836 resultados para spine shape


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The purpose of this study was to examine whether variability in the shape of dendritic spines affects protein movement within the plasma membrane. Using a combination of confocal microscopy and the fluorescence loss in photobleaching technique in living hippocampal CA1 pyramidal neurons expressing membrane-linked GFP, we observed a clear correlation between spine shape parameters and the diffusion and compartmentalization of membrane-associated proteins. The kinetics of membrane-linked GFP exchange between the dendritic shaft and the spine head compartment were slower in dendritic spines with long necks and/or large heads than in those with short necks and/or small heads. Furthermore, when the spine area was reduced by eliciting epileptiform activity, the kinetics of protein exchange between the spine compartments exhibited a concomitant decrease. As synaptic plasticity is considered to involve the dynamic flux by lateral diffusion of membrane-bound proteins into and out of the synapse, our data suggest that spine shape represents an important parameter in the susceptibility of synapses to undergo plastic change.

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Resting cysts of the marine phytoplanktonic dinoflagellate Scrippsiella spp. are encountered in coastal habitats and shallow seas all over the world. Identification of Scrippsiella species requires information on cyst morphology because the plate pattern of the flagellated cell is conserved. Cysts from sediments of the East China Sea were identified based on traits from both the cysts and the thecal patterns of germinated cells. Calcareous cysts belonged predominantly to S. trochoidea (F. Stein) A. R. Loebl., S. rotunda J. Lewis, and S. precaria Montresor et Zingone. The former two species also produced smooth and noncalcified cysts in the field. A new species, S. donghaienis H. Gu sp. nov, was obtained from six noncalcified cysts with organic spines. These cysts are spherical, full of pale white and greenish granules with a mesoepicystal archeopyle. The vegetative cells consist of a conical epitheca and a round hypotheca with a plate formula of po, x, 4', 3a, 7 '', 6c (5c + t), 6 s, 5''', 2'''' and are morphologically indistinguishable from S. trochoidea. Results of internal transcribed spacer (ITS) sequence comparisons revealed that S. donghaienis was distinct from the S. trochoidea complex and appeared nested within the Calciodinellum/Calcigonellum clade. Culture experiments showed that the presence of a red body in the cyst and the shape of the archeopyle were constant within cell lines from one generation to the next, while the morphological features of the cyst wall, such as calcification and spine shape, appeared to be phenotypically plastic.

