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Biomedical subjects

R Prost

Publications and source records attributed to R Prost.

18 recordsLinked to original sources

Proton MR spectroscopy of the brain.

Over the past five decades, MR spectroscopy has evolved from an analytical chemistry tool to a noninvasive clinical examination on FDA approved equipment with an AMA billing code. While proton MR spectroscopy has dominated current clinical studies, interest in other nucleii has arisen, particularly P-31 for the evaluation of membrane lipids, and C-13 for the evaluation of glutamate neurotransmission and excitotoxicity. Currently, the most common neuroradiological diagnostic indication is the differentation of suspected cerebral neoplasms for post-treatment effects, abcesses, subacute infarcts, demyelinating disease, and other non-neoplastic processes. Recent recommendations for monitoring multiple sclerosis treatment suggest an increasing role for MR spectroscopy in the future.

Brain

Brain tumors: localized H-1 MR spectroscopy at 0.5 T.

PURPOSE: To investigate the feasibility of obtaining clinically useful magnetic resonance (MR) spectra at 0.5 T in cerebral lesions. MATERIALS AND METHODS: Single-voxel localized proton MR spectroscopy was performed at 0.5 T in 18 patients (aged 16-73 years) suspected of having cerebral lesions on MR images who subsequently underwent craniotomy and biopsy and in eight volunteers (aged 21-50 years). The metabolite resonances in the MR spectra were stratified according to the histologic diagnosis. MR spectra demonstrated resonances for choline-containing compounds (Cho), creatine and phosphocreatine, glutamine and glutamate, N-acetylaspartate (NAA), myo-inositol, and lactate. RESULTS: In 14 of 15 patients with cerebral tumors, the Cho-NAA ratio was increased and was greater than 1. In three patients with nonneoplastic cerebral lesions, the ratio did not exceed 1. In healthy control subjects, the average ratio was 0.54. CONCLUSION: H-1 MR spectroscopy at 0.5 T provides clinically useful information in patients with cerebral lesions.

Adolescent

Accuracy of single-voxel proton MR spectroscopy in distinguishing neoplastic from nonneoplastic brain lesions.

PURPOSE: To measure the accuracy of single-voxel, image-guided proton MR spectroscopy in distinguishing normal from abnormal brain tissue and neoplastic from nonneoplastic brain disease. METHODS: MR spectroscopy was performed at 0.5 T with the point-resolved spectroscopic pulse sequence and conventional postprocessing techniques. Subjects consisted of a consecutive series of patients with suspected brain neoplasms or recurrent neoplasia and 10 healthy adult volunteers. Fifty-five lesions in 53 patients with subsequently verified final diagnoses were included. Spectra were interpreted qualitatively by visual inspection by nonblinded readers (prospectively) with the benefit of prior clinical data and imaging studies, and by blinded readers (retrospectively). The nonblinded readers interpreted the spectra as diagnostic or not, and, if diagnostic, as neoplastic or nonneoplastic. The blinded readers classified the spectra as diagnostic or not, and, if diagnostic, as normal or abnormal and as neoplastic or nonneoplastic (when abnormal). The sensitivity, specificity, positive and negative predictive values, and accuracy were calculated from blinded and nonblinded MR spectroscopy interpretations. A receiver operator characteristic (ROC) curve analysis was performed on blinded MR spectroscopy interpretations. RESULTS: The diagnostic accuracy averaged across four blinded readers in differentiating patients from control subjects was .96, while the area under the aggregate (pooled interpretations) ROC curve approached unity. Accuracy in the nonblinded and blinded discrimination of neoplastic from nonneoplastic disease was .96 and .83, respectively. The area under the aggregate ROC curve in the blinded discrimination of neoplasm from nonneoplasm was .89. CONCLUSIONS: Image-guided proton spectra obtained at 0.5 T from patients with suspected neoplasia can be distinguished from spectra in healthy control subjects, and neoplastic spectra can be distinguished from nonneoplastic spectra with a high degree of diagnostic accuracy.

Adult

ROC assessment of compressed wrist radiographs.

The aim of this paper is to validate a compression scheme applied on a medical image database of digitized wrist radiographs. The compression scheme adapts itself to local statistical properties of the images. The diagnostic quality of the reconstructed images is evaluated using a ROC protocol involving five medical experts. The results of this evaluation enable us to validate the compression scheme on this database with a compression ratio of 40 (0.2 bits per pixel).

Humans

Magnetic resonance imaging of cerebrospinal fluid volume and the influence of body habitus and abdominal pressure.

