Traumatic dental injuries (TDIs) represent one of the few true emergencies in dentistry—where the timeliness and quality of initial management directly determine the long-term prognosis of the injured tooth. TDIs occur with peak incidence in two age groups: preschool children (1-3 years), when falls during early ambulation predominate, and school-age children and adolescents (7-15 years), when sports injuries, playground accidents, and bicycle falls are the leading mechanisms. The maxillary central incisors are the most frequently injured teeth, accounting for approximately 80% of all TDIs, followed by the maxillary lateral incisors and the mandibular incisors. This article provides a systematic review of the Andreasen classification of traumatic dental injuries and evidence-based emergency management protocols.

The classification of traumatic dental injuries, developed and refined by Jens Ove Andreasen and colleagues at the University Hospital of Copenhagen, is the international standard adopted by the World Health Organization and the International Association of Dental Traumatology (IADT). The system categorizes injuries based on the tissues affected—enamel, dentin, pulp, periodontal ligament, and alveolar bone—and the nature of the injury. The classification is hierarchical: injuries to the hard dental tissues and pulp, injuries to the periodontal tissues, and injuries to the supporting bone.
| Injury | Code | Definition | Clinical Features | Radiographic Features |
|---|---|---|---|---|
| Enamel infraction | N 502.50 | Incomplete fracture (crack) of enamel without loss of tooth substance | Visible crack lines in enamel; transillumination confirms; no mobility; tender to percussion may be present | No radiographic changes; crack lines not visible on radiograph |
| Enamel fracture (uncomplicated crown fracture) | N 502.50 | Fracture confined to enamel with loss of tooth substance | Loss of enamel; rough or sharp edge; dentin not exposed | Loss of enamel visible; periapical status normal unless concurrent luxation |
| Enamel-dentin fracture (uncomplicated crown fracture) | N 502.51 | Fracture involving enamel and dentin without pulp exposure | Loss of enamel and dentin; yellowish dentin visible; dentin sensitivity to thermal, chemical, and tactile stimuli | Loss of enamel and dentin visible; proximity of fracture to pulp chamber assessed |
| Complicated crown fracture | N 502.52 | Fracture involving enamel and dentin with pulp exposure | Pink or red dot at fracture site; bleeding from pulp; pain on probing exposure site; dentin surrounding exposure may be covered by blood clot | Loss of enamel and dentin with communication to pulp chamber |
| Uncomplicated crown-root fracture | N 502.54 | Fracture involving enamel, dentin, and cementum without pulp exposure | Coronal fragment may be mobile and attached to gingiva; fracture line extends apical to gingival margin; percussion tenderness | Fracture line extending apically; may not be visible radiographically if oblique in buccolingual plane |
| Complicated crown-root fracture | N 502.54 | Fracture involving enamel, dentin, and cementum with pulp exposure | As above plus pulp exposure at or near fracture line | As above; pulp chamber communication may be visible |
| Root fracture | N 502.53 | Fracture involving cementum, dentin, and pulp | Coronal segment may be mobile and possibly displaced; transient crown discoloration (red/gray); bleeding from gingival sulcus; percussion tenderness | Horizontal or diagonal radiolucent line(s) crossing root; multiple radiographs at different angulations may be required for detection |
| Injury | Code | Definition | Clinical Features | Radiographic Features |
|---|---|---|---|---|
| Concussion | N 503.20 | Injury to tooth-supporting structures without abnormal loosening or displacement | Tender to percussion; no increased mobility; no displacement; sulcus bleeding may be present | Normal periodontal ligament (PDL) space; no radiographic abnormalities |
| Subluxation | N 503.20 | Injury to tooth-supporting structures with abnormal loosening but without displacement | Tender to percussion; increased mobility (horizontal); bleeding from gingival sulcus; no displacement | Normal or slightly widened PDL space |
| Extrusive luxation | N 503.20 | Partial displacement of tooth out of socket in an axial direction; PDL partially torn | Tooth appears elongated; mobile; displaced incisally; percussion dull, non-metallic sound; bleeding from PDL space | Increased apical PDL space; tooth appears displaced from socket |
