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Analysis of superimposed oriented patterns.

Estimation of local orientation in images may be posed as the problem of finding the minimum gray-level variance axis in a local neighborhood. In bivariate images, the solution is given by the eigenvector corresponding to the smaller eigenvalue of a 2 x 2 tensor. For an ideal single orientation, the tensor is rank-deficient, i.e., the smaller eigenvalue vanishes. A large minimal eigenvalue signals the presence of more than one local orientation, what may be caused by non-opaque additive or opaque occluding objects, crossings, bifurcations, or corners. We describe a framework for estimating such superimposed orientations. Our analysis is based on the eigensystem analysis of suitably extended tensors for both additive and occluding superpositions. Unlike in the single-orientation case, the eigensystem analysis does not directly yield the orientations, rather, it provides so-called mixed-orientation parameters (MOPs). We, therefore, show how to decompose the MOPs into the individual orientations. We also show how to use tensor invariants to increase efficiency, and derive a new feature for describing local neighborhoods which is invariant to rigid transformations. Applications are, e.g., in texture analysis, directional filtering and interpolation, feature extraction for corners and crossings, tracking, and signal separation.

Algorithms↗

31P-NMR investigation of magnetically oriented rod outer segments. Spectral analysis and identification of individual phospholipids.

A 31P-NMR study of magnetically oriented bovine rod outer segments is presented. We demonstrate that carefully isolated bovine rod outer segments retain the capacity to orient in a magnetic field. Maximal orientation (85-90%) is achieved at field strengths over 4.7 T in the NMR spectrometer. The lineshape of the 'oriented spectra' is totally different from the 'bilayer lineshape' of randomly oriented photoreceptor membranes. The oriented spectra consist of two phospholipid peaks, a major low-field peak (75-80% of the total intensity) near 30 ppm, and a minor high-field peak near - 14 ppm as well as two sharp metabolite peaks around 0 ppm. The phospholipid peaks are a composite of three narrower partially resolved resonances assigned to the individual phospholipid classes phosphatidylserine, phosphatidylcholine and phosphatidylethanolamine. Based on the morphology and magnetic anisotropy of the rod outer segment, the major phospholipid peak is attributed to the flat part of the disk membranes while the phospholipids of the plasma membrane are thought to contribute only to the minor peak. Disk rim phospholipids and non-oriented material contribute to the minor peak and, in addition, contribute some intensity to the middle part of the spectrum. The phospholipid class composition of the major peak is estimated by spectral simulation and is consistent with the phospholipid class composition of rod outer segment membranes. Hence, 31P analysis of oriented rod outer segments resolves the main phospholipids in at least two different membrane pools in the rod outer segment and allows the differential investigation of these pools. Most of the mobile phosphate metabolite intensity resides in the Pi peak at 3.5 ppm. A slight shift in the Pi resonance position indicates a 0.2 pH unit acidification upon illumination of rhodopsin. The absence of detectable nucleotide resonances, when compared with chemical analysis, indicates that the majority of the nucleotide population present is rather immobile and probably bound to the membranes.

Animals↗

Determination of the orientations of tryptophan analogues bound to the trp repressor and the relationship to activation.

The antirepressor indole 3-propanoate has been shown by X-ray crystallography to bind in a different orientation compared with the natural corepressor for the tryp repressor, L-tryptophan (Lawson, C.L. & Sigler, P. B. (1988) Nature 333, 869-871). This suggests a simple difference between what constitutes a corepressor versus an antirepressor. We have used visible absorption and 1H-NMR spectroscopy to characterise the nature of several ligand-repressor complexes and DNA-binding assays to assess the relative operator binding affinities. 5-Fluorotryptophan binds with similar affinity and in the same orientation as L-tryptophan, and is an equally effective corepressor. In contrast, the tight-binding antirepressor indole 3-acrylate binds in the same orientation as indole 3-propanoate. Indole, also an antirepressor, also binds in the indole-3-propanoate orientation. 5-Methyltryptamine, a corepressor, shows spectroscopic characteristics of both tryptophan and indoleacrylate, though NOEs indicate that the tryptophan orientation is preferred. These results indicate that the ammonium group in the side chain is essential both for activation and binding in the L-tryptophan orientation. Antirepressors, lacking the ammonium group, bind in the more favourable indole-3-propanoate orientation. Differences in the NMR signatures of the different repressor-ligand complexes indicate that the details of the conformations depend on the nature of the ligands and their orientation within the binding site. Despite any conformational rearrangement of the protein on binding, dissociation of ligands is facile: 5-fluorotryptophan dissociates rapidly at 313 K. These findings complement and extend the X-ray and thermodynamic analyses of ligand binding.

