Cargando…

The Effect of Nanosystems on ATP-Binding Cassette Transporters: Understanding the Influence of Nanosystems on Multidrug Resistance Protein-1 and P-glycoprotein

The cancer multidrug resistance is involved in the failure of several treatments during cancer treatment. It is a phenomenon that has been receiving great attention in the last years due to the sheer amount of mechanisms discovered and involved in the process of resistance which hinders the effectiv...

Descripción completa

Detalles Bibliográficos
Autores principales: Mello, Francisco V.C., de Moraes, Gabriela N., Maia, Raquel C., Kyeremateng, Jennifer, Iram, Surtaj Hussain, Santos-Oliveira, Ralph
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7178121/
https://www.ncbi.nlm.nih.gov/pubmed/32290047
http://dx.doi.org/10.3390/ijms21072630
_version_ 1783525381761925120
author Mello, Francisco V.C.
de Moraes, Gabriela N.
Maia, Raquel C.
Kyeremateng, Jennifer
Iram, Surtaj Hussain
Santos-Oliveira, Ralph
author_facet Mello, Francisco V.C.
de Moraes, Gabriela N.
Maia, Raquel C.
Kyeremateng, Jennifer
Iram, Surtaj Hussain
Santos-Oliveira, Ralph
author_sort Mello, Francisco V.C.
collection PubMed
description The cancer multidrug resistance is involved in the failure of several treatments during cancer treatment. It is a phenomenon that has been receiving great attention in the last years due to the sheer amount of mechanisms discovered and involved in the process of resistance which hinders the effectiveness of many anti-cancer drugs. Among the mechanisms involved in the multidrug resistance, the participation of ATP-binding cassette (ABC) transporters is the main one. The ABC transporters are a group of plasma membrane and intracellular organelle proteins involved in the process of externalization of substrates from cells, which are expressed in cancer. They are involved in the clearance of intracellular metabolites as ions, hormones, lipids and other small molecules from the cell, affecting directly and indirectly drug absorption, distribution, metabolism and excretion. Other mechanisms responsible for resistance are the signaling pathways and the anti- and pro-apoptotic proteins involved in cell death by apoptosis. In this study we evaluated the influence of three nanosystem (Graphene Quantum Dots (GQDs), mesoporous silica (MSN) and poly-lactic nanoparticles (PLA)) in the main mechanism related to the cancer multidrug resistance such as the Multidrug Resistance Protein-1 and P-glycoprotein. We also evaluated this influence in a group of proteins involved in the apoptosis-related resistance including cIAP-1, XIAP, Bcl-2, BAK and Survivin proteins. Last, colonogenic and MTT (3-(4,5-dimethylthiazol-2-yl)- 2,5-diphenyltetrazolium bromide) assays have also been performed. The results showed, regardless of the concentration used, GQDs, MSN and PLA were not cytotoxic to MDA-MB-231 cells and showed no impairment in the colony formation capacity. In addition, it has been observed that P-gp membrane expression was not significantly altered by any of the three nanomaterials. The results suggest that GQDs nanoparticles would be suitable for the delivery of other multidrug resistance protein 1 (MRP1) substrate drugs that bind to the transporter at the same binding pocket, while MSN can strongly inhibit doxorubicin efflux by MRP1. On the other hand, PLA showed moderate inhibition of doxorubicin efflux by MRP1 suggesting that this nanomaterial can also be useful to treat MDR (Multidrug resistance) due to MRP1 overexpression.
format Online
Article
Text
id pubmed-7178121
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-71781212020-04-28 The Effect of Nanosystems on ATP-Binding Cassette Transporters: Understanding the Influence of Nanosystems on Multidrug Resistance Protein-1 and P-glycoprotein Mello, Francisco V.C. de Moraes, Gabriela N. Maia, Raquel C. Kyeremateng, Jennifer Iram, Surtaj Hussain Santos-Oliveira, Ralph Int J Mol Sci Article The cancer multidrug resistance is involved in the failure of several treatments during cancer treatment. It is a phenomenon that has been receiving great attention in the last years due to the sheer amount of mechanisms discovered and involved in the process of resistance which hinders the effectiveness of many anti-cancer drugs. Among the mechanisms involved in the multidrug resistance, the participation of ATP-binding cassette (ABC) transporters is the main one. The ABC transporters are a group of plasma membrane and intracellular organelle proteins involved in the process of externalization of substrates from cells, which are expressed in cancer. They are involved in the clearance of intracellular metabolites as ions, hormones, lipids and other small molecules from the cell, affecting directly and indirectly drug absorption, distribution, metabolism and excretion. Other mechanisms responsible for resistance are the signaling pathways