Synthesis of a biocompatible fluorinated multiblock copolymer surfactant for water‐in‐fluorocarbon droplets and its application in droplet digital polymerase chain reaction

Author:

Feng Ruijie1,Li Zeqin23,Zhu Junyan1,Zhang Yayun1,Fang Hao23,Xue Jinbing23,Wang Jinxian23,Lyu Renliang1ORCID,Luo Gangyin234

Affiliation:

1. Key Laboratory for Green Chemical Engineering process of Ministry of Education, Key Laboratory of Novel Reactor and Green Chemical Technology of Hubei Province, School of Chemical Engineering and Pharmacy Wuhan Institute of Technology Wuhan People's Republic of China

2. Suzhou Institute of Biomedical Engineering and Technology Chinese Academy of Sciences Suzhou People's Republic of China

3. Suzhou ZhongKe Medical Device Industry Development Co., Ltd Suzhou People's Republic of China

4. School of Biomedical Engineering (Suzhou), Division of Life Science and Medicine University of Science and Technology of China Hefei People's Republic of China

Abstract

AbstractDroplet digital polymerase chain reaction (ddPCR) technology has attracted considerable attention in recent years. A multiblock surfactant based on perfluompolyethers (PFPE) has been widely used in droplet‐based microfluidics and is known to provide high droplet stability and biocompatibility. We developed a multiblock copolymer surfactant synthesized by adjusting the proportions of the intermediates to enhance the stabilities of droplets at high temperatures. The surfactants were synthesized via amidation reactions that coupled the PFPE and diamine polyethylene glycol (PEG), and the introduction of triethylamine, as a catalyst, made the reaction more efficient. The as‐synthesized surfactants were used to generate water‐in‐ fluorocarbon (W/F) droplets with a microfluidic device and a ddPCR device was used to evaluate the performance of the droplets. When the molar ratio (PFPE‐PEG:PFPE‐PEG‐PFPE) was 2:1 and the concentration reached 2 wt%, the droplets showed good thermal stability. Surfactant showed the best performance, lowering the interfacial tension to 2.5 mN/m, when it's critical micelle concentration (CMC) exceeded 50 mg/L. Furthermore, the use of an alkaline solution (pH = 910) as the washing buffer, improved the biocompatible of the surfactant. When applied to the detection of λDNA, the limit of detection was 0.52 copies/μL. The as‐synthesized surfactants showed promise in generating biocompatible and thermally stable droplets and providing a new surfactant option for future ddPCR technology.

Publisher

Wiley

Subject

Materials Chemistry,Polymers and Plastics,Surfaces, Coatings and Films,General Chemistry

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