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Dans la cellule, chaque ARNm se doit d’être régulé finement au niveau transcriptionnel, bien entendu, mais également au niveau de sa traduction, de sa dégradation ainsi que de sa localisation intracellulaire, et ce, afin de permettre l’expression de chaque produit protéique au moment et à l’endroit précis où son action est requise. Lorsqu’un mécanisme physiologique est mis de l’avant dans la cellule, il arrive souvent que plusieurs ARNm se doivent d’être régulés simultanément. L’un des moyens permettant d’orchestrer un tel processus est de réguler l’action d’une protéine commune associée à chacun de ces ARNm, via un mécanisme post-traductionnel par exemple. Ainsi l’expression d’un groupe précis d’ARNm peut être régulée finement dans le temps et dans l’espace selon les facteurs protéiques auxquels il est associé. Dans l’optique d’étudier certains de ces complexes ribonucléoprotéiques (mRNP), nous nous sommes intéressés aux isoformes et paralogues de Staufen, une protéine à domaine de liaison à l’ARN double-brin (dsRBD) impliquée dans de nombreux aspects de la régulation post-transcriptionnelle, tels la dégradation, la traduction ou encore la localisation d’ARNm. Chez la drosophile, un seul gène Staufen est exprimé alors que chez les mammifères, il existe deux paralogues de la protéine, soit Stau1 et Stau2, tous deux possédant divers isoformes produits suite à l’épissage alternatif de leur gène. Stau1 et Stau2 sont identiques à 50%. Les deux isoformes de Stau2, Stau259 et Stau262 ne diffèrent qu’en leur extrémité N-terminale. En effet, alors que Stau259 arbore un dsRBD1 tronqué, celui de Stau262 est complet. Ces observations introduisent une problématique très intéressante à laquelle nous nous sommes attaqué : ces différentes protéines, quoique très semblables, font-elles partie de complexes ribonucléoprotéiques distincts ayant des fonctions propres à chacun ou, au contraire, vu cette similarité de séquence, travaillent-elles de concert au sein des mêmes complexes ribonucléoprotéiques? Afin d’adresser cette question, nous avons entrepris d’isoler, à partir de cellules HEK293T, les différents complexes de Stau1 et Stau2 par la technique d’immunoprécipitation. Nous avons isolé les ARNm associés à chaque protéine, les avons identifiés grâce aux micropuces d’ADN et avons confirmé nos résultats par RT-PCR. Malgré la présence d’une population commune d’ARNm associée à Stau1 et Stau2, la majorité des transcrits identifiés furent spécifiques à chaque orthologue. Cependant, nous avons remarqué que les diverses populations d’ARNm participaient aux mêmes mécanismes de régulation, ce qui suggère que ces deux protéines possèdent des rôles complémentaires dans la mise en œuvre de divers phénomènes cellulaires. Au contraire, les transcrits associés à Stau259 et Stau262 sont davantage similaires, indiquant que celles-ci auraient des fonctions plutôt semblables. Ces résultats sont très intéressants, car pour la première fois, nous avons identifié des populations d’ARNm associées aux isoformes Stau155, Stau259 et Stau262. De plus, nous les avons analysées en parallèle afin d’en faire ressortir les populations spécifiques à chacune de ces protéines. Ensuite, connaissant l’importance de Stau2 dans le transport dendritique d’ARNm, nous avons cherché à caractériser les complexes ribonucléoprotéiques neuronaux associés à celle-ci. Dans un premier temps et à l’aide de la technique d’immunoprécipitation, nous avons identifié une population d’ARNm neuronaux associés à Stau2. Plus de 1700 ARNm montraient une présence d’au moins huit fois supérieure dans le précipité obtenu avec l’anticorps anti-Stau2 par rapport à celui obtenu avec le sérum pré-immun. Ces ARNm codent pour des protéines impliquées dans des processus de modifications post-traductionnelles, de traduction, de transport intracellulaire et de métabolisme de l’ARN. De façon intéressante, cette population d’ARNm isolée du cerveau de rat est relativement différente de celle caractérisée des cellules humaines HEK293T. Ceci suggère que la spécificité d’association Stau2-ARNm peut diffèrer d’un tissu à un autre. Dans un deuxième temps, nous avons isolé les protéines présentes dans les complexes ribonucléoprotéiques obtenus de cerveaux de rat et les avons identifiées par analyse en spectrométrie de masse. De cette façon, nous avons identifié au sein des particules de Stau2 des protéines liant l’ARN (PABPC1, hnRNPH1, YB1, hsc70), des protéines du cytosquelette (α- et β-tubuline), de même que la protéine peu caractérisée RUFY3. En poussant davantage la caractérisation, nous avons établi que YB1 et PABPC1 étaient associées à Stau2 grâce à la présence de l’ARN, alors que la protéine hsc70, au contraire, interagissait directement avec celle-ci. Enfin, cette dernière association semble être modulable par l’action de l’ATP. Ce résultat offre de nombreuses possibilités quant à la régulation de la fonction de Stau2 et/ou de son mRNP. Entre autres, cette étude suggère un mécanisme de régulation de la traduction au sein de ces particules. Pour faire suite à la caractérisation des mRNP de Stau, nous avons voulu déterminer au niveau neurophysiologique l’importance de ceux-ci. Comme l’étude de Stau2 avait déjà été entreprise préalablement par un autre laboratoire, nous avons décidé de concentrer notre étude sur le rôle de Stau1. Ainsi, nous avons démontré que celle-ci était nécessaire à la mise en place d’une forme de plasticité synaptique à long terme, la forme tardive de potentialisation à long terme ou L-LTP, dépendante de la transcription et de l’activité des récepteurs NMDA. La transmission de base, de même que la faculté de ces épines à faire de la E-LTP, la forme précoce de potentialisation à long terme, et la dépression à long terme ou LTD sont conservées. Ceci indique que les épines conservent la capacité d’être modulées. Ainsi, l’inhibition de la L-LTP, suite à la sous-expression de Stau1, n’est pas simplement due à la perte d’éléments fonctionnels, mais réside plutôt dans l’incapacité de ceux-ci à induire les changements synaptiques spécifiquement nécessaires à la mise en place de la L-LTP. De plus, au niveau synaptique, la sous-expression de Stau1 réduit à la fois l’amplitude et la fréquence des mEPSC. Ces résultats concordent avec l’observation que la sous-expression de Stau1 augmente significativement la proportion d’épines allongées et filopodales, des épines formant des synapses dites silencieuses. Par le fait même, elle diminue le nombre d’épines fonctionnelles, de forme dite normale. Ainsi, nous avons été en mesure de démontrer que l’absence, au niveau neuronal, de la protéine Stau1 induisait un déficit probable dans la localisation et/ou la traduction d’ARNm responsable de la restructuration de l’épine et de facteurs nécessaires à la mise en place de la L-LTP. En conclusion, nous avons participé à lever le voile sur la composition et l’importance des complexes ribonucléoprotéiques de Stau1 et Stau2. Nous avons identifié des populations distinctes et communes d’ARNm associées aux différents isoformes de Stau, à partir des mRNP présents au sein des cellules HEK293. De plus, nous avons réussi à mettre à l’avant plan certaines composantes des mRNP neuronaux de Stau2, dont un partenaire protéique direct, hsc70, partenaire dont l’association est modulable par l’action de l’ATP, ainsi qu’une population neuronale de transcrits d’ARNm. Enfin, nous avons mis en lumière l’importance de Stau1 dans la morphologie des épines dendritiques ainsi que dans le phénomène de la plasticité synaptique.

