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Droplet-based microfluidic synthesis of nanogels for controlled drug delivery: tailoring nanomaterial properties via pneumatically actuated flow-focusing junction.

Authors :
Giannitelli SM
Limiti E
Mozetic P
Pinelli F
Han X
Abbruzzese F
Basoli F
Del Rio D
Scialla S
Rossi F
Trombetta M
RosanĂ² L
Gigli G
Zhang ZJ
Mauri E
Rainer A
Source :
Nanoscale [Nanoscale] 2022 Aug 11; Vol. 14 (31), pp. 11415-11428. Date of Electronic Publication: 2022 Aug 11.
Publication Year :
2022

Abstract

Conventional batch syntheses of polymer-based nanoparticles show considerable shortcomings in terms of scarce control over nanomaterials morphology and limited lot-to-lot reproducibility. Droplet-based microfluidics represents a valuable strategy to overcome these constraints, exploiting the formation of nanoparticles within discrete microdroplets. In this work, we synthesized nanogels (NGs) composed of hyaluronic acid and polyethyleneimine using a microfluidic flow-focusing device endowed with a pressure-driven micro-actuator. The actuator achieves real-time modulation of the junction orifice width, thereby regulating the microdroplet diameter and, as a result, the NG size. Acting on process parameters, NG hydrodynamic diameter could be tuned in the range 92-190 nm while preserving an extremely low polydispersity (0.015); those values are hardly achievable in batch syntheses and underline the strength of our toolbox for the continuous in-flow synthesis of nanocarriers. Furthermore, NGs were validated in vitro as a drug delivery system in a representative case study still lacking an effective therapeutic treatment: ovarian cancer. Using doxorubicin as a chemotherapeutic agent, we show that NG-mediated release of the drug results in an enhanced antiblastic effect vs . the non-encapsulated administration route even at sublethal dosages, highlighting the wide applicability of our microfluidics-enabled nanomaterials in healthcare scenarios.

Details

Language :
English
ISSN :
2040-3372
Volume :
14
Issue :
31
Database :
MEDLINE
Journal :
Nanoscale
Publication Type :
Academic Journal
Accession number :
35903969
Full Text :
https://doi.org/10.1039/d2nr00827k