Cargando…

Mitochondrion-Directed Nanoparticles Loaded with a Natural Compound and a microRNA for Promoting Cancer Cell Death via the Modulation of Tumor Metabolism and Mitochondrial Dynamics

Mitochondrial dysfunction may cause cancer and metabolic syndrome. Ellagic acid (abbreviated as E), a phytochemical, possesses anticancer activity. MicroRNA 125 (miR-125) may regulate metabolism. However, E has low aqueous solubility, and miR-125 is unstable in a biological fluid. Hence, this study...

Descripción completa

Detalles Bibliográficos
Autores principales: Lo, Yu-Li, Wang, Chen-Shen, Chen, Yen-Chun, Wang, Tse-Yuan, Chang, Yih-Hsin, Chen, Chun-Jung, Yang, Ching-Ping
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7464316/
https://www.ncbi.nlm.nih.gov/pubmed/32796618
http://dx.doi.org/10.3390/pharmaceutics12080756
_version_ 1783577336669536256
author Lo, Yu-Li
Wang, Chen-Shen
Chen, Yen-Chun
Wang, Tse-Yuan
Chang, Yih-Hsin
Chen, Chun-Jung
Yang, Ching-Ping
author_facet Lo, Yu-Li
Wang, Chen-Shen
Chen, Yen-Chun
Wang, Tse-Yuan
Chang, Yih-Hsin
Chen, Chun-Jung
Yang, Ching-Ping
author_sort Lo, Yu-Li
collection PubMed
description Mitochondrial dysfunction may cause cancer and metabolic syndrome. Ellagic acid (abbreviated as E), a phytochemical, possesses anticancer activity. MicroRNA 125 (miR-125) may regulate metabolism. However, E has low aqueous solubility, and miR-125 is unstable in a biological fluid. Hence, this study aimed to develop nanoparticle formulations for the co-treatment of miR-125 and E. These nanoparticles were modified with one mitochondrion-directed peptide and a tumor-targeted ligand, and their modulating effects on mitochondrial dysfunction, antitumor efficacy, and safety in head and neck cancer (HNC) were evaluated. Results revealed that miR-125- and E-loaded nanoparticles effectively targeted cancer cells and intracellular mitochondria. The co-treatment significantly altered cellular bioenergetics, lipid, and glucose metabolism in human tongue squamous carcinoma SAS cells. This combination therapy also regulated protein expression associated with bioenergenesis and mitochondrial dynamics. These formulations also modulated multiple pathways of tumor metabolism, apoptosis, resistance, and metastasis in SAS cells. In vivo mouse experiments showed that the combined treatment of miR-125 and E nanoparticles exhibited significant hypoglycemic and hypolipidemic effects. The combinatorial therapy of E and miR-125 nanoparticles effectively reduced SAS tumor growth. To our best knowledge, this prospective study provided a basis for combining miRNA with a natural compound in nanoformulations to regulate mitochondrial dysfunction and energy metabolism associated with cancer.
format Online
Article
Text
id pubmed-7464316
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-74643162020-09-04 Mitochondrion-Directed Nanoparticles Loaded with a Natural Compound and a microRNA for Promoting Cancer Cell Death via the Modulation of Tumor Metabolism and Mitochondrial Dynamics Lo, Yu-Li Wang, Chen-Shen Chen, Yen-Chun Wang, Tse-Yuan Chang, Yih-Hsin Chen, Chun-Jung Yang, Ching-Ping Pharmaceutics Article Mitochondrial dysfunction may cause cancer and metabolic syndrome. Ellagic acid (abbreviated as E), a phytochemical, possesses anticancer activity. MicroRNA 125 (miR-125) may regulate metabolism. However, E has low aqueous solubility, and miR-125 is unstable in a biological fluid. Hence, this study aimed to develop nanoparticle formulations for the co-treatment of miR-125 and E. These nanoparticles were modified with one mitochondrion-directed peptide and a tumor-targeted ligand, and their modulating effects on mitochondrial dysfunction, antitumor efficacy, and safety in head and neck cancer (HNC) were evaluated. Results revealed that miR-125- and E-loaded nanoparticles effectively targeted cancer