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Camillo Golgi's "Reazione Nera" led to the discovery of dendritic spines, small appendages originating from dendritic shafts. With the advent of electron microscopy (EM) they were identified as sites of synaptic contact. Later it was found that changes in synaptic strength were associated with changes in the shape of dendritic spines. While live-cell imaging was advantageous in monitoring the time course of such changes in spine structure, EM is still the best method for the simultaneous visualization of all cellular components, including actual synaptic contacts, at high resolution. Immunogold labeling for EM reveals the precise localization of molecules in relation to synaptic structures. Previous EM studies of spines and synapses were performed in tissue subjected to aldehyde fixation and dehydration in ethanol, which is associated with protein denaturation and tissue shrinkage. It has remained an issue to what extent fine structural details are preserved when subjecting the tissue to these procedures. In the present review, we report recent studies on the fine structure of spines and synapses using high-pressure freezing (HPF), which avoids protein denaturation by aldehydes and results in an excellent preservation of ultrastructural detail. In these studies, HPF was used to monitor subtle fine-structural changes in spine shape associated with chemically induced long-term potentiation (cLTP) at identified hippocampal mossy fiber synapses. Changes in spine shape result from reorganization of the actin cytoskeleton. We report that cLTP was associated with decreased immunogold labeling for phosphorylated cofilin (p-cofilin), an actin-depolymerizing protein. Phosphorylation of cofilin renders it unable to depolymerize F-actin, which stabilizes the actin cytoskeleton. Decreased levels of p-cofilin, in turn, suggest increased actin turnover, possibly underlying the changes in spine shape associated with cLTP. The findings reviewed here establish HPF as an appropriate method for studying the fine structure and molecular composition of synapses on dendritic spines.

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One goal of interbody fusion is to increase the height of the degenerated disc space. Interbody cages in particular have been promoted with the claim that they can maintain the disc space better than other methods. There are many factors that can affect the disc height maintenance, including graft or cage design, the quality of the surrounding bone and the presence of supplementary posterior fixation. The present study is an in vitro biomechanical investigation of the compressive behaviour of three different interbody cage designs in a human cadaveric model. The effect of bone density and posterior instrumentation were assessed. Thirty-six lumbar functional spinal units were instrumented with one of three interbody cages: (1) a porous titanium implant with endplate fit (Stratec), (2) a porous, rectangular carbon-fibre implant (Brantigan) and (3) a porous, cylindrical threaded implant (Ray). Posterior instrumentation (USS) was applied to half of the specimens. All specimens were subjected to axial compression displacement until failure. Correlations between both the failure load and the load at 3 mm displacement with the bone density measurements were observed. Neither the cage design nor the presence of posterior instrumentation had a significant effect on the failure load. The loads at 3 mm were slightly less for the Stratec cage, implying lower axial stiffness, but were not different with posterior instrumentation. The large range of observed failure loads overlaps the potential in vivo compressive loads, implying that failure of the bone-implant interface may occur clinically. Preoperative measurements of bone density may be an effective tool to predict settling around interbody cages.

