Exploring structure and dynamics of the polylactic-co-glycolic acid-polyethylene glycol copolymer and its homopolymer constituents in various solvents using all-atom molecular dynamics

被引:8
作者
Nyambura, Chris W. [1 ]
Sampath, Janani [2 ]
Nance, Elizabeth [1 ]
Pfaendtner, Jim [1 ]
机构
[1] Univ Washington, Dept Chem Engn, Seattle, WA 98195 USA
[2] Univ Florida, Dept Chem Engn, Gainesville, FL 32611 USA
基金
美国国家科学基金会;
关键词
biomaterials; biomedical applications; theory and modeling; DILUTE POLYMER-SOLUTIONS; FORCE-FIELD BENCHMARK; ORGANIC LIQUIDS; PLGA; CONFORMATION; RELAXATION; NANOPARTICLES; RELEASE;
D O I
10.1002/app.52732
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Polylactic-co-glycolic acid (PLGA)-basedpolymers are synthetic materials that are prominent in drug delivery. PLGA homopolymer is biodegradable, biocompatible and is often polymerized to polyethylene glycol (PEG) to form a block copolymer used to form core-shell nanoparticles. PEG is known for reducing blood clearance and opsonization, in addition to imparting "stealth" properties to various drugs and biomaterials. Current formulation methodologies for PLGA-PEG copolymer nanoparticles can be tuned to control key parameters for improved therapeutic delivery; however, molecular-level understanding of copolymersolvent interactions during nanoparticle formulation is lacking. Therefore, three different PLGA-PEG/solvent pairs are examined, in comparison to their homopolymer constituents, to better understand copolymerization effects and its impact on nanoparticle formulation. Results show that at room temperature PLGA-PEG oligomers in dimethyl sulfoxide are the most rigid in good solvent conditions (Flory exponent >0.5) and have the largest end-to-end relaxation times when compared to acetone and water. PEG has a Flory exponent of similar to 0.5 in both water and acetone, showing that the molecular dynamic model that is employed can reproduce its amphiphilic nature in solution. Knowledge of PLGA-PEG structure and dynamics can be used in the design of novel biomedical technologies that improve drug efficacy and reduce cost of treatment.
引用
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页数:13
相关论文
共 51 条
[1]   Gromacs: High performance molecular simulations through multi-level parallelism from laptops to supercomputers [J].
Abraham, Mark James ;
Murtola, Teemu ;
Schulz, Roland ;
Páll, Szilárd ;
Smith, Jeremy C. ;
Hess, Berk ;
Lindah, Erik .
SoftwareX, 2015, 1-2 :19-25
[2]  
Abraham M.J., 2018, DEV GROMACS USER MAN
[3]   Exploring with Molecular Dynamics the Structural Fate of PLGA Oligomers in Various Solvents [J].
Andrews, James ;
Blaisten-Barojas, Estela .
JOURNAL OF PHYSICAL CHEMISTRY B, 2019, 123 (48) :10233-10244
[4]  
[Anonymous], 1979, MAKROMOL CHEM, V3, P195
[5]   Nanoparticles in the clinic [J].
Anselmo, Aaron C. ;
Mitragotri, Samir .
BIOENGINEERING & TRANSLATIONAL MEDICINE, 2016, 1 (01) :10-29
[6]   A WELL-BEHAVED ELECTROSTATIC POTENTIAL BASED METHOD USING CHARGE RESTRAINTS FOR DERIVING ATOMIC CHARGES - THE RESP MODEL [J].
BAYLY, CI ;
CIEPLAK, P ;
CORNELL, WD ;
KOLLMAN, PA .
JOURNAL OF PHYSICAL CHEMISTRY, 1993, 97 (40) :10269-10280
[7]   Micro vs. nano: PLGA particles loaded with trimethoprim for instillative treatment of urinary tract infections [J].
Brauner, Bernhard ;
Schwarz, Patrik ;
Wirth, Michael ;
Gabor, Franz .
INTERNATIONAL JOURNAL OF PHARMACEUTICS, 2020, 579
[8]   Canonical sampling through velocity rescaling [J].
Bussi, Giovanni ;
Donadio, Davide ;
Parrinello, Michele .
JOURNAL OF CHEMICAL PHYSICS, 2007, 126 (01)
[9]   Force Field Benchmark of Organic Liquids: Density, Enthalpy of Vaporization, Heat Capacities, Surface Tension, Isothermal Compressibility, Volumetric Expansion Coefficient, and Dielectric Constant [J].
Caleman, Carl ;
van Maaren, Paul J. ;
Hong, Minyan ;
Hub, Jochen S. ;
Costa, Luciano T. ;
van der Spoel, David .
JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2012, 8 (01) :61-74
[10]   PLGA-lecithin-PEG core-shell nanoparticles for controlled drug delivery [J].
Chan, Juliana M. ;
Zhang, Liangfang ;
Yuet, Kai P. ;
Liao, Grace ;
Rhee, June-Wha ;
Langer, Robert ;
Farokhzad, Omid C. .
BIOMATERIALS, 2009, 30 (08) :1627-1634