Bacterial Proteins↗

Catheter tip orientation affects radiofrequency ablation lesion size in the canine left ventricle.

While some factors influencing size of RF lesions in ventricular tissue have been characterized, the effects of catheter electrode-endocardial surface orientation on lesion generation have not been investigated. Therefore, the effects of parallel versus perpendicular catheter electrode-endocardial surface orientation on dimensions of RF lesion produced with 4-, 6-, 8-, 10-, and 12-mm distal electrode lengths were studied in 20 closed-chested dogs. Orientation was established by biplane fluoroscopy and confirmed by intracardiac echocardiography for the majority of energy deliveries (71%). RF voltage was titrated to maintain constant catheter electrode temperature of 75 degrees C for 60 seconds. In the perpendicular orientation, lesion size did not change significantly with increasing electrode lengths. There was a statistically significant interaction between electrode orientation and maximum lesion length (analysis of variance [ANOVA] P = 0.04], lesion width (ANOVA P = 0.01), lesion area (ANOVA P = 0.02), and estimated lesion volume (ANOVA P < 0.005) over all electrode lengths. With parallel tip-tissue orientation, lesion size was a function of increasing electrode length. For 4-, 6-, 8-, 10-, and 12-mm electrodes, maximum lesion surface areas were 95 +/- 38, 97 +/- 38, 119 +/- 29, 147 +/- 52, and 147 +/- 67 mm2, respectively. For electrode lengths 8, 10, and 12 mm, estimated lesion volumes were significantly greater with parallel orientation (P < 0.05 for all). Thus, ventricular lesion size is dependent on catheter electrode length, but only when the catheter is oriented parallel to the endocardial surface. This information may be helpful in increasing lesion dimensions for RF ablation of ventricular tachycardias.

Animals↗

Continuity of orientation columns between superficial and deep laminae of the cat primary visual cortex.

1. Recent reports of a marked and consistent dislocation between orientation columns in the superficial and deep layers of cat striate cortex (Bauer, 1982, 1983) directly contradict the traditional view of the system (Hubel & Wiesel, 1962). This has considerable implications for our current understanding of cortical organization, and in order to clarify the issue we have carried out experiments to test the continuity of the columnar system with depth, in central regions of area 17. 2. In twenty-four penetrations, eighteen of which were placed as perpendicular as possible to the surface of the cortex, orientation preference was assessed at regular intervals both qualitatively and using a randomly interleaved quantitative technique. The distribution of preferred orientations was analysed with reference to a detailed histological reconstruction of the electrode track, including the location of laminar boundaries and the course of radial tiers of cells and capillaries. 3. From a further series of eighteen near-perpendicular penetrations, the change in average orientation between one superficial and one deep layer recording site was compared with the deviation of the track from perpendicular to the surface and hence parallel to the orientation columns. 4. In penetrations perpendicular to the surface of the cortex, orientation preference showed little variation between superficial and deep laminae. In oblique penetrations, preferred orientation generally changed according to a single, smooth trend. Those irregularities that were encountered were confined to oblique penetrations, and were distributed throughout the cortical laminae. 5. In conclusion, our evidence does not support the presence of a systematic discontinuity with depth within the orientation columnar system. It is therefore entirely consistent with earlier evidence on the subject.

Animals↗

Influence of tensile strain on smooth muscle cell orientation in rat blood vessels.

Blood vessels are subject to tensile stress and associated strain which may influence the structure and organization of smooth muscle cells (SMCs) during physiological development and pathological remodeling. This study focused on the influence of the major tensile strain on the SMC orientation in the blood vessel wall. Several blood vessels, including the aorta, the mesenteric artery and vein, and the jugular vein of the rat were used to observe the normal distribution of tensile strains and SMC orientation; and a vein graft model was used to observe the influence of altered strain direction on the SMC orientation. The circumferential and longitudinal strains in these blood vessels were measured by using a biomechanical technique, and the SMC orientation was examined by fluorescent microscopy at times of 10, 20, and 30 days. Results showed that the SMCs were mainly oriented in the circumferential direction of straight blood vessels with an average angle of approximately 85 deg between the SMC axis and the vessel axis in all observed cases. The SMC orientation coincided with the principal direction of the circumferential strain, a major tensile strain, in the blood vessel wall. In vein grafts, the major tensile strain direction changed from the circumferential to the longitudinal direction at observation times of 10, 20, and 30 days after graft surgery. This change was associated with a decrease in the angle between the axis of newly proliferated SMCs and that of the vessel at all observation times (43 +/- 11 deg, 42 +/- 10 deg, and 41 +/- 10 deg for days 10, 20, and 30, respectively), indicating a shift of the SMC orientation from the circumferential toward the longitudinal direction. These results suggested that the major tensile strain might play a role in the regulation of SMC orientation during the development of normal blood vessels as well as during remodeling of vein grafts.