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Adolescent Idiopathic Scoliosis (AIS) is the most common deformity of the spine, affecting 2-4% of the population. Previous studies have shown that the vertebrae in scoliotic spines undergo abnormal shape changes, however there has been little exploration of how AIS affects bone density distribution within the vertebrae. Existing pre-operative CT scans of 53 female idiopathic scoliosis patients with right-sided main thoracic curves were used to measure the lateral (right to left) bone density profile at mid-height through each vertebral body. This study demonstrated that AIS patients have a marked convex/concave asymmetry in bone density for vertebral levels at or near the apex of the scoliotic curve. To the best of our knowledge, the only previous studies of bone density distribution in AIS are those of Périé et al [1,2], who reported a coronal plane ‘mechanical migration’ of 0.54mm toward the concavity of the scoliotic curve in the lumbar apical vertebrae of 11 scoliosis patients. This is comparable to the value of 0.8mm (4%) in our study, especially since our patients had more severe scoliotic curves. From a bone adaptation perspective, these results suggest that the axial loading on the scoliotic spine is strongly asymmetric.

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Adolescent Idiopathic Scoliosis (AIS) is the most common deformity of the spine, affecting 2-4% of the population. Previous studies have shown that the vertebrae in scoliotic spines undergo abnormal shape changes, however there has been little exploration of how scoliosis affects bone density distribution within the vertebrae. In this study, existing CT scans of 53 female idiopathic scoliosis patients with right-sided main thoracic curves were used to measure the lateral (right to left) bone density profile at mid-height through each vertebral body. Five key bone density profile measures were identified from each normalised bone density distribution, and multiple regression analysis was performed to explore the relationship between bone density distribution and patient demographics (age, height, weight, body mass index (BMI), skeletal maturity, time since Menarche, vertebral level, and scoliosis curve severity). Results showed a marked convex/concave asymmetry in bone density for vertebral levels at or near the apex of the scoliotic curve. At the apical vertebra, mean bone density at the left side (concave) cortical shell was 23.5% higher than for the right (convex) cortical shell, and cancellous bone density along the central 60% of the lateral path from convex to concave increased by 13.8%. The centre of mass of the bone density profile at the thoracic curve apex was located 53.8% of the distance along the lateral path, indicating a shift of nearly 4% toward the concavity of the deformity. These lateral bone density gradients tapered off when moving away from the apical vertebra. Multi-linear regressions showed that the right cortical shell peak bone density is significantly correlated with skeletal maturity, with each Risser increment corresponding to an increase in mineral equivalent bone density of 4-5%. There were also statistically significant relationships between patient height, weight and BMI, and the gradient of cancellous bone density along the central 60% of the lateral path. Bone density gradient is positively correlated with weight, and negatively correlated with height and BMI, such that at the apical vertebra, a unit decrease in BMI corresponds to an almost 100% increase in bone density gradient.

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Summary Generalized Procrustes analysis and thin plate splines were employed to create an average 3D shape template of the proximal femur that was warped to the size and shape of a single 2D radiographic image of a subject. Mean absolute depth errors are comparable with previous approaches utilising multiple 2D input projections. Introduction Several approaches have been adopted to derive volumetric density (g cm-3) from a conventional 2D representation of areal bone mineral density (BMD, g cm-2). Such approaches have generally aimed at deriving an average depth across the areal projection rather than creating a formal 3D shape of the bone. Methods Generalized Procrustes analysis and thin plate splines were employed to create an average 3D shape template of the proximal femur that was subsequently warped to suit the size and shape of a single 2D radiographic image of a subject. CT scans of excised human femora, 18 and 24 scanned at pixel resolutions of 1.08 mm and 0.674 mm, respectively, were equally split into training (created 3D shape template) and test cohorts. Results The mean absolute depth errors of 3.4 mm and 1.73 mm, respectively, for the two CT pixel sizes are comparable with previous approaches based upon multiple 2D input projections. Conclusions This technique has the potential to derive volumetric density from BMD and to facilitate 3D finite element analysis for prediction of the mechanical integrity of the proximal femur. It may further be applied to other anatomical bone sites such as the distal radius and lumbar spine.

