Controlling nanoparticle formulation: A low-budget prototype for the automation of a microfluidic platform

  • Dominik M. Loy
  • , Rafal Krzysztoń
  • , Ulrich Lächelt
  • , Joachim O. Rädler
  • , Ernst Wagner

Research output: Contribution to journalArticlepeer-review

12 Scopus citations

Abstract

Active pharmaceutical ingredients (API) with suboptimal pharmacokinetic properties may require formulation into nanoparticles. In addition to the quality of the excipients, production parameters are crucial for producing nanoparticles which reliably deliver APIs to their target. Microfluidic platforms promise increased control over the formulation process due to the decreased degrees of freedom at the micro- and nanoscale. Publications about these platforms usually provide only limited information about the soft- and hardware required to integrate the microfluidic chip seamlessly into an experimental set-up. We describe a modular, low-budget prototype for microfluidic mixing in detail. The prototype consists of four modules. The control module is a raspberry pi executing customizable python scripts to control the syringe pumps and the fraction collector. The feeding module consists of up to three commercially available, programable syringe pumps. The formulation module can be any macro- or microfluidic chip connectable to syringe pumps. The collection module is a custom-built fraction collector. We describe each feature of the working prototype and demonstrate its power with polyplexes formulated from siRNA and two different oligomers that are fed to the chip at two different stages during the assembly of the nanoparticles.

Original languageEnglish
Article number129
Pages (from-to)1-16
Number of pages16
JournalProcesses
Volume9
Issue number1
DOIs
StatePublished - 2021
Externally publishedYes

Keywords

  • Lipoplex
  • Microfluidics
  • Nanoparticle
  • Polyplex
  • Python
  • Raspberry pi
  • SiRNA

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