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Collagen responsible for tooth eruption? A study of the eruption of rat incisors.

The rate of turnover of collagen in periodontal ligament (PDL) is closely associated with the process of tooth eruption and tissue adaptation allowing good anchorage of the tooth within the socket. Collagen may even be associated with orthodontic relapse. As the collagen protein seems to play a key role in tooth eruption, the investigation concentrated on the presence and maturation of collagen and its possible function in the process of tooth eruption.

Aminoacetonitrile↗

Prognosis of replanted primary incisors after injuries.

Between 1979 and 1997, 58 avulsed primary teeth were treated at the Pedodontic Clinic of Niigata University Dental Hospital. Among these, we replanted six avulsed incisors of four patients and treated two teeth of two patients replanted at other dental clinics. Referring to the clinical records, oral photographs and radiographs, we examined the injury age, cause of injury, condition of tooth storage, length of time until replantation, and also the prognosis after replantation. Three teeth of two cases remained until eruption of their permanent successors, and one tooth of one case remained under observation without extraction. Although the other four teeth of three cases resulted in extraction, no secondary infection was detected due to replantation. The following reasons were suspected for the poor prognosis of the four teeth. One avulsed tooth was not fixed immediately after replantation. One replanted tooth might not have been compatible with the alveolar socket. In the other two teeth, the periodontal vital tissues might have been removed before replantation. It is generally suggested that replantation of primary teeth is not a good option. However, from the present results, it was considered that replantation can be an effectual method when the condition of the avulsed primary tooth is suitable.

Age Factors↗

Healing following tooth extraction in cyclosporine-fed rats.

Healing after tooth extraction was studied in rats treated with cyclosporine-A (CSA) for four weeks. Sixty male Sprague-Dawley rats were assigned to one of three groups of 20 rats each. The maxillary right molars were extracted from two groups; the third group served as a non-extraction control. The non-extraction group and one extraction group (vehicle control) received the solvent mineral oil daily, and the other extraction group received 15 mg/kg CSA in mineral oil. Five rats from each group were killed 5, 10, 14 and 28 days after extraction and samples analyzed histologically. On days 5 and 10, bone volume was significantly lower and marrow volume significantly higher in both extraction groups than in the non-extraction group. The fractional-formation surfaces were significantly lower in the extraction groups than in the non-extraction group on day 5 only. Osteoid volume was significantly higher in the extraction vehicle control group than in the other two groups on days 10 and 14; however, the osteoid volume was higher in the CSA group than in the other two groups on day 28. On days 14 and 28, bone volume was lower and marrow volume higher in the CSA group than in the extraction vehicle control and non-extraction groups. On day 28, bony surface areas were significantly greater in the CSA group than in the extraction vehicle control and non-extraction groups. Soft-tissue evaluation showed significantly greater epithelial areas, connective tissue areas and total tissue areas in the CSA group than in the extraction vehicle control group on day 28, but not on day 14. These data suggest that CSA may influence healing of both the gingival tissue and the alveolar bony sockets in the tooth-extraction wound. Further detailed study is needed to identify the mechanisms responsible.

Alveolar Process↗

Connective tissue reattachment as related to presence or absence of alveolar bone.

The present study was designed to examine if alveolar bone, located adjacent to a root surface deprived of its periodontal ligament and cementum layer, can stimulate the reformation of a connective tissue attachment. The maxillary and mandibular incisors in 3 monkeys were extracted. Immediately after tooth extraction, the buccal root surfaces of the incisors from the left side of the jaws were planed by means of curettes to a level corresponding to half the root length. All teeth were then reimplanted into their original sockets. However, before tooth reimplantation, the buccal alveolar bone plate was removed in 2 of the monkeys to a level corresponding to half the depth of the sockets. The animals were sacrificed 6 months after the reimplantation procedure. The jaws were removed and histological sections of the experimental teeth and adjacent periodontal tissues were produced. The sections were analyzed in the microscope and subjected to histometric measurements. The results demonstrated that, irrespective of the presence or absence of alveolar bone, a fibrous reattachment failed to form on that part of the reimplanted teeth which had been deprived of their periodontal ligament. This indicates that alveolar bone located adjacent to a root surface may have limited influence on the biological conditions which determine whether periodontal healing results in connective tissue reattachment or new attachment.