and the anti- and pro-apoptotic proteins involved in cell death by apoptosis. In this study we evaluated the influence of three nanosystem (Graphene Quantum Dots (GQDs), mesoporous silica (MSN) and poly-lactic nanoparticles (PLA)) in the main mechanism related to the cancer multidrug resistance such as the Multidrug Resistance Protein-1 and P-glycoprotein. We also evaluated this influence in a group of proteins involved in the apoptosis-related resistance including cIAP-1, XIAP, Bcl-2, BAK and Survivin proteins. Last, colonogenic and MTT (3-(4,5-dimethylthiazol-2-yl)- 2,5-diphenyltetrazolium bromide) assays have also been performed. The results showed, regardless of the concentration used, GQDs, MSN and PLA were not cytotoxic to MDA-MB-231 cells and showed no impairment in the colony formation capacity. In addition, it has been observed that P-gp membrane expression was not significantly altered by any of the three nanomaterials. The results suggest that GQDs nanoparticles would be suitable for the delivery of other multidrug resistance protein 1 (MRP1) substrate drugs that bind to the transporter at the same binding pocket, while MSN can strongly inhibit doxorubicin efflux by MRP1. On the other hand, PLA showed moderate inhibition of doxorubicin efflux by MRP1 suggesting that this nanomaterial can also be useful to treat MDR (Multidrug resistance) due to MRP1 overexpression. MDPI 2020-04-10 /pmc/articles/PMC7178121/ /pubmed/32290047 http://dx.doi.org/10.3390/ijms21072630 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Mello, Francisco V.C.
de Moraes, Gabriela N.
Maia, Raquel C.
Kyeremateng, Jennifer
Iram, Surtaj Hussain
Santos-Oliveira, Ralph
The Effect of Nanosystems on ATP-Binding Cassette Transporters: Understanding the Influence of Nanosystems on Multidrug Resistance Protein-1 and P-glycoprotein
title The Effect of Nanosystems on ATP-Binding Cassette Transporters: Understanding the Influence of Nanosystems on Multidrug Resistance Protein-1 and P-glycoprotein
title_full The Effect of Nanosystems on ATP-Binding Cassette Transporters: Understanding the Influence of Nanosystems on Multidrug Resistance Protein-1 and P-glycoprotein
title_fullStr The Effect of Nanosystems on ATP-Binding Cassette Transporters: Understanding the Influence of Nanosystems on Multidrug Resistance Protein-1 and P-glycoprotein
title_full_unstemmed The Effect of Nanosystems on ATP-Binding Cassette Transporters: Understanding the Influence of Nanosystems on Multidrug Resistance Protein-1 and P-glycoprotein
title_short The Effect of Nanosystems on ATP-Binding Cassette Transporters: Understanding the Influence of Nanosystems on Multidrug Resistance Protein-1 and P-glycoprotein
title_sort effect of nanosystems on atp-binding cassette transporters: understanding the influence of nanosystems on multidrug resistance protein-1 and p-glycoprotein
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7178121/
https://www.ncbi.nlm.nih.gov/pubmed/32290047
http://dx.doi.org/10.3390/ijms21072630
work_keys_str_mv AT mellofranciscovc theeffectofnanosystemsonatpbindingcassettetransportersunderstandingtheinfluenceofnanosystemsonmultidrugresistanceprotein1andpglycoprotein
AT demoraesgabrielan theeffectofnanosystemsonatpbindingcassettetransportersunderstandingtheinfluenceofnanosystemsonmultidrugresistanceprotein1andpglycoprotein
AT maiaraquelc theeffectofnanosystemsonatpbindingcassettetransportersunderstandingtheinfluenceofnanosystemsonmultidrugresistanceprotein1andpglycoprotein
AT kyerematengjennifer theeffectofnanosystemsonatpbindingcassettetransportersunderstandingtheinfluenceofnanosystemsonmultidrugresistanceprotein1andpglycoprotein
AT iramsurtajhussain theeffectofnanosystemsonatpbindingcassettetransportersunderstandingtheinfluenceofnanosystemsonmultidrugresistanceprotein1andpglycoprotein
AT santosoliveiraralph theeffectofnanosystemsonatpbindingcassettetransportersunderstandingtheinfluenceofnanosystemsonmultidrugresistanceprotein1andpglycoprotein
AT mellofranciscovc effectofnanosystemsonatpbindingcassettetransportersunderstandingtheinfluenceofnanosystemsonmultidrugresistanceprotein1andpglycoprotein
AT demoraesgabrielan effectofnanosystemsonatpbindingcassettetransportersunderstandingtheinfluenceofnanosystemsonmultidrugresistanceprotein1andpglycoprotein
AT maiaraquelc effectofnanosystemsonatpbindingcassettetransportersunderstandingtheinfluenceofnanosystemsonmultidrugresistanceprotein1andpglycoprotein
AT kyerematengjennifer effectofnanosystemsonatpbindingcassettetransportersunderstandingtheinfluenceofnanosystemsonmultidrugresistanceprotein1andpglycoprotein
AT iramsurtajhussain effectofnanosystemsonatpbindingcassettetransportersunderstandingtheinfluenceofnanosystemsonmultidrugresistanceprotein1andpglycoprotein
AT santosoliveiraralph effectofnanosystemsonatpbindingcassettetransportersunderstandingtheinfluenceofnanosystemsonmultidrugresistanceprotein1andpglycoprotein