cells and intracellular mitochondria. The co-treatment significantly altered cellular bioenergetics, lipid, and glucose metabolism in human tongue squamous carcinoma SAS cells. This combination therapy also regulated protein expression associated with bioenergenesis and mitochondrial dynamics. These formulations also modulated multiple pathways of tumor metabolism, apoptosis, resistance, and metastasis in SAS cells. In vivo mouse experiments showed that the combined treatment of miR-125 and E nanoparticles exhibited significant hypoglycemic and hypolipidemic effects. The combinatorial therapy of E and miR-125 nanoparticles effectively reduced SAS tumor growth. To our best knowledge, this prospective study provided a basis for combining miRNA with a natural compound in nanoformulations to regulate mitochondrial dysfunction and energy metabolism associated with cancer. MDPI 2020-08-11 /pmc/articles/PMC7464316/ /pubmed/32796618 http://dx.doi.org/10.3390/pharmaceutics12080756 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
Lo, Yu-Li
Wang, Chen-Shen
Chen, Yen-Chun
Wang, Tse-Yuan
Chang, Yih-Hsin
Chen, Chun-Jung
Yang, Ching-Ping
Mitochondrion-Directed Nanoparticles Loaded with a Natural Compound and a microRNA for Promoting Cancer Cell Death via the Modulation of Tumor Metabolism and Mitochondrial Dynamics
title Mitochondrion-Directed Nanoparticles Loaded with a Natural Compound and a microRNA for Promoting Cancer Cell Death via the Modulation of Tumor Metabolism and Mitochondrial Dynamics
title_full Mitochondrion-Directed Nanoparticles Loaded with a Natural Compound and a microRNA for Promoting Cancer Cell Death via the Modulation of Tumor Metabolism and Mitochondrial Dynamics
title_fullStr Mitochondrion-Directed Nanoparticles Loaded with a Natural Compound and a microRNA for Promoting Cancer Cell Death via the Modulation of Tumor Metabolism and Mitochondrial Dynamics
title_full_unstemmed Mitochondrion-Directed Nanoparticles Loaded with a Natural Compound and a microRNA for Promoting Cancer Cell Death via the Modulation of Tumor Metabolism and Mitochondrial Dynamics
title_short Mitochondrion-Directed Nanoparticles Loaded with a Natural Compound and a microRNA for Promoting Cancer Cell Death via the Modulation of Tumor Metabolism and Mitochondrial Dynamics
title_sort mitochondrion-directed nanoparticles loaded with a natural compound and a microrna for promoting cancer cell death via the modulation of tumor metabolism and mitochondrial dynamics
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7464316/
https://www.ncbi.nlm.nih.gov/pubmed/32796618
http://dx.doi.org/10.3390/pharmaceutics12080756
work_keys_str_mv AT loyuli mitochondriondirectednanoparticlesloadedwithanaturalcompoundandamicrornaforpromotingcancercelldeathviathemodulationoftumormetabolismandmitochondrialdynamics
AT wangchenshen mitochondriondirectednanoparticlesloadedwithanaturalcompoundandamicrornaforpromotingcancercelldeathviathemodulationoftumormetabolismandmitochondrialdynamics
AT chenyenchun mitochondriondirectednanoparticlesloadedwithanaturalcompoundandamicrornaforpromotingcancercelldeathviathemodulationoftumormetabolismandmitochondrialdynamics
AT wangtseyuan mitochondriondirectednanoparticlesloadedwithanaturalcompoundandamicrornaforpromotingcancercelldeathviathemodulationoftumormetabolismandmitochondrialdynamics
AT changyihhsin mitochondriondirectednanoparticlesloadedwithanaturalcompoundandamicrornaforpromotingcancercelldeathviathemodulationoftumormetabolismandmitochondrialdynamics
AT chenchunjung mitochondriondirectednanoparticlesloadedwithanaturalcompoundandamicrornaforpromotingcancercelldeathviathemodulationoftumormetabolismandmitochondrialdynamics
AT yangchingping mitochondriondirectednanoparticlesloadedwithanaturalcompoundandamicrornaforpromotingcancercelldeathviathemodulationoftumormetabolismandmitochondrialdynamics