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Low back pain is an increasing problem in industrialised countries and although it is a major socio-economic problem in terms of medical costs and lost productivity, relatively little is known about the processes underlying the development of the condition. This is in part due to the complex interactions between bone, muscle, nerves and other soft tissues of the spine, and the fact that direct observation and/or measurement of the human spine is not possible using non-invasive techniques. Biomechanical models have been used extensively to estimate the forces and moments experienced by the spine. These models provide a means of estimating the internal parameters which can not be measured directly. However, application of most of the models currently available is restricted to tasks resembling those for which the model was designed due to the simplified representation of the anatomy. The aim of this research was to develop a biomechanical model to investigate the changes in forces and moments which are induced by muscle injury. In order to accurately simulate muscle injuries a detailed quasi-static three dimensional model representing the anatomy of the lumbar spine was developed. This model includes the nine major force generating muscles of the region (erector spinae, comprising the longissimus thoracis and iliocostalis lumborum; multifidus; quadratus lumborum; latissimus dorsi; transverse abdominis; internal oblique and external oblique), as well as the thoracolumbar fascia through which the transverse abdominis and parts of the internal oblique and latissimus dorsi muscles attach to the spine. The muscles included in the model have been represented using 170 muscle fascicles each having their own force generating characteristics and lines of action. Particular attention has been paid to ensuring the muscle lines of action are anatomically realistic, particularly for muscles which have broad attachments (e.g. internal and external obliques), muscles which attach to the spine via the thoracolumbar fascia (e.g. transverse abdominis), and muscles whose paths are altered by bony constraints such as the rib cage (e.g. iliocostalis lumborum pars thoracis and parts of the longissimus thoracis pars thoracis). In this endeavour, a separate sub-model which accounts for the shape of the torso by modelling it as a series of ellipses has been developed to model the lines of action of the oblique muscles. Likewise, a separate sub-model of the thoracolumbar fascia has also been developed which accounts for the middle and posterior layers of the fascia, and ensures that the line of action of the posterior layer is related to the size and shape of the erector spinae muscle. Published muscle activation data are used to enable the model to predict the maximum forces and moments that may be generated by the muscles. These predictions are validated against published experimental studies reporting maximum isometric moments for a variety of exertions. The model performs well for fiexion, extension and lateral bend exertions, but underpredicts the axial twist moments that may be developed. This discrepancy is most likely the result of differences between the experimental methodology and the modelled task. The application of the model is illustrated using examples of muscle injuries created by surgical procedures. The three examples used represent a posterior surgical approach to the spine, an anterior approach to the spine and uni-lateral total hip replacement surgery. Although the three examples simulate different muscle injuries, all demonstrate the production of significant asymmetrical moments and/or reduced joint compression following surgical intervention. This result has implications for patient rehabilitation and the potential for further injury to the spine. The development and application of the model has highlighted a number of areas where current knowledge is deficient. These include muscle activation levels for tasks in postures other than upright standing, changes in spinal kinematics following surgical procedures such as spinal fusion or fixation, and a general lack of understanding of how the body adjusts to muscle injuries with respect to muscle activation patterns and levels, rate of recovery from temporary injuries and compensatory actions by other muscles. Thus the comprehensive and innovative anatomical model which has been developed not only provides a tool to predict the forces and moments experienced by the intervertebral joints of the spine, but also highlights areas where further clinical research is required.

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Severe spinal deformity in young children is a formidable challenge for optimal treatment. Standard interventions for adolescents, such as spinal deformity correction and fusion, may not be appropriate for young patients with considerable growth remaining. Alternative surgical options that provide deformity correction and protect the growth remaining in the spine are needed to treat this group of patients 1, 2. One such method is the use of shape memory alloy staples. We report our experience to date using video-assisted thoracoscopic insertion of shape memory alloy staples. A retrospective review was conducted of 13 patients with scoliosis, aged 7 to 13 years, who underwent video-assisted thoracoscopic insertion of shape memory staples. In our experience, video-assisted thoracoscopic insertion of shape memory alloy staples is a safe procedure with no complications noted. It is a reliable method of providing curve stability, however the follow up results to date indicate that the effectiveness of the procedure is greater in younger patients.

