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Biomedical subjects

M Filippi

Publications and source records attributed to M Filippi.

At least 109 records · Page 6Linked to original sources

The role of non-conventional MR techniques to study multiple sclerosis patients.

Conventional magnetic resonance imaging (MRI) lacks pathological specificity to the heterogeneous substrates of multiple sclerosis (MS) lesions and is not able to detect subtle, disease-related changes in the normal-appearing white matter (NAWM). As a consequence, the correlation between MRI findings and the long-term evolution of MS is moderate at best. To overcome the limitations of conventional MRI, new quantitative magnetic resonance (MR) techniques, such as cell-specific imaging, magnetization transfer imaging (MTI), proton magnetic resonance spectroscopy (MRS), diffusion-weighted imaging (DWI) and functional MR imaging (fMRI) have all been recently applied to the study of MS. These techniques should provide more accurate and pathologically specific estimates of the MS lesion burden than conventional MR and should improve our understanding of the mechanisms leading to MS-related irreversible disability.

Humans↗

Overview of diffusion-weighted magnetic resonance studies in multiple sclerosis.

Diffusion-weighted magnetic resonance imaging (DW-MRI) provides a unique form of MR contrast that enables the diffusional motion of water molecules to be quantitatively measured. As a consequence, DW-MRI provides information about the size, shape, integrity, and orientation of brain structures. Pathological processes able to alter tissue integrity by removing or modifying some of the structural barriers that normally restrict water molecular motion in biological tissues cause changes in water diffusion characteristics, which can be measured in-vivo using DW-MRI. Although DW-MRI has been shown to be of great clinical utility in the assessment of patients with cerebral ischemia, it is also increasingly being used to quantify in-vivo the extent and severity of multiple sclerosis (MS) pathology. The pathological elements of MS have the potential to alter the permeability or geometry of structural barriers to water molecular motion in the brain, optic nerve and spinal cord. The present review outlines the major contributions given by DW-MRI for the quantification of MS-related damage and for the understanding of MS pathophysiology.

Animals↗

Diffusion tensor magnetic resonance imaging in multiple sclerosis.

OBJECTIVES: To quantify, using diffusion tensor imaging (DTI), the tissue damage in lesions and normal-appearing white matter (NAWM) from a large cohort of patients with MS and to investigate the magnitude of the correlation between DTI-derived metrics and clinical disability. METHODS: Dual-echo and DTI scans were obtained from 78 patients with relapsing-remitting, secondary progressive, or primary progressive MS and from 20 normal control participants. Post-contrast T1-weighted images were also obtained from the patients. After creating mean diffusivity (D) and fractional anisotropy (FA) images and image coregistration, D and FA values were measured for 4846 lesions (3207 nonenhancing T1-isointense, 1511 nonenhancing T1-hypointense, and 128 enhancing), 497 NAWM areas from patients, and 160 white matter areas from the controls. RESULTS: The average lesion D was higher and the average lesion FA was lower than the corresponding quantities of the NAWM (p < 0.001). The values of enhancing and nonenhancing lesions were not different, whereas enhancing lesions had lower FA (p < 0.001). T1-hypointense lesions had higher D and lower FA than T1-isointense lesions (p < 0.001). NAWM of patients had higher and lower FA than white matter of controls (p = 0.01). Significant correlations were found between T1 and T2 lesion volume and and FA of lesions and NAWM. In the overall patient sample, a moderate correlation was also found between lesion D and the Expanded Disability Status Scale score (r = 0.28, p = 0.01). However, the r value of this correlation was 0.48 in patients with secondary progressive MS, whose disability was also correlated with average lesion FA (r = -0.50). CONCLUSIONS: The results of this study show that DTI is able to identify MS lesions with severe tissue damage and to detect changes in the NAWM. They also indicate that DTI-derived measures are correlated with clinical disability, especially in patients with secondary progressive MS, thus suggesting a role for DTI in monitoring advanced phases of the disease.

Adult↗

Magnetization transfer and diffusion tensor MR imaging of basal ganglia from patients with multiple sclerosis.