Actins↗

Orientation selectivity in pinwheel centers in cat striate cortex.

In primary visual cortex of higher mammals neurons are grouped according to their orientation preference, forming "pinwheels" around "orientation centers." Although the general structure of orientation maps is largely resolved, the microscopic arrangement of neuronal response properties in the orientation centers has remained elusive. The tetrode technique, enabling multiple single-unit recordings, in combination with intrinsic signal imaging was used to reveal the fine-grain structure of orientation maps in these locations. The results show that orientation centers represent locations where orientation columns converge containing normal, sharply tuned neurons of different orientation preference lying in close proximity.

Action Potentials↗

Stability of a CTG/CAG trinucleotide repeat in yeast is dependent on its orientation in the genome.

Trinucleotide repeat expansion is the causative mutation for a growing number of diseases including myotonic dystrophy, Huntington's disease, and fragile X syndrome. A (CTG/CAG)130 tract cloned from a myotonic dystrophy patient was inserted in both orientations into the genome of Saccharomyces cerevisiae. This insertion was made either very close to the 5' end or very close to the 3' end of a URA3 transcription unit. Regardless of its orientation, no evidence was found for triplet-mediated transcriptional repression of the nearby gene. However, the stability of the tract correlated with its orientation on the chromosome. In one orientation, the (CTG/CAG)130 tract was very unstable and prone to deletions. In the other orientation, the tract was stable, with fewer deletions and two possible cases of expansion detected. Analysis of the direction of replication through the region showed that in the unstable orientation the CTG tract was on the lagging-strand template and that in the stable orientation the CAG tract was on the lagging-strand template. The orientation dependence of CTG/CAG tract instability seen in this yeast system supports models involving hairpin-mediated polymerase slippage previously proposed for trinucleotide repeat expansion.

Base Sequence↗

Position effects are influenced by the orientation of a transgene with respect to flanking chromatin.

We have inserted two expression cassettes at tagged reference chromosomal sites by using recombinase-mediated cassette exchange in mammalian cells. The three sites of integration displayed either stable or silencing position effects that were dominant over the different enhancers present in the cassettes. These position effects were strongly dependent on the orientation of the construct within the locus, with one orientation being permissive for expression and the other being nonpermissive. Orientation-specific silencing, which was observed at two of the three site tested, was associated with hypermethylation but not with changes in chromatin structure, as judged by DNase I hypersensitivity assays. Using CRE recombinase, we were able to switch in vivo the orientation of the transgenes from the permissive to the nonpermissive orientation and vice versa. Switching from the permissive to the nonpermissive orientation led to silencing, but switching from the nonpermissive to the permissive orientation did not lead to reactivation of the transgene. Instead, transgene expression occurred dynamically by transcriptional oscillations, with 10 to 20% of the cells expressing at any given time. This result suggested that the cassette had been imprinted (epigenetically tagged) while it was in the nonpermissive orientation. Methylation analysis revealed that the methylation state of the inverted cassettes resembled that of silenced cassettes except that the enhancer had selectively lost some of its methylation. Sorting of the expressing and nonexpressing cell populations provided evidence that the transcriptional oscillations of the epigenetically tagged cassette are associated with changes in the methylation status of regulatory elements in the transgene. This suggests that transgene methylation is more dynamic than was previously assumed.

Animals↗

Parietal neurons represent surface orientation from the gradient of binocular disparity.

