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At least 235 records · Page 13Linked to original sources

A nonlinear elastic model of the periodontal ligament and its numerical calibration for the study of tooth mobility.

A large strain nonlinear elastic isotropic "split" law is proposed for modeling the behaviour of the periodontal ligament. This law allows for a better description of the stiffening response of this tissue and, concomitantly, for a more accurate calibration of its elastic properties. Indeed, fine finite element simulations of an upper human incisor attached to its surrounding alveolar bone by an intermediate layer of ligament were run using that "split" law for the ligament. A good correlation was established with available experimental data on such a tooth under axial loading. Values of 0.010-0.031 MPa for the initial Young's modulus and of 0.45-0.495 for Poisson's ratio were determined. A sensitivity analysis of the results with respect to material and numerical parameters of the model was also carried out. Finally, a comparison of the simulation results using this "split" law with standard ones obtained with the linear elastic law, shows a significant improvement.

Animals↗

Effect of postmortem tissue fixation on tooth mobility and pocket depth in human beings.

With the exception of dry skulls, postmortem human material is rarely used in the study of periodontal disease. If the relationship between clinical periodontal measurements, such as mobility and pocket depth, were known antemortem versus postmortem, a new source of information would be available. In this study, such measurements were performed on a patient whose mandible was resected because of a malignant condition. Mobility was found to have decreased; pocket depths initially increased, and then returned to nearly preoperative levels.

Carcinoma, Squamous Cell↗

Tooth mobility and resolution of experimental periodontitis. An experimental study in the dog.

The aim of the present experiment was to study alterations in the mobility of teeth that occurred during resolution of experimentally induced periodontitis lesions in the dog. 5, 1-year-old, beagle dogs were used in the study. The left and right 4th, 3rd, and 2nd mandibular premolars (4P4, 3P3, 2P2) served as experimental teeth. Periodontal tissue breakdown was initiated by placing plaque-collecting cotton-floss ligatures around the neck of the experimental teeth. The ligatures were replaced to the level of the receding gingival margin 1 x every month. On Day 120, the ligatures were removed and debridement was performed. A groove, parallel to the long axis of the mesial root, was prepared in the mesio-buccal surface of the crowns of 2P and P2. Guided by the groove and with a probing force of 0.5 N, a probe was inserted into the buccal gingival pocket of the mesial root and was attached to the buccal surface. Biopsies including both the mesial and distal root of 2P and P2 and the surrounding hard and soft tissues were harvested. The biopsy procedure was repeated in a similar manner 15 days (i.e. Day 135) and 3 months (i.e. Day 225) after ligature removal in the 4th (4P4) and 3rd (3P3) premolar regions. After fixation, decalcification and sectioning, the biopsy material was exposed to histometric and morphometric measurements. Assessment of the mobility of the experimental teeth was performed on Days 120, 135 and 225 using the Periotest system.(ABSTRACT TRUNCATED AT 250 WORDS)

Alveolar Bone Loss↗

The effect on intrusive tooth mobility of surgically removing the cervical periodontal ligament in monkeys (Macaca fascicularis).

The intrusive mobility of 10 teeth was recorded at half-hourly intervals under 4N loads following reflection of the gingiva in 2 animals. After 3 h, the periodontal ligament surrounding the coronal area of the root was removed with a steel bur to a depth of 4 to 5 mm; loadings were then continued. For 5 teeth, little or no change in mobility occurred. Displacement increased in the other teeth which could be accounted for by tilting, the teeth not being vertical. The residual healthy ligament seemed to withstand the small vertical loads as though the periodontium was intact, whereas cutting the ligament, mesially and distally in a previous experiment, but not removing it, substantially weakened the supporting mechanisms.

Animals↗

[Tooth mobility disclosing an osteolytic process].

Excepting cases of trauma, dental mobility is often mistakenly neglected as a clinical sign. Dental mobility can in fact be the first sign of osteolytic processes or tumour development. A retrospective study noted that dental mobility may be the inaugural sign of osteolytic processes in the maxillary bone in up to as many as 40% of the cases. Pyorrhea+ is often misdiagnosed leading to unnecessary avulsion and delaying diagnosis of the osteolytic disease.