| Lateral luxation | N 503.20 | Displacement of tooth in direction other than axial; accompanied by comminution or fracture of alveolar socket wall | Tooth displaced—commonly palatally/lingually or labially; immobile (locked into bone); percussion yields high metallic (ankylotic) sound; PDL space absent on compression side | Widened PDL space best seen on occlusal or eccentric radiograph; socket wall fracture may be visible |
| Intrusive luxation | N 503.21 | Displacement of tooth into alveolar bone; accompanied by comminution or fracture of alveolar socket | Tooth apically displaced into socket; percussion yields high metallic (ankylotic) sound; tooth may be partially or completely invisible (completely intruded); gingival bleeding | PDL space partially or completely absent; cementoenamel junction located more apically than adjacent uninjured teeth |
| Avulsion (exarticulation) | N 503.21 | Complete displacement of tooth from alveolar socket | Tooth completely out of socket; socket filled with coagulum; socket walls may be fractured or intact; extraoral dry time is the critical prognostic factor | Empty socket; ruling out intrusion or root fracture (radiograph of socket); rule out alveolar fracture |
| Injury | Code | Definition | Clinical Features |
|---|---|---|---|
| Comminution of alveolar socket | N 502.60 | Crushing and compression of alveolar socket; found with intrusive and lateral luxation | As described under intrusive and lateral luxation; socket wall fragmented on probing |
| Fracture of alveolar socket wall | N 502.60 | Fracture confined to facial or lingual/palatal socket wall | Mobile socket wall fragment; gingival laceration; tooth mobility may be present |
| Fracture of alveolar process | N 502.60 | Fracture involving the alveolar process may or may not involve the alveolar socket; segment may be mobile with several teeth moving as a unit | Block mobility with multiple teeth moving together; occlusal disturbance; gingival laceration; percussion may yield dull sound |
| Fracture of maxilla or mandible | N 502.61 | Fracture involving the base of the mandible or maxilla and often the alveolar process; may or may not involve the alveolar socket | Malocclusion; midline deviation; limited opening; paresthesia of lip/chin; step deformity on palpation; sublingual ecchymosis (mandibular fracture) |
Enamel infraction: No active treatment is required beyond sealing the crack with unfilled resin to prevent staining. Monitor pulp vitality at 6-8 weeks and 1 year.
Uncomplicated crown fracture (enamel only): Smooth the sharp edge or restore with composite resin. No urgency; the tooth can be restored electively.
Uncomplicated crown fracture (enamel-dentin): The exposed dentin must be covered as soon as possible—ideally within 24-48 hours—to protect the pulp from bacterial ingress through dentinal tubules and to manage dentin sensitivity. If immediate restoration is not possible, cover the exposed dentin with a glass ionomer or calcium hydroxide interim dressing. Definitive restoration uses acid-etch composite resin; if the fracture is extensive and the patient is near growth completion, a full-coverage ceramic restoration may be indicated.
Complicated crown fracture (pulp exposure): This is a time-sensitive emergency. The treatment decision depends on the size of the exposure, the time elapsed since injury, the stage of root development, and the concomitant periodontal injuries.
Concussion and subluxation: No active treatment is required in the acute phase. Monitor pulpal and periodontal status at 4 weeks, 8 weeks, 6 months, and 1 year. Instruct the patient to maintain a soft diet for 1-2 weeks and practice optimal oral hygiene with chlorhexidine mouth rinse (0.12%) twice daily for 1 week to control gingival inflammation at the injured site.
Extrusive luxation: Reposition the tooth by gently pushing it back into the socket with digital pressure under local anesthesia. Stabilize with a flexible splint for 2 weeks. For teeth with closed apices that have been severely displaced (more than 2 mm of extrusion), the risk of pulp necrosis exceeds 90%, and root canal treatment should be initiated 7-10 days post-injury with calcium hydroxide intracanal medication. For teeth with open apices, monitor for spontaneous revascularization (pink spot indicating vital pulp) and perform root canal treatment only if signs of pulp necrosis develop (periapical radiolucency, inflammatory root resorption, gray discoloration).
