Cargando…

A mitochondria-targeting lipid–small molecule hybrid nanoparticle for imaging and therapy in an orthotopic glioma model

Hybrid lipid‒nanoparticle complexes have shown attractive characteristics as drug carriers due to their integrated advantages from liposomes and nanoparticles. Here we developed a kind of lipid-small molecule hybrid nanoparticles (LPHNPs) for imaging and treatment in an orthotopic glioma model. LPHN...

Descripción completa

Detalles Bibliográficos
Autores principales: Tang, Menghuan, Lin, Kai, Ramachandran, Mythili, Li, Longmeng, Zou, Hongye, Zheng, Huzhi, Ma, Zhao, Li, Yuanpei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9214052/
https://www.ncbi.nlm.nih.gov/pubmed/35755275
http://dx.doi.org/10.1016/j.apsb.2022.04.005
_version_ 1784730940270968832
author Tang, Menghuan
Lin, Kai
Ramachandran, Mythili
Li, Longmeng
Zou, Hongye
Zheng, Huzhi
Ma, Zhao
Li, Yuanpei
author_facet Tang, Menghuan
Lin, Kai
Ramachandran, Mythili
Li, Longmeng
Zou, Hongye
Zheng, Huzhi
Ma, Zhao
Li, Yuanpei
author_sort Tang, Menghuan
collection PubMed
description Hybrid lipid‒nanoparticle complexes have shown attractive characteristics as drug carriers due to their integrated advantages from liposomes and nanoparticles. Here we developed a kind of lipid-small molecule hybrid nanoparticles (LPHNPs) for imaging and treatment in an orthotopic glioma model. LPHNPs were prepared by engineering the co-assembly of lipids and an amphiphilic pheophorbide a‒quinolinium conjugate (PQC), a mitochondria-targeting small molecule. Compared with the pure nanofiber self-assembled by PQC, LPHNPs not only preserve the comparable antiproliferative potency, but also possess a spherical nanostructure that allows the PQC molecules to be administrated through intravenous injection. Also, this co-assembly remarkably improved the drug-loading capacity and formulation stability against the physical encapsulation using conventional liposomes. By integrating the advantages from liposome and PQC molecule, LPHNPs have minimal system toxicity, enhanced potency of photodynamic therapy (PDT) and visualization capacities of drug biodistribution and tumor imaging. The hybrid nanoparticle demonstrates excellent curative effects to significantly prolong the survival of mice with the orthotopic glioma. The unique co-assembly of lipid and small molecule provides new potential for constructing new liposome-derived nanoformulations and improving cancer treatment.
format Online
Article
Text
id pubmed-9214052
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-92140522022-06-23 A mitochondria-targeting lipid–small molecule hybrid nanoparticle for imaging and therapy in an orthotopic glioma model Tang, Menghuan Lin, Kai Ramachandran, Mythili Li, Longmeng Zou, Hongye Zheng, Huzhi Ma, Zhao Li, Yuanpei Acta Pharm Sin B Original Article Hybrid lipid‒nanoparticle complexes have shown attractive characteristics as drug carriers due to their integrated advantages from liposomes and nanoparticles. Here we developed a kind of lipid-small molecule hybrid nanoparticles (LPHNPs) for imaging and treatment in an orthotopic glioma model. LPHNPs were prepared by engineering the co-assembly of lipids and an amphiphilic pheophorbide a‒quinolinium conjugate (PQC), a mitochondria-targeting small molecule. Compared with the pure nanofiber self-assembled by PQC, LPHNPs not only preserve the comparable antiproliferative potency, but also possess a spherical nanostructure that allows the PQC molecules to be administrated through intravenous injection. Also, this co-assembly remarkably improved the drug-loading capacity and formulation stability against the physical encapsulation using conventional liposomes. By integrating the advantages from liposome and PQC molecule, LPHNPs have minimal system toxicity, enhanced