Alveolar Process↗

On the genesis of "dry socket".

One major school of thought regarding the pathogenesis of a dry socket occurring following tooth extraction is based on the concept that a blood clot fails to form, a concept that is, however, refuted by the clinical symptoms associated with the phenomena of a dry socket. A second theory maintains that, initially, clot formation takes place, but that the clot is subsequently lysed, bringing about the severe symptoms of a dry socket. Fibrinolysis generated by tissue activators only partly explains the occurrence of a dry socket. Based on the data accumulated in the literature, it is postulated that bacterial agents are involved in the fibrinolysis and that Treponema denticola may play a leading part in this process.

Blood Coagulation↗

Effects of alendronate on restoration of biomechanical properties of periodontium in replanted rat molars.

OBJECTIVE: We examined the effect of the pretreatment of roots with alendronate on the restoration of the support function of the healing periodontal ligament in replanted rat molars. METHODS: The left maxillary first molars were extracted, placed in 0.9% NaCl containing 1 mm alendronate (alendronate group) or 0.9% NaCl (control group) for 5 min, and were replanted into their sockets. Groups of animals were killed at 7, 14, and 21 days after replantation. Normal control rats were also killed on the same days. The force required to extract the replanted or normal tooth from its socket was measured, and a load-deformation curve was developed and analyzed. Micro-computed tomography and histologic analyses were also made. RESULTS: The mechanical properties of the healing periodontal ligament in the alendronate group were gradually restored from 7 to 21 days. However, fractures of the roots and bones during mechanical testing occurred in most of the replanted teeth in the control group at 21 days. The rates of restoration of the mechanical strength, extensibility, stiffness, and toughness for the alendronate group at 21 days were 67, 98, 74, and 68% of the normal controls, respectively. Micro-computed tomography and histologic observations revealed that bone-like structures within the pulp and ankylosis between the roots and socket bones occurred commonly in the control group, but were uncommon in the alendronate group. CONCLUSIONS: Our findings suggest that the pretreatment with alendronate inhibits the formation of abnormal mineralized tissues and results in better restoration of the support function of the healing periodontal ligament in replanted teeth.

Alendronate↗

Treatment of traumatic dental displacement in dogs: six cases of lateral luxation.

In dogs and cats, the most common causes of dental injury are fights with other animals, car accidents, falls from a height, and chewing on hard materials such as bones or rocks. The trauma more often causes fracture of the teeth, but sometimes avulsion or luxation can occur. Avulsion is the complete displacement of the tooth out of the alveolar socket and luxation is the partial displacement of the tooth. Tooth luxation and avulsion represent dental emergencies. Time is an important factor for successful treatment; the prognosis becomes poorer the longer the tooth is out of the socket. This paper describes the guidelines for treatment of dental displacement in cats and dogs and presents six cases of dental lateral luxation in dogs seen at the Veterinary Hospital of the University of Pennsylvania (VHUP) in the period from May 1996 to September 1997.

Animals↗

Immediate repositioning of an accidentally extruded immature premolar after extracting root remnants of the primary molar.

This article describes a case where during an extraction of a primary molar's root remnant, the successor permanent tooth was accidentally extruded. The extruded tooth was immediately repositioned to its right position in the socket and it erupted normally after a short time. After 2 years, a routine clinical examination revealed normal appearance of the premolar in the dental arch. A radiograph demonstrated an obliterated coronal part of the pulp, normal root length, a slightly open apex and no periapical inflammation.

Bicuspid↗

Effect of calcium phosphate ceramic particle insertion on tooth eruption.

The effects of calcium phosphate ceramic implants on tooth eruption were investigated radiographically and histologically in 20 3-month-old dogs. Four kinds of ceramic particles were used: dense and porous hydroxyapatite particles, and dense and porous tricalcium phosphate particles. These particles were implanted in the sockets after deciduous tooth extraction. The four types of calcium phosphate ceramic particles produced similar radiographic and histologic findings. There was no delay of tooth eruption, no dysplasia, and no resorption of dental hard tissue.

