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MRBLES 2.0:使用简单的单层微流控装置高通量生成化学功能化的光谱和磁编码水凝胶珠。

MRBLES 2.0: High-throughput generation of chemically functionalized spectrally and magnetically encoded hydrogel beads using a simple single-layer microfluidic device.

作者信息

Feng Yinnian, White Adam K, Hein Jamin B, Appel Eric A, Fordyce Polly M

机构信息

Department of Genetics, Stanford University, Stanford, CA 94305 USA.

Department of Bioengineering, Stanford University, Stanford, CA 94305 USA.

出版信息

Microsyst Nanoeng. 2020 Nov 30;6:109. doi: 10.1038/s41378-020-00220-3. eCollection 2020.

Abstract

The widespread adoption of bead-based multiplexed bioassays requires the ability to easily synthesize encoded microspheres and conjugate analytes of interest to their surface. Here, we present a simple method (MRBLEs 2.0) for the efficient high-throughput generation of microspheres with ratiometric barcode lanthanide encoding (MRBLEs) that bear functional groups for downstream surface bioconjugation. Bead production in MRBLEs 2.0 relies on the manual mixing of lanthanide/polymer mixtures (each of which comprises a unique spectral code) followed by droplet generation using single-layer, parallel flow-focusing devices and the off-chip batch polymerization of droplets into beads. To streamline downstream analyte coupling, MRBLEs 2.0 crosslinks copolymers bearing functional groups on the bead surface during bead generation. Using the MRBLEs 2.0 pipeline, we generate monodisperse MRBLEs containing 48 distinct well-resolved spectral codes with high throughput (>150,000/min and can be boosted to 450,000/min). We further demonstrate the efficient conjugation of oligonucleotides and entire proteins to carboxyl MRBLEs and of biotin to amino MRBLEs. Finally, we show that MRBLEs can also be magnetized via the simultaneous incorporation of magnetic nanoparticles with only a minor decrease in the potential code space. With the advantages of dramatically simplified device fabrication, elimination of the need for custom-made equipment, and the ability to produce spectrally and magnetically encoded beads with direct surface functionalization with high throughput, MRBLEs 2.0 can be directly applied by many labs towards a wide variety of downstream assays, from basic biology to diagnostics and other translational research.

摘要

基于微珠的多重生物测定法的广泛应用需要能够轻松合成编码微球并将感兴趣的分析物缀合到其表面。在此,我们提出了一种简单的方法(MRBLEs 2.0),用于高效高通量生成具有比率条形码镧系元素编码(MRBLEs)的微球,这些微球带有用于下游表面生物缀合的官能团。MRBLEs 2.0中的微珠生产依赖于镧系元素/聚合物混合物(每种混合物包含独特的光谱代码)的手动混合,随后使用单层平行流聚焦装置产生液滴,并将液滴在芯片外批量聚合成微珠。为了简化下游分析物偶联,MRBLEs 2.0在微珠生成过程中交联在微珠表面带有官能团的共聚物。使用MRBLEs 2.0流程,我们以高通量(>150,000/分钟,可提高到450,000/分钟)生成了包含48种不同且分辨率良好的光谱代码的单分散MRBLEs。我们进一步证明了寡核苷酸和完整蛋白质与羧基MRBLEs的有效缀合以及生物素与氨基MRBLEs的有效缀合。最后,我们表明MRBLEs还可以通过同时掺入磁性纳米颗粒进行磁化,而潜在代码空间仅略有减少。凭借显著简化的设备制造、无需定制设备以及能够高通量生产具有直接表面功能化的光谱和磁性编码微珠的优势,MRBLEs 2.0可被许多实验室直接应用于从基础生物学到诊断及其他转化研究的各种下游测定。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9dcd/8433469/6e2efd7e6a28/41378_2020_220_Fig1_HTML.jpg

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