In order to elucidate the neural mechanisms involved in the perception of the three-dimensional (3D) orientation of a surface, we trained monkeys to discriminate the 3D orientation of a surface from binocular disparity cues using a Go/No-go type delayed-matching-to-sample (DMTS) task and examined the properties of the surface-orientation-selective (SOS) neurons. We recorded 57 SOS neurons from the caudal part of the lateral bank of the intraparietal sulcus (area CIP) of three hemispheres of two Japanese monkeys (Macaca fuscata). We tested 29 of 57 SOS neurons using the square plate of a solid figure stereogram (SFS) and random-dot stereogram (RDS) without perspective cues; almost all of the tested neurons (28/29) showed surface orientation selectivity for the SFS and/or the RDS without perspective cues. Eight of these 28 neurons (28.6%) showed selectivity for both the RDS and SFS, 7 (25.0%) were dominantly selective for the RDS, and 13 (46.4%) were dominantly selective for the SFS. These results suggest that neurons that show surface orientation tuning for the RDS without perspective cues compute surface orientation from the gradient of the binocular disparity given by the random-dot across the surface. On the other hand, neurons that show surface orientation tuning for the SFS without perspective cues may represent surface orientation primarily from the gradient of the binocular disparity along the contours. In conclusion, the SOS neurons in the area CIP are likely to operate higher order processing of disparity signals for surface perception by integrating the input signals from many disparity-sensitive neurons with different disparity tuning.

Animals↗

Shape, orientation and spacing of the primary epidermal laminae in the hooves of neonatal and adult horses (Equus caballus).

Circumferential and proximodistal variations in the morphology of the primary epidermal laminae of six neonatal and five adult equine feet were documented. Three parameters were quantified: interlaminar spacing, the orientation of the laminae with respect to the overlying wall, and any angulation within the laminae themselves ('internal angle'). In adult feet, the laminae were most closely spaced at the dorsum, the spacing increasing gradually towards the heels. In foals there was a non-significant trend for the dorsal laminae to be more widely spaced than those in more caudal parts of the foot. In both age groups, the dorsal laminae were almost straight (mean divergence from linearity at all sites 2 degrees ), and were oriented at approximately 90 degrees to the tangent to the overlying wall (mean orientation for all sites 91 degrees ). At the quarters, the laminae were in general oriented caudally relative to the tangential position from their epidermal to their dermal ends (mean orientation of >90 degrees at 12 of 16 sampling sites, where an orientation of >90 degrees defines a 'caudally directed' orientation) and, in general, had a bend within their length (mean absolute value of internal angle for all sites 9 degrees ). At the heels there was greater variability in the data for both laminar orientation and internal angle. Overall, the foal feet showed greater mediolateral symmetry and less proximodistal variation than did the adult feet. In both age groups, rapid spatial changes in laminar morphology were closely associated with the position of the margins of the third phalanx.

Age Factors↗

Do Oriental psychiatric patients receive different dosages of psychotropic medication when compared with occidentals.

The literature suggests the possibility of different drug dosage requirements between patients of different ethnic origins. This study thereby attempted to investigate the average dosages of psychotropic medications being prescribed for Orientals versus Occidentals using a retrospective drug history review and an international opinion survey. The retrospective drug history review compared drug dosages for four commonly used psychotropic medications in well matched Oriental and Occidental populations. Data from this review showed that final/maintenance dosages of amitriptyline were significantly lower for Orientals than Occidentals. The opinion survey assessed the responses of psychiatrists in the Orient, as well as in North America, with respect to average dosages prescribed for the two populations; their beliefs in possible variability and causes underlying the variability. Data indicated that significantly lower dosages of chlorpromazine, phenelzine, diazepam, and chlordiazepoxide are being prescribed for Orientals as compared with Occidentals. Beliefs in differences were dependent upon the degree of exposure to Orientals. Suggested etiological factors underlying the variability were usually related to drug metabolism, side effects, and body weight. In both types of studies, Orientals appeared to have lower prescribed dosages than Occidentals. The lower dosages, however, appeared to be a function of the physician's experience in treating the Oriental population.

Antipsychotic Agents↗

A default mechanism of spindle orientation based on cell shape is sufficient to generate cell fate diversity in polarised Xenopus blastomeres.