BACKGROUND: Although the cerebrospinal fluid (CSF) is the pathway of anesthetic delivery and the diluent for neuraxially administered drugs, little is known about its volume, including variability among individuals, longitudinal distribution, or influence of body habitus. Models made to investigate subarachnoid anesthetic distribution lack valid dimensions. CSF volume was measured in volunteers, and the effect of obesity and abdominal compression on CSF volume was evaluated using magnetic resonance imaging. METHODS: Low thoracic and lumbosacral axial magnetic resonance images of 25 healthy volunteers were obtained at 8-mm intervals by fast spin-echo sequence, which highlights CSF. A repeat image series was performed in 15 subjects during external abdominal compression. In two subjects, images were obtained without compression for the entire vertebral column. Dural sac and spinal cord areas were determined in a blinded fashion for each image using video/digital analysis. Area of the sac minus area of the cord constituted area of CSF and roots ("CSF/root"); this area multiplied by 8 mm resulted in CSF/root volume per section. RESULTS: There is great interindividual variability in CSF/root volume. From the T11-T12 disc to the sacral terminus of the dural sac, the mean volume for all subjects is 49.9 +/- 12.1 ml (mean +/- SD; range 28.0-81.1 ml). This volume was significantly less in relatively obese subjects (42.9 +/- 9.5 ml) than in nonobese subjects (53.5 +/- 12.9 ml). Abdominal compression decreased CSF/root volume by 3.6 +/- 3.2 ml. Sections through intervertebral foramina showed the biggest decrease with abdominal compression, with a lesser change in sections with veins and no change in the absence of these anatomic features. Total vertebral CSF/root volume in two subjects was 94.84 and 120.01 ml, respectively. CONCLUSIONS: CSF volume is widely variable between individuals. The decreased CSF volume that results from increased abdominal pressure, such as with obesity or pregnancy, may produce more extensive neuraxial blockade through diminished dilution of anesthetic. The mechanism by which increased abdominal pressure decreases CSF volume is probably inward movement of soft tissue in the intervertebral foramen, which displaces CSF.

Abdomen

Effect of dose and field strength on enhancement with paramagnetic contrast media.

PURPOSE: To compare contrast enhancement per unit of dose of contrast medium in MR imaging at 0.5 and 1.5 T. METHODS: Contrast enhancement in images made at 0.5 and 1.5 T after 0.1 mmol/kg of gadopentetate dimeglumine and 0.3 mmol/kg of gadodiamide was measured and the degree of contrast enhancement in the cavernous sinus and pituitary gland compared. RESULTS: At both field strengths and both contrast medium doses, contrast enhancement was noted in the cavernous sinus, pituitary gland, infundibulum, maxillary sinus mucosa, falx cerebri, and choroid plexus on inspection of images. Enhancement was significantly and conspicuously less in the cavernous sinus and pituitary gland at 0.5 T (96% and 33%, respectively) than at 1.5 T (160% and 102%, respectively). No tissues were identified that enhanced only with the larger dose or higher field strength. CONCLUSION: In tissues that normally enhance after intravenous administration of gadolinium chelates, enhancement is greater at 1.5 T than at 0.5 T.

Brain Neoplasms

Cryosolvents effects on low temperature gel structure of denatured collagen.

Water flux and crystallization are major problems for cryopreservation. The gel approach relies on the concept that a biological gel network might sufficiently entrap fluid within its pores, so as to maintain its osmotically inactive under the stresses usually encountered in the course of cryopreservation and limit the extent of crystallization. It could even induce vitrification. The effects of some cryosolvents on the structure of denatured collagen gels were studied as a function of temperature by hydraulic conductivity measurements and electron microscopy observations, so as to explore the porosity and fluid behavior of the gels. Gels formed in the presence of methanol exhibit a large increase in pore size as gelation temperature drops, whereas almost no variation is detected with ethylene glycol, where the porosity is finer. Gels in the presence of ethylene glycol display a larger fluid content, smaller flow rates, and better pressure resistance than those in the presence of methanol. Electron micrographs confirm the variations in gel structures depending on the cryosolvent and the temperature. Rheological measurements also support these observations. Upon rapid cooling, vitrification occurs only in gels with ethylene glycol. Ethylene glycol seems to have a specific interaction with denatured collagen gels which induces a finer network better adapted for trapping fluid osmotically inactive in the course of cryopreservation.

Collagen

Truncated sinc slice excitation for 31P spectroscopic imaging.