Animals↗

Intentional replantation.

A list of what was once advocated when performing a replantation versus what is done now follows: 1. It used to be advocated always to curettage the socket after removing the tooth. Now clinicians know not to touch the walls of the socket and only to aspirate gently the apical region if needed. 2. After removal, the tooth used to be held in gauze, desiccating viable PDL cells. Now the tooth is kept bathed in an emesis basin filled with HBSS, which maintains the viability of the PDL for 30 minutes. 3. All clinicians were able to do was visual inspection; now the microscope is used to illuminate and magnify the working area. 4. Splinting was done on every case; now clinicians rarely splint after replantation. 5. Narcotic pain medication was prescribed routinely; now clinicians premedicate with chlorhexidine rinse, anti-inflammatory medication, and sometimes antibiotics, rarely using narcotics. With increased understanding of the periodontium and improved techniques, replantation should no longer be viewed as a treatment of last resort, but rather a successful treatment alternative.

Alveolectomy↗

[Immediate implants without primary stabilization in the molar region].

Primary stabilization of implants was always considered a prerequisite for success. However, in many cases of extraction of molar teeth, the size of the extraction socket is larger than the widest implant available. A technique for immediate replacement of molar teeth with implants placed in bone allograft or xenograft is described. Following careful extraction of the tooth and thorough debridement of the socket, the bone graft is placed and carefully condensed. The implant carrier screw is slightly released and the implant inserted with careful rotation. Following placement of the cover screw the socket is covered with a membrane and primary closure of soft tissue is achieved. Case 1 Tooth 47 with primary endodontal periodontal-endodontal lesion is extracted and immediately replaced with a 6 mm implant. Six months later following second stage surgery, the implant is progressively loaded for one year and the final crown is placed. Case 2 Tooth 37 with a history of repeated abscesses, a perforation to the furcation area is diagnosed and the tooth extracted. The socket was filled with bovine bone xenograft and a 6 mm implant placed. Six months later the implant was evaluated and second stage surgery performed. Following six months with temporary crown, a final porcelain crown was fabricated. This technique can be used in cases where primary stabilization of immediate implants cannot be achieved and there is a demand for a single surgical procedure. A careful surgical protocol will yield predictable results and will preserve hard and soft tissues following tooth extraction.

Adult↗

Histological comparison of healing extraction sockets implanted with bioactive glass or demineralized freeze-dried bone allograft: a pilot study.

BACKGROUND: Various materials have been used immediately following tooth extraction to fill and/or cover the socket in an attempt to limit or prevent ridge resorption. The purpose of the present pilot study was to establish a reliable model to investigate the effect of various bone graft and bone replacement materials on extraction socket healing. This study also compared healing extraction sockets 6 to 8 months postimplantation of a bioactive glass (BG) or demineralized freeze-dried bone allograft (DFDBA) to an unfilled socket control (C). METHODS: Following tooth extraction, a total of 30 sockets in 19 patients were randomly divided into 3 treatment groups: 10 sockets received BG, 10 sockets DFDBA, and 10 sockets served as unfilled controls. Primary coverage was achieved by flap advancement over each socket. Six to 8 months postextraction at time of implant placement, histological cores of the treatment sites were obtained. These cores were processed, undecalcified sections prepared and stained with Stevenel blue/van Gieson's picric fuchsin, and histomorphometrically analyzed. Vital bone, connective tissue and marrow, and residual graft particles were reported as a percentage of the total core. RESULTS: A model system was described in humans and used to evaluate the healing response in the 3 treatment groups. Results concluded that mean vital bone present was 59.5% for BG-, 34.7% for DFDBA-, and 32.4% for C-treated sites. These differences were not statistically significant. However, the residual implant material was significantly higher in DFDBA-treated (13.5%) versus BG-treated sockets (5.5%). CONCLUSIONS: Although the differences in percent vital bone were not statistically significant among the 3 treatment groups in this pilot study, BG material was observed to act as an osteoconductive material which had a positive effect on socket healing at 6 to 8 months postextraction. Further research following implant placement in treated and control sockets is warranted to determine if bone implant contact is improved in BG-filled versus unfilled sockets.