Adolescent↗

The effects of variations in the opposing dentition on changes in the partially edentulous mandible. Part III. Tooth mobility and chewing efficiency with various maxillary dentitions.

Tests were conducted using a mobilometer to determine the effects of the opposing dentition on mobility of selected teeth in the partially edentulous mandible. In addition, the effect of the opposing dentition and the presence or absence of a lower removable partial denture on chewing efficiency was evaluated. Results indicated an increase in mobility of abutment teeth following placement of removable partial dentures. The mobility decreased as the teeth became stabilized by the removable partial dentures. The amount of mucosal and bone-contour change was directly related to the degree of mobility of the abutment teeth. Comparisons in chewing efficiency indicated no particular difference between subjects with unilateral or bilateral distal-extension removable partial dentures or in the type of opposing dentition. However, the use of a lower removable partial denture does increase chewing efficiency to a level of about 50 per cent of that found for subjects with all of their natural teeth.

Alveolar Process↗

A laboratory method for studying tooth mobility of the mandibular central incisor of the sheep.

Linguolabially directed loads of 0.01 to 1.0 N were applied to a mandibular central incisor in each of 12 four-year-old ewes with healthy mouths. For each incisor, tooth position was monitored continuously with an ultrasonic displacement transducer. On suddenly applying a load and maintaining it for five minutes, a biphasic pattern of displacement was recorded, a phase of rapid displacement being followed by a more gradual one. A similar biphasic recovery response was seen on suddenly removing the load. These patterns are viscoelastic-like. The group mean displacements showed that for all phases the responses were force-dependent, though not linearly graded. For a given load, the group mean displacements were considerably larger than those reported previously for the teeth of other animals, supporting the impression that the sheep incisor is extremely mobile. These data will provide a baseline for studies on the mobility of the teeth of sheep with inflammatory periodontal disease ('broken mouth').

Animals↗

[Experimental model of tooth mobility in the human "in vivo"].

The aim of the present study was to investigate experimentally the mechanical properties of tooth deflection under external loading. These properties have a significant impact on tooth movement during orthodontic treatment. The stresses and strains caused by tooth movement influence bone remodelling, which is the basis of orthodontic treatment. The movement of a tooth as a direct reaction to the forces acting on it is termed "initial" movement. It is nonlinear and has a clearly time-dependent component. While the initial tooth movement represents the totality of the reaction mechanisms of all the tissues of the tooth unit, it is determined primarily by the mechanical properties of the periodontal ligament (PDL). The PDL is the softest tissue of the tooth unit and is therefore subject to the largest deformations when forces act on the crown of the tooth. The objective of orthodontic treatment is to achieve as precise and rapid tooth movement as possible, without provoking such undesired effects as bone and root resorption. To enable the implementation of an optimal orthodontic force system that meets these requirements, a thorough knowledge of the biomechanics of tooth movement is a must.

Biomechanical Phenomena↗

Biomechanical behavior of the periodontium before and after orthodontic tooth movement.

This study was designed to investigate the biomechanical behavior of the periodontium including the periodontal ligament (PDL) in terms of tooth mobility. Tooth mobility was measured in the canines of 10 adolescent patients before and after distal movement. Distal movement of the canines was carried out by use of a calibrated sectional archwire exerting an initial retraction force of 200 g. Tooth mobility was measured immediately before and after canine retraction by use of a noncontact displacement sensor when varying distal forces of 0 to 500 g were applied to the mesial of the canine. Before tooth movement, tooth mobility exhibited a substantial increase in loading with forces ranging from 50 to 150 g. The rate of increase gradually decreased up to 500 g. A nonlinear change in tooth mobility was similarly observed at the end of tooth movement or 24 days after the initiation of movement. Tooth mobility, however, was significantly greater when forces above 200 g were loaded. The periodontal tissues--the PDL and alveolar bone in particular--become more flexible at the end of tooth movement, indicating reduced support by the periodontal tissues. These findings suggest that the elastic nature of the PDL and alveolar bone may decrease substantially at the end of tooth movement.

Adolescent↗