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Updated: Jan 22, 2026

Hyperpolarized Xenon for NMR and MRI Applications
Published on: September 6, 2012
SABRE Hyperpolarized Multichannel 19F NMR for Sensitive Detection of Multiple Disease Marker Enzymes on a Benchtop
Li Zheng1, Qiwei Peng1, Huijun Sun1
1State Key Laboratory of Physical Chemistry of Solid Surfaces, School of Electronic Science and Engineering, College of Chemistry and Chemical Engineering, and Discipline of Intelligent Instrument and Equipment, Xiamen University, Xiamen, 361005, China.
Abstract:
The unique multichannel capability of 19F nuclear magnetic resonance (NMR) stands as a pivotal and rapidly advancing frontier in chemistry, biology, and medical imaging. However, its inherent low sensitivity limits its widespread applications. While hyperpolarization significantly enhances 19F signals, simultaneously hyperpolarizing multiple 19F-containing substrates, which is essential for unlocking the multichannel potential of 19F NMR, remains a key challenge. Here, we introduce an approach that achieves effective and simultaneous hyperpolarization of different 19F nuclei from several molecular probes through parahydrogen-based signal amplification by reversible exchange (SABRE). Our strategy utilizes multiple 19F-labeled substrates for SABRE, acting as co-ligands for simultaneous enhancement of their 19F NMR signal intensities. The synergistic effect among different 19F-labeled co-substrates is evidenced by the much higher signal enhancement, compared to the systems containing only one 19F-labeled substrate. The highest enhancement of the 19F NMR signal reached over 9600-fold on a benchtop NMR (1.4 T), corresponding to a 4.3% polarization level. On this basis, we successfully implemented multichannel quantitative detection of enzymatic biomarkers at µM levels. By utilizing three 19F-labeled pyridine-based substrates, each bearing a specific enzyme-responsive moiety, we demonstrate the capability of high-speed, cost-efficient, and highly sensitive SABRE-polarized 19F NMR for applications in biomarker detection. Our work paves the way for future applications of highly sensitive multichannel 19F NMR analysis.
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