Although post-mortem studies have shown that lesions of multiple sclerosis (MS) can be detected in the basal ganglia, conventional T2-weighted magnetic resonance (MR) imaging is poorly sensitive for detecting such abnormalities. This study was performed to investigate whether magnetization transfer (MT) and diffusion tensor MR imaging are able to detect in vivo basal ganglia changes in patients with MS. After image coregistration, MT ratio (MTR) and mean diffusivity (&Dmacr;) maps were obtained and MTR and &Dmacr; values of the putamen, head of the caudatus and thalamus measured from 31 patients with clinically definite MS and 14 age- and sex-matched healthy volunteers using region of interest analysis. Although we found slightly decreased MTR and increased &Dmacr; in the basal ganglia from patients compared to controls, suggesting increased extra-cellular water and reduced amount of 'barriers' restricting water molecular motion in the basal ganglia of patients with MS, none of the differences was statistically significant. These data suggest that the more sophisticated MR probes of tissue disruption and cellular integrity are no more sensitive than current conventional imaging for detecting basal ganglia abnormalities in patients with MS.

Adult↗

An MR study of tissue damage in the cervical cord of patients with migraine.

Hyperintense abnormalities on T2-weighted magnetic resonance (MR) scans of the brain from patients with migraine are a relatively frequent finding and may represent a diagnostic challenge. We studied the cervical cord of patients with migraine using T2-weighted and magnetization transfer (MT) scans to assess whether the study of macro- and microscopic tissue damage in the cervical cord of these patients may have some diagnostic utility. T2-weighted and MT scans of the cervical cord and dual-echo scans of the brain were acquired from 16 patients with migraine and 17 sex- and age-matched healthy volunteers. Cervical cord MT ratio (MTR) histograms were obtained from all subjects and the relative peak height, the peak position, and the average MTR measured. Five migraine patients (31%) had hyperintense lesions in the brain. Neither healthy controls nor patients with migraine had any abnormalities on cervical cord MR scans. There was no difference for any of the cord MTR histogram-derived metrics between patients with migraine and healthy controls. No MTR histogram-derived measures from migraine patients were 2 standard deviations below the mean values from controls. Patients with migraine do not have MR or MT abnormalities in the cervical cord. MR scanning of the cervical cord in patients with migraine and hyperintense brain lesions of unknown etiology may be a useful investigation to facilitate the diagnostic workout.

Adolescent↗

Primary angiitis of the central nervous system: serial MRI of brain and spinal cord.

MRI findings in primary angiitis of the central nervous system (PACNS) are highly variable, ranging from normal to diffusely abnormal. We describe brain and spinal cord abnormalities in patients with PACNS and changes over time, to provide criteria which could be useful for differential diagnosis. We reviewed six patients, with a final diagnosis of PACNS, who underwent serial contrast-enhanced brain and spinal MRI. Follow-up ranged from 12 to 60 months. Brain MRI showed multiple small abnormalities in all patients, giving high signal on T2-weighted images, focal or diffuse, mainly in deep and subcortical white matter; four patients had both supra- and infratentorial lesions. On the initial MRI, in five patients, almost 90% of the abnormal foci showed contrast enhancement. Virchow-Robin perivascular spaces were enlarged and simultaneously enhancing in four patients. Three patients also had spinal cord abnormalities, in the cervical and thoracic segments in two, and exclusively cervical segment in one. Two patients had brain biopsy-proven PACNS; in the remainder, the diagnosis of PACNS was presumptive, considering similarities in clinical and MRI features and MRI follow-up. On MRI, after steroid and immunosuppressive therapy, a significant decrease in the number and size of the abnormalities, enhancing and nonenhancing and of enhancing perivascular spaces was observed. Simultaneous enhancement of brain and spinal cord lesions and of perivascular spaces, at the onset of the disease, which resolves during follow-up, can therefore suggest PACNS.

Adolescent↗

In-vivo tissue characterization of multiple sclerosis and other white matter diseases using magnetic resonance based techniques.