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Introduction There is growing interest in the biomechanics of ‘fusionless’ implant constructs used for deformity correction in the thoracic spine. Intervertebral stapling is a leading method of fusionless corrective surgery. Although used for a number of years, there is limited evidence as to the effect these staples have on the stiffness of the functional spinal unit. Materials and Methods Thoracic spines from 6-8 week old calves were dissected and divided into motion segments including levels T4-T11 (n=14). Each segment was potted in polymethylemethacrylate. An Instron Biaxial materials testing machine with a custom made jig was used for testing. The segments were tested in flexion/extension, lateral bending and axial rotation at 37⁰C and 100% humidity, using moment control to a maximum 1.75 Nm with a loading rate of 0.3 Nm per second. This torque was found sufficient to achieve physiologically representative ranges of movement. The segments were initially tested uninstrumented with data collected from the tenth load cycle. Next a left anterolateral Shape Memory Alloy (SMA) staple was inserted (Medtronic Sofamor Danek, USA). Biomechanical testing was repeated as before with data collected from the tenth load cycle. Results In flexion/extension there was an insignificant drop in stiffness of 3% (p=0.478). In lateral bending there was a significant drop in stiffness of 21% (p<0.001). This was mainly in lateral bending away from the staple, where the stiffness reduced by 30% (p<0.001). This was in contrast to lateral bending towards the staple where it dropped by 12% which was still statistically significant (p=0.036). In axial rotation there was an overall near significant drop in stiffness of 11% (p=0.076). However, this was more towards the side of the staple measuring a decrease of 14% as opposed to 8% away from the staple. In both cases it was a statistically insignificant drop (p=0.134 and p=0.352 respectively). Conclusion Insertion of intervertebral SMA staples results in a significant reduction in motion segment stiffness in lateral bending especially in the direction away from the staple. The staple had less effect on axial rotation stiffness and minimal effect on flexion/extension stiffness.

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This paper presents a method based on articulated models for the registration of spine data extracted from multimodal medical images of patients with scoliosis. With the ultimate aim being the development of a complete geometrical model of the torso of a scoliotic patient, this work presents a method for the registration of vertebral column data using 3D magnetic resonance images (MRI) acquired in prone position and X-ray data acquired in standing position for five patients with scoliosis. The 3D shape of the vertebrae is estimated from both image modalities for each patient, and an articulated model is used in order to calculate intervertebral transformations required in order to align the vertebrae between both postures. Euclidean distances between anatomical landmarks are calculated in order to assess multimodal registration error. Results show a decrease in the Euclidean distance using the proposed method compared to rigid registration and more physically realistic vertebrae deformations compared to thin-plate-spline (TPS) registration thus improving alignment.

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One of the major concerns of scoliosis patients undergoing surgical treatment is the aesthetic aspect of the surgery outcome. It would be useful to predict the postoperative appearance of the patient trunk in the course of a surgery planning process in order to take into account the expectations of the patient. In this paper, we propose to use least squares support vector regression for the prediction of the postoperative trunk 3D shape after spine surgery for adolescent idiopathic scoliosis. Five dimensionality reduction techniques used in conjunction with the support vector machine are compared. The methods are evaluated in terms of their accuracy, based on the leave-one-out cross-validation performed on a database of 141 cases. The results indicate that the 3D shape predictions using a dimensionality reduction obtained by simultaneous decomposition of the predictors and response variables have the best accuracy.

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The wealth of information available freely on the web and medical image databases poses a major problem for the end users: how to find the information needed? Content –Based Image Retrieval is the obvious solution.A standard called MPEG-7 was evolved to address the interoperability issues of content-based search.The work presented in this thesis mainly concentrates on developing new shape descriptors and a framework for content – based retrieval of scoliosis images.New region-based and contour based shape descriptor is developed based on orthogonal Legendre polymomials.A novel system for indexing and retrieval of digital spine radiographs with scoliosis is presented.