Tejas Shah, Himanshu Polara, Godwin Babanyinah, Abhi Bhadran, Hanghang Wang, Cristina Cu Castillo, Gerik Grabowski, Michael C. Biewer, Hedieh Torabifard and Mihaela C. Stefan
{"title":"计算设计实验验证:分子动力学辅助开发用于药物传递的聚己内酯胶束。","authors":"Tejas Shah, Himanshu Polara, Godwin Babanyinah, Abhi Bhadran, Hanghang Wang, Cristina Cu Castillo, Gerik Grabowski, Michael C. Biewer, Hedieh Torabifard and Mihaela C. Stefan","doi":"10.1039/D4TB02789B","DOIUrl":null,"url":null,"abstract":"<p >Amphiphilic diblock copolymers are used in drug delivery systems for cancer treatments. However, these carriers suffer from lower drug loading capacity, poor water solubility, and non-targeted drug release. Here, we utilized a computational approach to analyze the effect of the functional groups of the hydrophobic block on the drug–polymer interactions. To design effective drug carriers, four different amphiphilic block copolymer micelles with distinct aromatic and heteroaromatic groups at the hydrophobic core were subjected to molecular dynamics simulations. The solvent-accessible surface area, water shell, hydrogen bonding, and radius of gyration of the simulated micelles were determined. Further, we assessed the interactions between the hydrophobic block and drug molecules using linear interaction energy and non-covalent interactions. The computational studies revealed that the micelles containing a novel poly(γ-2-methoxyfuran-ε-caprolactone) (PFuCL) hydrophobic block have the highest polymer–drug interactions. From these findings, we synthesized a novel amphiphilic poly(ethylene glycol)-<em>b</em>-poly(γ-2-methoxyfuran(ε-caprolactone)) (PEG-<em>b</em>-PFuCL) block copolymer using ring-opening polymerization of FuCL monomer. The polymer was self-assembled in aqueous media to form micelles. The aromatic segment of PEG-<em>b</em>-PFuCL micelles enhanced the doxorubicin (DOX) loading through non-covalent interactions, resulting in a 4.25 wt% drug-loading capacity. We also showed that the hydrolysis of the ester bond allowed a faster <em>in vitro</em> drug release at pH 5.0 compared to pH 7.4. Cell viability experiments revealed that DOX-loaded PEG-<em>b</em>-PFuCL micelles show that micelles are cytotoxic and readily uptaken into MDA-MB-231 cells. Therefore, furan-substituted micelles will be an ideal drug carrier with higher polymer-to-drug interactions, enhanced drug loading, and lower premature leakage.</p>","PeriodicalId":83,"journal":{"name":"Journal of Materials Chemistry B","volume":" 13","pages":" 4166-4178"},"PeriodicalIF":6.1000,"publicationDate":"2025-02-24","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Computational design to experimental validation: molecular dynamics-assisted development of polycaprolactone micelles for drug delivery†\",\"authors\":\"Tejas Shah, Himanshu Polara, Godwin Babanyinah, Abhi Bhadran, Hanghang Wang, Cristina Cu Castillo, Gerik Grabowski, Michael C. Biewer, Hedieh Torabifard and Mihaela C. Stefan\",\"doi\":\"10.1039/D4TB02789B\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >Amphiphilic diblock copolymers are used in drug delivery systems for cancer treatments. However, these carriers suffer from lower drug loading capacity, poor water solubility, and non-targeted drug release. Here, we utilized a computational approach to analyze the effect of the functional groups of the hydrophobic block on the drug–polymer interactions. To design effective drug carriers, four different amphiphilic block copolymer micelles with distinct aromatic and heteroaromatic groups at the hydrophobic core were subjected to molecular dynamics simulations. The solvent-accessible surface area, water shell, hydrogen bonding, and radius of gyration of the simulated micelles were determined. Further, we assessed the interactions between the hydrophobic block and drug molecules using linear interaction energy and non-covalent interactions. The computational studies revealed that the micelles containing a novel poly(γ-2-methoxyfuran-ε-caprolactone) (PFuCL) hydrophobic block have the