherapeutics from mesoporous silica-based nanocarriers. in Pharmaceutics. 2021;13(4):460.
doi:10.3390/pharmaceutics13040460 .
Mladenović, Minja, Morgan, Ibrahim, Ilić, Nebojša, Saoud, Mohamad, Pergal, Marija, Kaluđerović, Goran N., Knežević, Nikola Ž., "Ph-responsive release of ruthenium metallotherapeutics from mesoporous silica-based nanocarriers" in Pharmaceutics, 13, no. 4 (2021):460,
https://doi.org/10.3390/pharmaceutics13040460 . .

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