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Scheven, U. M.

Publications and source records attributed to Scheven, U. M..

3 recordsLinked to original sources

Dynamic Magnetic Resonance Imaging of Whole-Stomach Motility in Rats

ObjectiveUnderstanding gastric physiology in rodents is critical for advancing preclinical neurogastroenterology research. However, existing techniques are often invasive, terminal, or limited in resolution. This study aims to develop a non-invasive, standardized MRI protocol capable of capturing whole-stomach dynamics in anesthetized rats with high spatiotemporal resolution. MethodsExperiments were performed in a 7-Tesla MRI system. Gadolinium-doped test meals were prepared to enhance intraluminal contrast in T1-weighted MRI. Based on a modified multi-slice gradient-echo sequence, our protocol integrates respiratory gating to minimize motion artifacts, spatial saturation to improve intraluminal contrast, and slice grouping to optimize the trade-offs between signal-to-noise ratio and motion sensitivity. Image acquisition was accelerated using a time-interleaved k-space undersampling scheme, with missing data reconstructed through k-t interpolation. Image quality and gastric motility were quantitatively assessed. ResultsThe protocol enabled successful imaging of the stomach and visualization of its pseudo-periodic dynamics in anesthetized rats. The gadolinium-doped meal produced relatively homogeneous intraluminal contrast, allowing clear delineation of gastric anatomy, volume, and motility. The retrospectively reconstructed image exhibited high image quality and yielded reliable estimates of antral contractions, confirming the effectiveness and robustness of k-t interpolation method. Estimated antral contraction amplitude and velocity showed minimal deviations from the reference values, whereas contraction frequency estimation remained highly consistent and accurate. Prospective acquisitions using the accelerated imaging protocol successfully imaged the entire stomach and major intestinal regions, acquiring 24 slices every < 3 s and capturing antral contraction at [~]5 cycles per minute. ConclusionWe established an accessible and standardized imaging protocol that encompasses contrast meal preparation, animal handling and training, and a contrast-enhanced dynamic GI MRI acquisition and reconstruction framework. SignificanceThis protocol provides a comprehensive, robust, non-invasive tool for studying gastric motility and dysmotility in rodents, offering strong potential to advance preclinical gastrointestinal motility research. Graphic AbstractIn this paper, we report a standardized, non-invasive imaging protocol that encompasses animal handling and training, contrast meal preparation, and a contrast-enhanced dynamic GI MRI acquisition and reconstruction framework for imaging whole-stomach dynamics in anesthetized rats. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=39 SRC="FIGDIR/small/657757v1_ufig1.gif" ALT="Figure 1"> View larger version (13K): org.highwire.dtl.DTLVardef@1b0aa4org.highwire.dtl.DTLVardef@157a67aorg.highwire.dtl.DTLVardef@172a2a2org.highwire.dtl.DTLVardef@1136db6_HPS_FORMAT_FIGEXP M_FIG C_FIG

bioengineering↗

Magnetic Resonance Imaging of Gastric Motility in Conscious Rats

IntroductionGastrointestinal (GI) magnetic resonance imaging (MRI) can simultaneously capture gastric peristalsis, emptying, and intestinal filling and transit. Performing GI MRI with animals requires anesthesia, which complicates physiology and confounds interpretation and translation from animals to humans. This study aims to enable MRI in conscious rats, and for the first time, characterize GI motor functions in awake versus anesthetized conditions. MethodsWe acclimated rats to remain awake, still, and minimally stressed during MRI. We scanned 14 Sprague-Dawley rats in both awake and anesthetized conditions after voluntarily consuming a contrast-enhanced test meal. ResultsAwake rats remained physiologically stable during MRI, showed gastric emptying of 23.7{+/-}1.4% after 48 minutes, and exhibited strong peristaltic contractions propagating through the antrum with a velocity of 0.72{+/-}0.04 mm/s, a relative amplitude of 40.7{+/-}2.3%, and a frequency of 5.1{+/-}0.1 cycles per minute. In the anesthetized condition, gastric emptying was about half of that in the awake condition, likely due to the effect of anesthesia in halving the amplitudes of peristaltic contractions rather than their frequency (not significantly changed) or velocity. In awake rats, the intestine filled more quickly and propulsive contractions were more occlusive. ConclusionWe demonstrated the effective acquisition and analysis of GI MRI in awake rats. Awake rats show faster gastric emptying, stronger gastric contraction with a faster propagation speed, and more effective intestinal filling and transit, compared to anesthetized rats. Our protocol is expected to benefit future preclinical studies of GI physiology and pathophysiology.

bioengineering↗

Real-time Imaging of Decompression Gas Bubble Growth in the Spinal Cord of Live Rats

1)Structured AbstractO_ST_ABSPurposeC_ST_ABSTo observe the growth and resolution of decompression gas bubbles in the spinal cord of live rats in real time using magnetic resonance imaging (MRI). MethodsWe constructed an MRI-compatible pressure chamber system to visualize gas bubble dynamics in deep tissues in real time. The system pressurizes and depressurizes rodents inside an MRI scanner and monitors their respiratory rate, heart rate, and body temperature while providing gaseous anesthesia under pressure during the experiments. ResultsWe observed the formation of decompression gas bubbles in the spinal cord of rats after compression to 7.1 bar absolute and rapid decompression inside the MRI scanner while maintaining continuous gaseous anesthesia and vital monitoring. ConclusionWe have shown the direct observation of decompression gas bubble formation in real time by MRI in live, anesthetized rats.

bioengineering↗