The process of oriented divisions of polarised cells is a recurrent mechanism of cell fate diversification in development. It is commonly assumed that a specialised mechanism of spindle alignment into the axis of polarity is a prerequisite for such systems to generate cell fate diversity. Oriented divisions also take place in the frog blastula, where orientation of the spindle into the apicobasal axis of polarised blastomeres generates inner and outer cells with different fates. Here, we show that, in this system, the spindle orients according to the shape of the cells, a mechanism often thought to be a default. We show that in the embryo, fatedifferentiative, perpendicular divisions correlate with a perpendicular long axis and a small apical surface, but the long axis rather then the size of the apical domain defines the division orientation. Mitotic spindles in rounded, yet polarised, isolated Xenopus blastula cells orient randomly, but align into an experimentally introduced long axis when cells are deformed early in the cell cycle. Unlike other systems of oriented divisions, the spindle aligns at prophase, rotation behaviour is rare and restricted to small angle adjustments. Disruption of astral microtubules leads to misalignment of the spindle. These results show that a mechanism of spindle orientation that depends on cell shape rather than cortical polarity can nevertheless generate cell fate diversity from a population of polarised cells.

Animals↗

Cell-cell association directed mitotic spindle orientation in the early development of the marine shrimp Sicyonia ingentis.

During early cleavages of Sicyonia ingentis embryos, mitotic spindle orientations differ between blastomeres and change in a predictable manner with each successive mitosis. From 2nd through 7th cleavages, spindles orient at a 90 degrees angle with respect to the spindle of the parent blastomere. Thus, spindle orientation is parallel to the cleavage plane that formed the blastomere. To determine if specific spindle orientations were intrinsic properties of individual blastomeres, we altered blastomere associations and asked how mitotic spindle orientation was affected in successive cleavages using laser scanning confocal microscopy. Linear embryos were constructed by dissociating 4-cell embryos and recombining the blastomeres in a linear array. The ensuing cleavage (3rd embryonic cleavage) of these linear embryos was parallel to the long axis of the embryo, resulting in four parallel pairs of blastomeres which lay in a common plane that was parallel to the substratum. The 4th cleavage produced a linear embryo with the 16 blastomeres arranged in four parallel quartets. Then, in preparation for 5th cleavage, spindles oriented at a 45 degrees angle (not parallel as in normal development) with respect to the previous cleavage plane. When 8-cell linear embryos were separated into linear half-embryos, subsequent spindle orientations were not like those observed for intact 8-cell linear embryos, but rather regressed to the orientation seen in 4-cell linear embryos. We suggest that the reorientation of mitotic spindles during early cleavage of S. ingentis is neither an intrinsic property nor age dependent, but rather is cell contact related. Further, these results in conjunction with observations of non-manipulated embryos suggest that spindle poles (centrosomes) avoid cytoplasmic regions adjacent to where there is cell-cell contact during early development.

Animals↗

Merotelic kinetochore orientation occurs frequently during early mitosis in mammalian tissue cells and error correction is achieved by two different mechanisms.

Merotelic kinetochore orientation is an error that occurs when a single kinetochore becomes attached to microtubules from two spindle poles rather than just to one pole. We obtained the first evidence that merotelic kinetochore orientation occurs very frequently during early mitosis in mammalian tissue cells and that two different correction mechanisms are critical for accurate chromosome segregation in cells possessing bipolar spindles and unperturbed chromosomes. Our data show that about 30% of prometaphase PtK1 cells possess one or more merotelically oriented kinetochores. This frequency is increased to over 90% in cells recovering from a nocodazole-induced mitotic block. A delay in establishing spindle bipolarity is responsible for the high frequency of merotelic orientations seen in cells recovering from nocodazole, but not in untreated cells. The frequency of anaphase cells with merotelically oriented lagging chromosomes is 1% in untreated cells and 18% in cells recovering from nocodazole. Prolonging metaphase by 2 hours reduced the frequency of anaphase cells with lagging chromosomes both for untreated and for nocodazole-treated cells. Surprisingly, anaphase lagging chromosomes represented a very small fraction of merotelic kinetochore orientations present in late metaphase. Our data indicate that two correction mechanisms operate to prevent chromosome missegregation due to merotelic kinetochore orientation. The first, a pre-anaphase correction mechanism increases the ratio of kinetochore microtubules attached to the correct versus incorrect pole and might eventually result in kinetochore reorientation before anaphase onset. The increase in microtubule ratio to opposite poles is the groundwork for a second mechanism, active in anaphase, that promotes the segregation of merotelically oriented chromosomes to the correct pole.

Anaphase↗

Orientation of macromolecules in the walls of elongating carrot cells.