In several white matter diseases of the central nervous system (CNS), and in particular in multiple sclerosis (MS), conventional magnetic resonance imaging (MRI) has proved to be sensitive for detecting lesions and their changes over time. However, conventional MRI is not able to characterize and quantify the tissue damage within and outside such lesions. Other quantitative MR techniques, including proton MR spectroscopy (1H-MRS), magnetization transfer MRI (MT-MRI) and diffusion-weighted MRI (DW-MRI) have the potential to overcome this limitation and, as a consequence, to provide additional information about the nature and the extent of tissue damage, which would be inevitably lost when only conventional MRI is obtained. Metrics derived from MT- and DW-MRI can quantify the structural changes occurring within and outside lesions visible on conventional MRI scans. 1H-MRS could add information on the biochemical nature of such changes. The application of these MR techniques to the study of MS is increasing dramatically our understanding of how MS causes irreversible disability and it is likely to provide useful insights into the pathophysiology of other diseases of the CNS in the near future.

Brain Chemistry↗

Improved interobserver agreement for visual detection of active T2 lesions on serial MR scans in multiple sclerosis using image registration.

The aim of this study was to analyse the effect of image registration on interobserver agreement in the visual detection of active multiple sclerosis (MS) lesions from serial magnetic resonance (MR) scans. T2W spin-echo MR scans (3-mm slices) of 16 MS patients participating in a treatment trial were selected. For each patient, two pairs of scans were used: an original (i. e., non-registered) and a registered pair. For the original pair, baseline and month 6 were used, and for the registered pair month 3 and 9. For registration an automatic matching algorithm based on Mutual Information was used. Six observers identified active lesions on both original and registered scans. Kappa values were calculated to assess interobserver agreement. Reslicing caused a slight blurring of the images, but near perfect registration. The kappa value of 0.35 +/- 0.07 for new lesions on original images improved to 0.62 (+/- 0.06) by registration (p = 0.004). For enlarging lesions on original images it was extremely poor (kappa 0.11 +/- 0.05), and did not benefit much by registration (kappa 0.20 +/- 0.11). Thus, image registration improved interobserver agreement for visual detection of new lesions. For enlarging lesions, registration improved agreement but still not to a satisfactory level.

Adult↗

A modified protocol to improve the detection of enhancing brain and spinal cord lesions in multiple sclerosis.

By detecting focal blood-brain barrier (BBB) breakdown, gadolinium (Gd-DTPA) contrast-enhanced T1-weighted magnetic resonance imaging (MRI) allows assessment of inflammatory activity in multiple sclerosis (MS) and provides a sensitive means of monitoring immunomodulatory therapies in exploratory trials. Serial monthly studies were performed in eight relapsing-remitting and eight secondary progressive patients to assess new and more sensitive techniques for enhanced MRI. Brain and spine imaging was carried out at 1.5-T on two occasions 24-72 h apart using a conventional imaging protocol with T1-weighted MRI at single-dose (0.1 mmol/kg) Gd-DTPA and a potentially more sensitive "modified" protocol with T1-weighted MRI at triple-dose (0.3 mmol/kg) Gd-DTPA (with addition of delay and magnetisation transfer presaturation for brain imaging). For each MRI protocol the total numbers of enhancing lesions (97 paired studies) and new enhancing lesions (81 paired studies) were assessed. The total number of enhancing lesions seen was 347/75 on conventional brain/cord MRI respectively, and 754/123 on modified brain/cord MRI. The respective numbers of new enhancing lesions were 168/40 on conventional and 276/71 on modified scans. Smaller increases were seen in the proportion of active scans using the modified protocol. Sample size calculations showed no reduction in sample sizes required for a parallel group study but a reduced sample size for crossover studies using the modified protocol; the addition of cord to brain imaging did not improve power for either trial design. A combined modified brain and cord imaging protocol markedly improves the detection of areas of focal BBB leakage in MS and may be useful in selected natural history studies. The modified brain protocol reduces sample size requirements for crossover studies but not necessarily for parallel design trials.

