| Literature DB >> 31181652 |
Xiaodong Ma1, Yuezhou Zhang2,3, Korbinian Weisensee4.
Abstract
The nanoprecipitation of polymers is of great interest in biological and medicinal applications. Many approaches are available, but few generalized methods can fabricate structurally different biocompatible polymers into nanosized particles with a narrow distribution in a high-throughput manner. We simply integrate a glass slide, capillary, and metal needle into a simple microfluidics device. Herein, a detailed protocol is provided for using the glass capillary and slides to fabricate the microfluidics devices used in this work. To demonstrate the generality of our nanoprecipitation approach and platform, four (semi)natural polymers-acetalated dextran (Ac-DEX), spermine acetalated dextran (Sp-Ac-DEX), poly(lactic-co-glycolic acid) (PLGA), and chitosan-were tested and benchmarked by the polymeric particle size and polydispersity. More importantly, the principal objective was to explore the influence of some key parameters on nanoparticle size due to its importance for a variety of applications. The polymer concentration, the solvent/non-solvent volume rate/ratio, and opening of the inner capillary were varied so as to obtain polymeric nanoparticles (NPs). Dynamic light scattering (DLS), transmission electron microscopy (TEM), and optical microscopy are the main techniques used to evaluate the nanoprecipitation output. It turns out that the concentration of polymer most strongly determines the particle size and distribution, followed by the solvent/non-solvent volume rate/ratio, whereas the opening of the inner capillary shows a minor effect. The obtained NPs were smooth spheres with adjustable particle diameters and polymer-dependent surface potentials, both negative and positive.Entities:
Keywords: Ac-DEX; PLGA; Sp-Ac-DEX; chitosan; flow rate; inner capillary opening; microfluidics; polymer concentration; polymeric NPs
Year: 2019 PMID: 31181652 PMCID: PMC6630245 DOI: 10.3390/mi10060383
Source DB: PubMed Journal: Micromachines (Basel) ISSN: 2072-666X Impact factor: 2.891
The materials and accessories used to assemble the microfluidics chip.
| Material | Specification | Amount | Producer |
|---|---|---|---|
| Glass slide | 75 × 25 mm | 1 | BrandTech (Essex, CT, USA) |
| Outer capillary | ODa = 1.5 mm; | 1 | World Precision Instruments, Inc (Sarasota, FL, USA) |
| Inner capillary | ODa = 1.0 mm; | 1 | World Precision Instruments, Inc (Sarasota, FL, USA) |
| Syringe tip | Blunt end needle | 3 | Warner Instruments (Hamden, CT, USA) |
| Glue | 5 min Epoxy | --- | Devcon (Danvers, MA, USA) |
| Puller | Model PN-31 | 1 | Narishige (Tokyo, Japan) |
| Sandpaper | Grit = 1200 | 1 | Indasa–Rhynowet (Aveiro, Portugal) |
| Diamond tip glass cutter | --- | 1 | Harden (Xi’an, China) |
ODa = outer diameter; IDb = inner diameter.
Figure 1The building blocks for the microfluidics chip. (1) The inlet and outlet needle of flow; (2) Tapered inner capillary; (3) Outer capillary; (4) Assembly of individual parts on a glass slide.
Figure 2Workstation to fabricate polymer into nanoparticles (NPs). (A) Pump A; (B) Pump B; (C) Syringe A; (D) Syringe B; (E) Microfluidics chip; (F) Microscope; (G) Beaker; (H) Stirrer; (I) Monitor; (J) Computer.
Figure 3(A) A schematic representation of 3D co-flow microfluidics and (B) a digital view of the inner and outer capillary.