potency of photodynamic therapy (PDT) and visualization capacities of drug biodistribution and tumor imaging. The hybrid nanoparticle demonstrates excellent curative effects to significantly prolong the survival of mice with the orthotopic glioma. The unique co-assembly of lipid and small molecule provides new potential for constructing new liposome-derived nanoformulations and improving cancer treatment. Elsevier 2022-06 2022-04-14 /pmc/articles/PMC9214052/ /pubmed/35755275 http://dx.doi.org/10.1016/j.apsb.2022.04.005 Text en © 2022 Chinese Pharmaceutical Association and Institute of Materia Medica, Chinese Academy of Medical Sciences. Production and hosting by Elsevier B.V. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Article
Tang, Menghuan
Lin, Kai
Ramachandran, Mythili
Li, Longmeng
Zou, Hongye
Zheng, Huzhi
Ma, Zhao
Li, Yuanpei
A mitochondria-targeting lipid–small molecule hybrid nanoparticle for imaging and therapy in an orthotopic glioma model
title A mitochondria-targeting lipid–small molecule hybrid nanoparticle for imaging and therapy in an orthotopic glioma model
title_full A mitochondria-targeting lipid–small molecule hybrid nanoparticle for imaging and therapy in an orthotopic glioma model
title_fullStr A mitochondria-targeting lipid–small molecule hybrid nanoparticle for imaging and therapy in an orthotopic glioma model
title_full_unstemmed A mitochondria-targeting lipid–small molecule hybrid nanoparticle for imaging and therapy in an orthotopic glioma model
title_short A mitochondria-targeting lipid–small molecule hybrid nanoparticle for imaging and therapy in an orthotopic glioma model
title_sort mitochondria-targeting lipid–small molecule hybrid nanoparticle for imaging and therapy in an orthotopic glioma model
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9214052/
https://www.ncbi.nlm.nih.gov/pubmed/35755275
http://dx.doi.org/10.1016/j.apsb.2022.04.005
work_keys_str_mv AT tangmenghuan amitochondriatargetinglipidsmallmoleculehybridnanoparticleforimagingandtherapyinanorthotopicgliomamodel
AT linkai amitochondriatargetinglipidsmallmoleculehybridnanoparticleforimagingandtherapyinanorthotopicgliomamodel
AT ramachandranmythili amitochondriatargetinglipidsmallmoleculehybridnanoparticleforimagingandtherapyinanorthotopicgliomamodel
AT lilongmeng amitochondriatargetinglipidsmallmoleculehybridnanoparticleforimagingandtherapyinanorthotopicgliomamodel
AT zouhongye amitochondriatargetinglipidsmallmoleculehybridnanoparticleforimagingandtherapyinanorthotopicgliomamodel
AT zhenghuzhi amitochondriatargetinglipidsmallmoleculehybridnanoparticleforimagingandtherapyinanorthotopicgliomamodel
AT mazhao amitochondriatargetinglipidsmallmoleculehybridnanoparticleforimagingandtherapyinanorthotopicgliomamodel
AT liyuanpei amitochondriatargetinglipidsmallmoleculehybridnanoparticleforimagingandtherapyinanorthotopicgliomamodel
AT tangmenghuan mitochondriatargetinglipidsmallmoleculehybridnanoparticleforimagingandtherapyinanorthotopicgliomamodel
AT linkai mitochondriatargetinglipidsmallmoleculehybridnanoparticleforimagingandtherapyinanorthotopicgliomamodel
AT ramachandranmythili mitochondriatargetinglipidsmallmoleculehybridnanoparticleforimagingandtherapyinanorthotopicgliomamodel
AT lilongmeng mitochondriatargetinglipidsmallmoleculehybridnanoparticleforimagingandtherapyinanorthotopicgliomamodel
AT zouhongye mitochondriatargetinglipidsmallmoleculehybridnanoparticleforimagingandtherapyinanorthotopicgliomamodel
AT zhenghuzhi mitochondriatargetinglipidsmallmoleculehybridnanoparticleforimagingandtherapyinanorthotopicgliomamodel
AT mazhao mitochondriatargetinglipidsmallmoleculehybridnanoparticleforimagingandtherapyinanorthotopicgliomamodel
AT liyuanpei mitochondriatargetinglipidsmallmoleculehybridnanoparticleforimagingandtherapyinanorthotopicgliomamodel