Hydrophilic Polymers Enable Gastrointestinal Transit Monitoring by Fluorine‐19 Magnetic Resonance Imaging

ABSTRACT Gastrointestinal (GI) transit shapes nutrient absorption and oral drug delivery. However, GI anatomy, function, and motility disorders are primarily examined by radiographic imaging, which exposes patients to ionizing radiation and yields only coarse proxies of how a meal moves through the gut. By contrast, fluorine‐19 ( 19 F) MRI offers background‐free, quantitative tracking, but most oral 19 F agents are hydrophobic and phase‐separate from chyme, generating layering artifacts, which spoil motility and anatomy readouts. Here, we developed nonresorbable, hydrophilic fluorinated polymer tracers miscible with luminal contents. These tracers provided a strong, quantifiable 19 F signal for combined 1 H/ 19 F MRI and 19 F spectroscopy, enabling us to visualize GI anatomy and transit noninvasively. In vivo imaging reliably tracked whole‐gut transit and fecal elimination, with no evidence of systemic uptake or tissue injury. As such, this practical, reproducible, and radiation‐free platform for phenotyping dysmotility and monitoring therapeutic response may open up opportunities for longitudinal GI studies and clinical trials.

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Publication Details

Journal
Advanced Healthcare Materials
Published
2026-09-13
DOI
https://doi.org/10.1002/adhm.71667
Primary Topic
Lanthanide and Transition Metal Complexes
Type
article
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article

Hydrophilic Polymers Enable Gastrointestinal Transit Monitoring by Fluorine‐19 Magnetic Resonance Imaging

Jiří Beneš, Petr Páral, Маргарита Ткаченко, Ludmila Maffei Svobodová et al.
Advanced Healthcare Materials
Lanthanide and Transition Metal Complexes
article

Hydrophilic Polymers Enable Gastrointestinal Transit Monitoring by Fluorine‐19 Magnetic Resonance Imaging

Jiří Beneš, Petr Páral, Маргарита Ткаченко, Ludmila Maffei Svobodová, Filip Koucký, Ondřej Groborz, Linda Dalecká, Zuzana Pavlíková, Klára Steklíková, Kristýna Kolouchová, Mária Hovořáková, Vı́t Herynek, Petr Matouš, Nalan Fatma Cetin
article en

Abstract

ABSTRACT Gastrointestinal (GI) transit shapes nutrient absorption and oral drug delivery. However, GI anatomy, function, and motility disorders are primarily examined by radiographic imaging, which exposes patients to ionizing radiation and yields only coarse proxies of how a meal moves through the gut. By contrast, fluorine‐19 ( 19 F) MRI offers background‐free, quantitative tracking, but most oral 19 F agents are hydrophobic and phase‐separate from chyme, generating layering artifacts, which spoil motility and anatomy readouts. Here, we developed nonresorbable, hydrophilic fluorinated polymer tracers miscible with luminal contents. These tracers provided a strong, quantifiable 19 F signal for combined 1 H/ 19 F MRI and 19 F spectroscopy, enabling us to visualize GI anatomy and transit noninvasively. In vivo imaging reliably tracked whole‐gut transit and fecal elimination, with no evidence of systemic uptake or tissue injury. As such, this practical, reproducible, and radiation‐free platform for phenotyping dysmotility and monitoring therapeutic response may open up opportunities for longitudinal GI studies and clinical trials.

Advanced Healthcare Materials
Technical University of Liberec (CZ), Charles University (CZ), Institute of Macromolecular Chemistry (UA), Czech Academy of Sciences, Institute of Organic Chemistry and Biochemistry (CZ)
Zero hunger
Openalex Percentile: Top 24%
Lanthanide and Transition Metal Complexes
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