Lateral luxation: Under local anesthesia, disengage the tooth from its locked position by applying apical and labial/lingual digital pressure, then reposition it into the socket. Verify repositioning radiographically. Stabilize with a flexible splint for 4 weeks. For teeth with closed apices, the incidence of pulp necrosis approaches 100% due to the apical neurovascular bundle rupture; root canal treatment with calcium hydroxide should be initiated 7-10 days post-injury. For teeth with open apices, monitor for spontaneous revascularization, though the prognosis is guarded.
Intrusive luxation: Treatment depends on the degree of intrusion, stage of root development, and tooth type.
Avulsion of a permanent tooth is the most time-critical dental emergency. The prognosis for periodontal ligament (PDL) healing is directly and inversely proportional to the extraoral dry time. Every minute the tooth is out of the socket in a dry environment, PDL cells undergo irreversible necrosis. The goal of emergency management is to minimize extraoral dry time and to preserve the viability of the PDL cells remaining on the root surface.
Emergency instructions at the scene of injury (first aid):
In-office emergency management of avulsed permanent tooth:
Scenario 1: Tooth replanted at the scene or within 60 minutes, with closed apex.
Scenario 2: Tooth replanted at the scene, with open apex (immature tooth).
The goal is to preserve pulp vitality and promote continued root development. Do not initiate root canal treatment electively. Monitor for signs of pulp revascularization (return to normal color and sensibility, continued root development and apical closure on radiographs) at 4 weeks, 8 weeks, 3 months, 6 months, and 1 year. If pulp necrosis develops (periapical radiolucency, inflammatory root resorption, sinus tract), initiate apexification or regenerative endodontic procedures immediately. Splinting duration and systemic antibiotics as for closed apex.
Scenario 3: Tooth has been extraoral dry for more than 60 minutes.
The PDL is necrotic and non-viable. The treatment goal shifts from PDL healing to prevention of ankylosis-related replacement resorption and preservation of the alveolar ridge contour for future implant placement (in skeletally mature patients).
If the coronal fragment is displaced, reposition it under local anesthesia. Verify repositioning radiographically. Stabilize with a flexible splint: for fractures in the cervical third, splint for 4 months (healing by calcified tissue is slower in the cervical region due to the proximity of gingival crevicular fluid); for fractures in the middle or apical third, splint for 4 weeks. Monitor at 4 weeks, 8 weeks, 3 months, 6 months, 1 year, and annually for 5 years. Healing outcomes for root fractures, in order of decreasing frequency: healing with interposition of hard tissue (calcified callus), healing with interposition of connective tissue (PDL-like tissue between fragments), healing with interposition of bone and connective tissue (if fragments are separated by more than 1 mm at the time of splinting), and non-healing with interposition of granulation tissue (inflammatory tissue between fragments, requiring endodontic treatment of one or both fragments). Pulp necrosis in root fracture occurs in approximately 25% of cases overall, higher for fractures in the cervical third and for teeth with closed apices.
The long-term prognosis of traumatized teeth depends on the type and severity of the injury, the stage of root development (immature has better prognosis for pulp survival), the time elapsed between injury and treatment, the quality of the initial treatment, and the patient's compliance with follow-up protocols. The most common complications following TDIs are:
Traumatic dental injuries demand prompt, decisive, and evidence-based management. The clinician's immediate actions in the emergency setting exert a disproportionately large influence on the long-term survival of the traumatized tooth. The IADT guidelines, updated most recently in 2020, provide the most current evidence-based framework for clinical decision-making, but the fundamental principle remains unchanged: preserve pulp vitality whenever possible, minimize extraoral dry time in avulsion, stabilize with flexible splints that permit physiologic tooth movement, and commit to long-term follow-up to detect and manage complications before they become irreversible.
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