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F Wittlich

Publications and source records attributed to F Wittlich.

3 recordsLinked to original sources

Quantitative measurement of regional blood flow with gadolinium diethylenetriaminepentaacetate bolus track NMR imaging in cerebral infarcts in rats: validation with the iodo[14C]antipyrine technique.

NMR bolus track measurements were correlated with autoradiographically determined regional cerebral blood flow (rCBF). The NMR method is based on bolus infusion of the contrast agent gadolinium diethylenetriaminepentaacetate and high-speed T*2-sensitive NMR imaging. The first pass of the contrast agent through the image plane causes a transient decrease of the signal intensity. This time course of the signal intensity is transformed into relative concentrations of the contrast agent in each pixel. The mean transit time and relative blood flow and volume are calculated from such indicator dilution curves. We investigated whether this NMR technique correctly expresses the relative rCBF. The relative blood flow data, calculated from NMR bolus track experiments, and the absolute values of iodo[14C]antipyrine autoradiography were compared. A linear relationship was observed, indicating the proportionality of the transient NMR signal change with CBF. Excellent interindividual reproducibility of calibration constants is observed (r = 0.963). For a given NMR protocol, bolus track measurements calibrated with autoradiography after the experiment allow determination of absolute values for rCBF and regional blood volume.

Animals

Dynamic imaging with T2* contrast using U-FLARE.

Dynamic changes in T2* in the rat brain induced by the injection of Gd-DTPA are monitored using the U-FLARE sequence. Sensitivity to T2* is easily introduced into this sequence and may be freely varied. The images obtained display an adequate spatial resolution and contrast, for a temporal resolution of 1 s. Intensity-time curves and parametric images of regional cerebral blood flow (rCBV) are presented for three different blood pCO2 values. The results presented clearly demonstrate that U-FLARE is a viable method for dynamically measuring changes in T2*, and thus has application in imaging of both perfusion and functional activation.

Animals

MACSPEC--a software system for fully automatic processing and analysis of large series of NMR spectra.

In vivo NMR spectroscopy often accumulates a large number of spectra (typically 100 individual files or even more) to follow metabolic changes with high time-resolution. The analysis of these spectra is very time-consuming for the spectroscopist and, furthermore, it requires the spectrometer's computer, needed for control of experiments. Here we report the software system MACSPEC developed for automatic processing and analysis of large series of individual NMR spectra on a peripheral personal computer. With this software the spectrometer's computer is kept available for experiments, and the necessary interaction of the spectroscopist is limited to a definition of the processing conditions at the beginning of the data analysis.

Electronic Data Processing