Figure 4Hydrodynamic diameters of the as-prepared NPs. (A) Hydrodynamic sizes at different acetalated dextran (Ac-DEX) concentrations with fixed I/O flow at 2:40 mL/h (8.5 × 10−2 mm) in the micro-channels; (B) Hydrodynamic sizes at a 1 mg/mL Ac-DEX concentration with different fixed I/O flows (8.5 × 10−2 mm) in the micro-channels; (C) Hydrodynamic sizes at 1 mg/mL Ac-DEX concentration with fixed I/O flow at 1:40 mL/h in different micro-channels; (D) Hydrodynamic sizes at different spermine acetalated dextran (Sp-Ac-DEX) concentrations with fixed I/O flow at 2:40 mL/h (8.5 × 10−2 mm) in the micro-channels; (E) Hydrodynamic sizes at 2 mg/mL Sp-Ac-DEX concentration with different I/O flows (8.5 × 10−2 mm) in the micro-channels; (F) Hydrodynamic sizes at 2 mg/mL Sp-Ac-DEX concentration with fixed I/O flow at 2:40 mL/h in different micro-channels; (G) Hydrodynamic sizes at different poly(lactic-co-glycolic acid) (PLGA) concentrations with fixed I/O flow at 2:40 mL/h (8.5 × 10−2 mm) in the micro-channels; (H) Hydrodynamic sizes at 1 mg/mL PLGA concentration with different I/O flows (8.5 × 10−2 mm) in the micro-channels; (I) Hydrodynamic sizes at 1 mg/mL PLGA concentration with fixed I/O flow at 1:40 mL/h in different micro-channels; (J) Hydrodynamic sizes at different chitosan concentrations with fixed I/O flow at 2:40 mL/h (8.5 × 10−2 mm) in the micro-channels; (K) Hydrodynamic sizes at 1 mg/mL chitosan concentration with different I/O flows (8.5 × 10−2 mm) in the micro-channels; (L) Hydrodynamic sizes at 1 mg/mL chitosan concentration with fixed I/O flow at 2:40 mL/h in different micro-channels.
The PDI values and surface potentials of as-prepared NPs under different conditions a.
| Conditions | Ac-DEX | Sp-Ac-DEX | PLGA | Chitosan | ||||
|---|---|---|---|---|---|---|---|---|
| 4 mg/mL | 0.308 | −8.8 | 0.214 | 16.2 | 0.160 | 1.2 | 0.179 | 14.3 |
| 3 mg/mL | 0.112 | −7.9 | 0.253 | 15.5 | 0.186 | 0.9 | 0.211 | 12.5 |
| 2 mg/mL | 0.178 | −7.1 | 0.100 | 15.1 | 0.198 | −1.3 | 0.249 | 11.9 |
| 1 mg/mL | 0.164 | −5.7 | 0.241 | 13.9 | 0.088 | 0.5 | 0.175 | 12.1 |
| 1:40 | 0.184 | −5.2 | 0.197 | 14.2 | 0.059 | −0.8 | 0.163 | 11.2 |
| 2:40 | 0.164 | −5.7 | 0.100 | 15.1 | 0.088 | 0.5 | 0.175 | 12.1 |
| 4:40 | 0.210 | −6.3 | 0.097 | 16.1 | 0.123 | 0.3 | 0.176 | 11.8 |
| 6:40 | 0.173 | −7.4 | 0.183 | 16.6 | 0.239 | 0.7 | 0.203 | 12.8 |
| 5.2 × 10−4 mm | 0.194 | −6.1 | 0.177 | 15.6 | 0.135 | 0.9 | 0.215 | 11.6 |
| 8.5 × 10−2 mm | 0.184 | −5.2 | 0.100 | 15.1 | 0.059 | −0.8 | 0.175 | 12.1 |
| 1.7 × 10−1 mm | 0.198 | −6.5 | 0.175 | 16.2 | 0.134 | −1.2 | 0.125 | 12.0 |
a The data are arranged such that the first and second subcolumns of each main column represent the PDI and surface potential with a unit of mV, respectively.
Figure 5TEM images of as-prepared NPs. (A–C): Ac-DEX; (D–F): Sp-Ac-DEX; (G–I): PLGA; (J–L): chitosan. Scale bars: (D,E,J): 100 nm; (A,B,K): 200 nm; (C,G,H): 500 nm; (L) 1 μm; (I) 2 μm; (F) 5 μm.