Adult↗

Magnetic resonance imaging findings predicting subsequent disease course in patients at presentation with clinically isolated syndromes suggestive of multiple sclerosis.

This review summarizes the main contributions given by magnetic resonance imaging (MRI) to predict disease evolution in patients at presentation with clinically isolated syndromes (CIS) suggestive of multiple sclerosis (MS). In these patients, the extent of lesions on T2-weighted scans of the brain is a robust predictor of the subsequent development of clinically definite MS (CDMS), moderate to severe disability and new MRI lesions. The risk of developing CDMS in patients with CIS is further increased when some of these lesions are enhancing or when additional lesions are seen on T2-weighted scans of the spinal cord. Recent studies using new MRI techniques have shown that irreversible tissue disruption is an early event in the course of MS and that subtle normal-appearing white matter changes occur in patients with CIS and are associated with an increased risk of developing CDMS. These findings are changing our views of how to monitor early MS evolution and of early MS treatment strategy.

Disease Progression↗

Clinical and MRI assessment of brain damage in MS.

Cognitive impairment in multiple sclerosis (MS), generally in the form of the so-called subcortical dementia, results predominantly by the disruption of communication among cortical and subcortical areas, consequent to white matter damage. Studies with conventional magnetic resonance imaging (MRI) demonstrated that cognitive impairment in MS patients is related to lesion burden, although the strength of this correlation is weak. This can be partially explained by the poor pathological specificity of conventional MRI techniques and by damage in the normal-appearing white matter (NAWM). This interpretation is supported by studies using non-conventional MRI techniques, more specific to the heterogeneous substrates of MS pathology, such as the assessment of hypointense lesion load on T1-weighted scans and the measurement of the magnetization transfer ratio (MTR) of whole brain, MS lesions and NAWM. Other factors, such as the site of MS lesions and the presence of active inflammation, also seem to play an important role.

Brain↗

Non-conventional MR techniques to monitor the evolution of multiple sclerosis.

In multiple sclerosis (MS), conventional magnetic resonance imaging (MRI) has proved to be sensitive for detecting lesions and their changes over time. However, conventional MRI cannot characterize and quantify the tissue damage within and outside such lesions. Other quantitative MR techniques, including MR spectroscopy (MRS), magnetization transfer imaging (MTI) and diffusion-weighted imaging (DWI) have the potential to overcome this limitation and, as a consequence, to provide complementary information to conventional MRI. MTI- and DWI-derived measurements quantify the structural changes occurring within and outside lesions seen on conventional MRI scans, and MRS adds information on the biochemical nature of such changes. The application of these MR techniques to the study of MS is dramatically increasing our understanding of how MS causes irreversible deficits, and it is likely to provide useful insights into the pathophysiology of other white matter diseases in the future. The present review summarizes the major contributions made by these three MR techniques in the understanding of MS evolution.

Central Nervous System↗

Neuroimaging techniques in the diagnostic work-up of patients with the antiphospholipid syndrome.

The detection of multisystemic involvement often leads to a correct diagnosis of the antiphospholipid syndrome (APS), even in cases with predominant neurologic manifestations. However, when central nervous system deficits are isolated and have a relapsing-remitting or a progressive course, other conditions must be carefully considered. In this context, the diagnostic accuracy of conventional magnetic resonance imaging (MRI) is hampered by its limited pathologic specificity, which is one of the reasons why no or only modest correlations have been found between the burden of MRI-visible lesions and other clinical or laboratory measures of disease severity in patients with APS. Neuroimaging techniques with a higher pathologic specificity than conventional MRI show promise in achieving diagnostic confidence earlier in the course of APS and in better monitoring the efficacy of therapeutic interventions.

Antibodies, Antiphospholipid↗

Segmenting brain white matter, gray matter and cerebro-spinal fluid using diffusion tensor-MRI derived indices.