The shortest possible delay (Td) between slice selection and data acquisition is important for producing high quality 31P spectra. In single slice multivoxel spectroscopic imaging, conventional excitation using sinc-shaped rf pulses within typical gradient limitations can have values of Td that lead to significant spectral distortion and loss of signal. Truncated sinc excitation, which ends the excitation close to the center of the main rf lobe has been suggested for MR angiographic applications to produce short values of Td. In this work, the slice profiles, spectral signal-to-noise ratio (SNR) and spectral distortions are compared using the minimum delay achievable on a commercial MRI system for conventional 'sinc' rf excitation and truncated sinc excitation. Slice profiles are calculated using the Bloch equations and measured with a phantom. SNR and spectral distortions are evaluated from whole slice spectra on a human volunteer. On an MRI system with 1 G/cm gradients (0.5 msec risetime), for a 2.5-cm slice at 31P frequencies, conventional excitation can be adjusted to achieve Td = 2.5 msec while truncated sinc excitation yields Td = 1.5 msec. The truncated sinc excitation's shorter value of Td leads to much smaller spectral distortions, but its slice profile has "dispersive tails" which increase as more of the rf is truncated. Slice profile corrected SNR for the beta-ATP peak of 31P on a human volunteer is equivalent for both sequences while, qualitatively, in the PDE region the truncated sinc approach has improved SNR.

Brain

Use of roots transformed by Agrobacterium rhizogenes in rhizosphere research: applications in studies of cadmium assimilation from sewage sludges.

The use of roots transformed by Agrobacterium rhizogenes in models for the rhizosphere is discussed. A list of species for which transformed root cultures have been obtained is provided and the example of studies of cadmium assimilation from sewage sludges is given to illustrate how transformed root cultures can be used in physiological tests under non-sterile conditions.

Biological Availability

Effect of the sampling rate on magnetic resonance imaging.

Effects of the sampling rate on spatial resolution and the signal-to-noise ratio in spin-echo MR imaging were calculated. The theoretical results suggest that as T2* decreases, due to either static magnetic field inhomogeneities or shortened T2 relaxation times, the calculated optimum sampling rate increases accordingly. Since biological tissues exhibit wide variations in their magnetic susceptibilities and T2 relaxation times for various isotopes but modern magnets are characterized by good magnetic field homogeneity, the optimum sampling rate should exhibit an observable dependence on the tissue type. Proton and sodium imaging experiments confirm this conclusion.

Animals

Pituitary fossa: chemical shift effect in MR imaging.

The effect of chemical shift on magnetic resonance (MR) imaging of the pituitary fossa was studied. Healthy volunteers underwent conventional MR imaging of the pituitary fossa and then imaging with the frequency-encoding gradient reversed or with the phase- and frequency-encoding gradients interchanged. Comparison of the image pairs in each subject showed that the thin, black stripe evident at the water-fat interface within the pituitary fossa was altered when the gradients were changed. Therefore, the low-intensity signal within the pituitary fossa is a chemical shift misregistration effect.

Adipose Tissue

Effect of daily high doses of paracetamol given orally during spermatogenesis in the rat testes.

Daily treatment of male rats with high doses of Paracetamol (500 mg/kg) during spermatogenesis provokes a significant decrease of testes weight (p is less than 0.001), a significant increase of testicular cytosol glutathione transferase activity ( p is less than 0.02) and of lipid peroxides in the whole homogenate (p is less than 0.01) but not in the microsomes. These alterations could be related to a stimulation of testicular metabolism but cannot produce a biochemical lesion such as glutathione depletion since its testicular content is not modified in these experimental conditions.

Acetaminophen

Effect of motion outside the field of view on functional MR.

PURPOSE: To evaluate the effect of objects moving outside the field of view on functional MR imaging. METHODS: Echo-Planar image sequences were acquired in the sagittal plane of a stationary phantom or of the head of a volunteer subject while a second phantom was moved periodically outside the field of view. The signal intensity changes in each pixel within the field of view were measured. RESULTS: Movement of the phantom outside the field of view produced signal intensity changes in the field of view that equaled or exceeded typical functional activation without the latency that characterizes activation. The greatest changes occurred at the bottom and top edges in the phantom and at the interfaces in the head. CONCLUSION: If temporally correlated with the performance of a task, movement of objects or tissues outside the field of view may produce artifactual changes in signal intensity. The artifactual signal intensity changes were characterized by their location, greater magnitude, and more rapid rise to maximum than seen with typical "activation."

Artifacts