Adult↗

Intentional replantation.

When conventional endodontic treatment or retreatment and surgery are not feasible, a clinician may choose to replant the defective tooth. Intentional replantation consists of extracting the tooth, finding and correcting the defect, and replanting the tooth in its socket. This article describes five case reports in which intentional replantation was used as a last resort. Four (80%) of the five patients were successfully treated.

Adolescent↗

Socket augmentation: rationale and technique.

The consequences of exodontia include alveolar bone resorption and ultimately atrophy to basal bone of the edentulous site/ridges. Ridge resorption proceeds quickly after tooth extraction and significantly reduces the possibility of placing implants without grafting procedures. The aims of this article are to describe the rationale behind alveolar ridge augmentation procedures aimed at preserving or minimizing the edentulous ridge volume loss. Because the goal of these approaches is to preserve bone, exodontia should be performed to preserve as much of the alveolar process as possible. After severance of the supra- and subcrestal fibrous attachment using scalpels and periotomes, elevation of the tooth frequently allows extraction with minimal socket wall damage. Extraction sockets should not be acutely infected and be completely free of any soft tissue fragments before any grafting or augmentation is attempted. Socket bleeding that mixes with the grafting material seems essential for success of this procedure. Various types of bone grafting materials have been suggested for this purpose, and some have shown promising results. Coverage of the grafted extraction site with wound dressing materials, coronal flap advancement, or even barrier membranes may enhance wound stability and an undisturbed healing process. Future controlled clinical trials are necessary to determine the ideal regimen for socket augmentation.

Alveolar Bone Loss↗

Application of a vibration measuring technique to evaluate the dynamic stiffness of porcine periodontal ligament.

The performance of a tooth replacement by using a dental implant relies on the mechanical and biological capability of the anatomical substitute to restore lost physiological functions. The design of an implant device able to properly replace the physiological tooth requires the study of the load transfer mechanism at the implant-bone interface and the understanding of the relevance of the periodontal ligament (PDL) in this mechanism. The PDL is a connective soft tissue that provides the fixation of the tooth in its bone-socket and the attenuation of occlusal loads. It also provides the ground cells that are involved in the remodelling process, induced by a change in the stress-strain pattern of the alveolar bone and also in the cementum of the tooth root. The purpose of this study was to determine the PDL effects on the dynamic load transfer mechanism, from the tooth to the alveolar bone, evaluating the equivalent dynamic stiffness of the ligament structure. A porcine fresh mandible with a tooth was used within the study, applying an experimental procedure to identify the dynamic transmissibility of the entire system. The transmissibility function provided information about the stiffness and damping of the PDL, information that can assist the design of an improved dental implant system.

Alveolar Process↗

Intentional replantation. A viable alternative for selected cases.

When conventional endodontic treatment or retreatment is not possible, the operator may choose to intentionally extract and replant the involved tooth. Intentional replantation consists of extracting the tooth, finding and correcting the defect, and replanting the tooth in its socket. This article discusses the indications, contraindications, and recommended techniques for intentional replantation. Several successful case reports are described in which intentional replantation was used as a last resort.

Aged↗

Replantation with intentional rotation of a complete vertically fractured root using adhesive resin cement.

This case describes intentional replantation with rotation of a complete vertically fractured root using adhesive resin cement. The fractured root was fixed with adhesive resin cement extra-orally. The tooth was replanted into the socket with rotation in order to avoid contact with the area where the periodontal ligament of the root surface was lost and the area where the alveola bone was lost along the fracture line. At follow-up 18 months later, the tooth was asymptomatic and radiographically showed an increase in the density of the alveolar bone, and the periodontal pockets were improved.

Alveolar Bone Loss↗

Intentional replantation of a lower premolar.

Intentional replantation is the purposeful extraction of a tooth to perform extraoral endodontic treatment, curettage of apical soft tissue when present and the replacement of the tooth in its socket. This paper demonstrates the use of intentional replantation as a technique to successfully treat a case where conventional endodontic retreatment and apical surgery were considered unfeasible.

Aged↗