Based on its ability to provide quantitative information about tissue microstructure, diffusion tensor magnetic resonance imaging (DT-MRI) might be a valuable approach to improve the reliability of segmentation of the various brain tissues. In this study, a fully automated and easy-to-implement technique based on 2D histogram analysis of DT-MRI derived images was used to segment white and gray matter of the brain from 10 healthy subjects (aged = 27-56 years). The results obtained with this novel segmentation strategy were compared to those achieved by two experienced observers using an operator-dependent segmentation on the dual-echo scans. Visual inspection of the segmented tissues from a third senior observer disclosed that the automated technique worked properly on all images from all subjects and was more accurate than the human raters in defining thalamus white and gray matter portions as well as in tissue classification at the external brain edge. In addition, this segmentation technique resulted in an average gray/white matter ratio similar to that reported by post-mortem assessment. The application of the operator-dependent segmentation strategy was extremely time-consuming and the two observers achieved poorly reproducible results. Segmenting brain white and gray matter using information from DT-MRI proved to be an accurate approach with the potential for improving the understanding of the pathophysiology of many neurologic conditions.

Anisotropy↗

Linking structural, metabolic and functional changes in multiple sclerosis.

In patients with multiple sclerosis (MS), conventional magnetic resonance imaging (MRI) has markedly improved our ability to detect the macroscopic abnormalities of the brain and spinal cord. New quantitative magnetic resonance (MR) approaches with increased sensitivity to subtle normal-appearing white matter (NAWM) and grey matter changes and increased specificity to the heterogeneous pathological substrates of MS may give information complementary to conventional MRI. Magnetization transfer imaging (MTI) and diffusion-weighted imaging (DWI) have the potential to provide important information on the structural changes occurring within and outside T2-visible lesions. Magnetic resonance spectroscopy (MRS) adds information on the biochemical nature of such changes. Functional MRI might quantify the efficiency of brain plasticity in response to MS injury and improve our understanding of the link between structural damage and clinical manifestations. The present review summarizes how the application of these MR techniques to the study of MS is dramatically changing our understanding of how MS causes irreversible neurological deficits.

Central Nervous System↗

In vivo assessment of the brain and cervical cord pathology of patients with primary progressive multiple sclerosis.

In patients with primary progressive (PP) multiple sclerosis, brain MRI lesion activity and burden are low, despite the presence of severe neurological impairment. On the contrary, the degree of cord atrophy and diffuse tissue damage in the brain and cervical cord have been found to be associated with clinical disability. Against this background, this study aimed at providing an in vivo indirect assessment of brain and cervical cord pathology in a large cohort of PP multiple sclerosis patients, using conventional MRI and magnetization transfer imaging (MTI). Ninety-one PP multiple sclerosis patients, 36 secondary progressive (SP) multiple sclerosis patients and 30 healthy controls underwent brain and cervical cord MRI scans, using dual echo (brain) or fast short-tau inversion recovery (cervical cord) MTI and T(1)-weighted sequences. For the brain, T(2) hyperintense and T(1) hypointense lesion volumes were calculated and the volume of the whole of the brain tissue measured. For the cervical cord, the number and burden of lesions and the cross-sectional area were assessed. MTI scans were post-processed and analysed to obtain magnetization transfer ratio (MTR) histograms from the whole of the brain and cervical cord tissue and from the normal-appearing brain tissue in isolation. In PP multiple sclerosis patients, brain, normal-appearing brain tissue and cervical cord MTR histogram-derived metrics revealed the presence of diffuse tissue damage whose characteristics did not significantly differ from those of SP multiple sclerosis patients, even though SP multiple sclerosis patients had higher MRI-visible lesion burdens. None of the correlations between MRI or MTI measures obtained from the brain and the cord were significant. PP multiple sclerosis patients' disability was significantly, albeit weakly associated with a composite MR model including measures of loss and intrinsic damage of cervical cord tissue. Our data indicate the presence of a diffuse tissue damage undetectable by conventional MRI in PP multiple sclerosis patients, whose extent seems to match that of SP multiple sclerosis patients with similar levels of disability. They also suggest that the severity of multiple sclerosis pathology in the cervical cord is one of the factors contributing to neurological impairment in PP multiple sclerosis.

Adult↗