When round cells from a carrot cell suspension culture are diluted into fresh medium without auxin, the cells elongate to almost 50 times their original diameter within three days. This process of elongation is accompanied by changes in both the composition and the orientation of cell wall polymers. We have obtained information on the orientation of wall polymers in elongating cells by two complementary techniques, one using microscopy and one spectroscopy. Images obtained by the fast-freeze, deep-etch, rotary-shadowed replica technique show that walls of round carrot cells have no net orientation of cellulose microfibrils, and that many thin fibres can be seen cross-linking microfibrils. Walls of elongated carrot cells, in contrast, show a marked net orientation of microfibrils at right angles to the axis of elongation. Fourier Transform Infrared (FTIR) spectra obtained from defined areas of single cell walls show that walls of round carrot cells contain more protein, esters and phenolics in a given area (10 microns x 10 microns) than walls of elongated carrot cells, that contain proportionally more carbohydrate. The orientation of particular functional groups, with respect to the direction of elongation of the cell, can be determined by inserting a polariser into the path of the infrared beam, before it passes through a cell wall sample mounted on the stage of the microscope accessory. In the walls of elongated cells, ester bands, amide bands characteristic of proteins, and stretching frequencies in the carbohydrate region of the spectrum all show a net orientation transverse to the long axis of the cells. In the walls of round carrot cells, however, there is no such net orientation of polymers. Spectra obtained from 25 microns-thick fresh sections of the etiolated stem of a carrot seedling show that different wall components are polarised in different tissue types. These techniques have therefore enabled us to define differences in both the composition and the architecture of walls of elongating cells at the level of a single cell, and to suggest that polymers not previously thought to be ordered, such as pectin and protein, are strictly oriented in some wall types.

Antibodies, Monoclonal↗

Orientation of calvaria and periodontal ligament cells in vitro by pairs of demineralized dentine particles.

Rat calvaria cells (RC cells) and monkey periodontal ligament fibroblasts (MPL cells) were cultured for 4-6 days with demineralized dentine, acid-washed glass particles or untreated glass particles to determine whether the presence of these particles can affect the orientation of the cells. Encapsulation of dentine particles began as early as the first day in culture and occasional cells were attached to, and oriented between adjacent particles. Multilayers of cells formed along the periphery of the dentine particles and the more superficial of these cells projected outwards in a radial fashion. Oriented cell sheets were evident between dentine particles after 3 days in culture. Finally, the cell sheets tore away from the surface of the culture fish to give rise to thick multilayered cellular bridges between dentine particles. The nuclear orientation index (ratio of L/W) for each RC cell lying between 15 randomly selected pairs of each particle type in 4-day cultures was measured along 2 axes; the length represented by the shortest distance between the 2 particles and the width perpendicular to this axis. The nuclear orientation index was 1.52 for cells between dentine, 1.13 between acid-washed glass and 1.06 between untreated glass. Control measurements of cells associated with single particles were 1.06, 1.09 and 1.06 respectively. The frequency of cellular orientation occurring between dentine particles was significantly greater than that occurring between acid-washed glass particles (chi 2 > 0.001) which in turn was significantly greater than that for untreated glass particles (chi 2 > 0.001). The observations and results suggest that the development and maintenance of the observed cell orientation depends upon development and maintenance in the cell sheet of tensional forces oriented parallel to the axis between the dentine particles, and that this is related directly to the capacity of the cells to attach to the particles.

Animals↗

Self-esteem in children: do goal orientations matter?

BACKGROUND: Although perceived competence has been identified as an essential component of global self-esteem, individual differences in the way competence is conceptualised have been virtually ignored. Achievement goal theory suggests that two conceptions of competence operate in achievement contexts: competence can be conceived as capacity or improvement. These two conceptions are embedded within two goal orientations, namely task and ego orientation. AIMS: The study examined the relationship of goal orientations and perceptions of athletic ability to global self-esteem. SAMPLES: Children (N = 907) attending summer sports camps participated in the study. METHOD: Children completed the Perception of Success Questionnaire and the Self-Esteem Scale and recorded their perceptions of normative athletic ability. RESULTS: High task-oriented children reported significantly higher self-esteem than low task-oriented children. Among high task-oriented boys, those with high perceived ability had higher self-esteem. In addition, high ego-oriented boys had high self-esteem when they perceived themselves as having high ability in relation to their peers. Finally, among low task-oriented girls, those with high perceived ability reported higher self-esteem. CONCLUSIONS: The findings are consistent with the tenets of achievement goal theory that success and failure are subjective psychological states. It is recommended that different conceptions of competence are considered in the study of self-esteem.

Achievement↗