highest polymer–drug interactions. From these findings, we synthesized a novel amphiphilic poly(ethylene glycol)-<em>b</em>-poly(γ-2-methoxyfuran(ε-caprolactone)) (PEG-<em>b</em>-PFuCL) block copolymer using ring-opening polymerization of FuCL monomer. The polymer was self-assembled in aqueous media to form micelles. The aromatic segment of PEG-<em>b</em>-PFuCL micelles enhanced the doxorubicin (DOX) loading through non-covalent interactions, resulting in a 4.25 wt% drug-loading capacity. We also showed that the hydrolysis of the ester bond allowed a faster <em>in vitro</em> drug release at pH 5.0 compared to pH 7.4. Cell viability experiments revealed that DOX-loaded PEG-<em>b</em>-PFuCL micelles show that micelles are cytotoxic and readily uptaken into MDA-MB-231 cells. 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Computational design to experimental validation: molecular dynamics-assisted development of polycaprolactone micelles for drug delivery†
Amphiphilic diblock copolymers are used in drug delivery systems for cancer treatments. However, these carriers suffer from lower drug loading capacity, poor water solubility, and non-targeted drug release. Here, we utilized a computational approach to analyze the effect of the functional groups of the hydrophobic block on the drug–polymer interactions. To design effective drug carriers, four different amphiphilic block copolymer micelles with distinct aromatic and heteroaromatic groups at the hydrophobic core were subjected to molecular dynamics simulations. The solvent-accessible surface area, water shell, hydrogen bonding, and radius of gyration of the simulated micelles were determined. Further, we assessed the interactions between the hydrophobic block and drug molecules using linear interaction energy and non-covalent interactions. The computational studies revealed that the micelles containing a novel poly(γ-2-methoxyfuran-ε-caprolactone) (PFuCL) hydrophobic block have the highest polymer–drug interactions. From these findings, we synthesized a novel amphiphilic poly(ethylene glycol)-b-poly(γ-2-methoxyfuran(ε-caprolactone)) (PEG-b-PFuCL) block copolymer using ring-opening polymerization of FuCL monomer. The polymer was self-assembled in aqueous media to form micelles. The aromatic segment of PEG-b-PFuCL micelles enhanced the doxorubicin (DOX) loading through non-covalent interactions, resulting in a 4.25 wt% drug-loading capacity. We also showed that the hydrolysis of the ester bond allowed a faster in vitro drug release at pH 5.0 compared to pH 7.4. Cell viability experiments revealed that DOX-loaded PEG-b-PFuCL micelles show that micelles are cytotoxic and readily uptaken into MDA-MB-231 cells. Therefore, furan-substituted micelles will be an ideal drug carrier with higher polymer-to-drug interactions, enhanced drug loading, and lower premature leakage.
期刊介绍:
Journal of Materials Chemistry A, B & C cover high quality studies across all fields of materials chemistry. The journals focus on those theoretical or experimental studies that report new understanding, applications, properties and synthesis of materials. Journal of Materials Chemistry A, B & C are separated by the intended application of the material studied. Broadly, applications in energy and sustainability are of interest to Journal of Materials Chemistry A, applications in biology and medicine are of interest to Journal of Materials Chemistry B, and applications in optical, magnetic and electronic devices are of interest to Journal of Materials Chemistry C.Journal of Materials Chemistry B is a Transformative Journal and Plan S compliant. Example topic areas within the scope of Journal of Materials Chemistry B are listed below. This list is neither exhaustive nor exclusive:
Antifouling coatings
Biocompatible materials
Bioelectronics
Bioimaging
Biomimetics
Biomineralisation
Bionics
Biosensors
Diagnostics
Drug delivery
Gene delivery
Immunobiology
Nanomedicine
Regenerative medicine & Tissue engineering
Scaffolds
Soft robotics
Stem cells
Therapeutic devices