Universidade Federal de Goiás (UFG), Faculdade de Medicina, Goiânia, GO, Brazil
Introduction
Fractures of the pyramidal bone (or triquetrum) in association with dislocation of the hamate and carpal instability are uncommon, usually related to high-energy trauma, and may be associated with neurovascular deficit, skin lesions, myotendinous or even other carpal bones injuries. Early diagnosis and treatment of these injuries can prevent complications.1 Indeed, the stability of the bone-ligament structure of the carpus is essential for its proper functioning.2 This study aimed to report a rare case of transtriquetral perihamate fracture-dislocation and its treatment.
Case report
A 27 year-old male manual laborer, right-handed, presented to the emergency room with severe pain (VAS = 7) in the right wrist, edema ++/4+, with limited carpal flexion-extension without skin lesions or neurovascular deficit. He reported having suffered a direct trauma to the right wrist on the same day, which had been crushed between two iron bars at work. Pain was more intense on palpation ofthe ulnar region ofthe wrist, with a slight crackle and instability.
Right wrist radiographs were made in true anteroposterior, ulnar deviation, and profile views, which indicated fracture of the pyramidal and instability of the hamate (Fig. 1).
Patient underwent surgery; a dorsal incision was made, followed by an open reduction of the hamate-capitate instability and reduction of pyramidal fracture, which were fixed with Kirschner wires. Capsulorrhaphy and repair of hamatecapitate and lunotriquetral ligaments were also performed (Fig. 2). The wrist was immobilized in a short arm cast for four Fig. 1 – Right wrist X-rays in true anteroposterior (A), ulnar deviation (B), and profile incidences (C), showing pyramidal fracture and instability of the hamate. weeks, and K-wires were removed after eight weeks. Physical therapy was initiated after the fourth week. Eight months after surgery, patient was asymptomatic, with restored range of motion and strength, comparable to the contralateral side, with a decrease in the last 10 ? in extension and flexion on the right wrist (Fig. 3).
Discussion
The wrist has a complex anatomy, developed for a highly specialized function, and at the same time it is very exposed to extremity trauma through various mechanisms. The carpal bones and ligaments promote a multiplanar mobility and maintain stability in the various movements performed by the wrist, such as flexion, extension, radial and ulnar deviation, pronosupination, and circumduction.3,4
Trauma mechanism ofthis injury differs from the theory by Mayfield et al.5,6 ofprogressive perilunate instability in greater arc injuries, where the trauma energy passes through the carpal bones and ligaments from the radial to the ulnar side in stages, which would be explained in stage 3, with lunotriquetral ligament rupture without semilunar dislocation. The injury described in the present patient indicates the existence of a greater arc injury in reverse, from ulnar to radial. The radial carpal bones were spared.7
Moreover, it is certain that the patient had carpal instability, which is a disturbance of the static and dynamic balance between joints under physiological loads and movements. This loss of stability, which is related to bone and/or ligament injuries, leads to alterations in the joint anatomical relationships, affecting the biomechanical activity, as well as generating pain and carpal collapse.8


This pattern of carpal injury was studied by Garci-Elias et al.,9 who identified longitudinal and axial carpal instabilities, subdivided into three groups: axial-ulnar, axial-radial, and axial-radial-ulnar. Thus, the reported case would be classified as a longitudinal carpal instability, axial-ulnar subtype, specifically transtriquetral perihamate. It is important to note that the cleavage line in the diastasis between the capitate and the hamate may be subtle and the diagnosis may be overlooked.
Wrist X-rays are usually sufficient for the diagnosis of these lesions; in doubtful cases, CT can better assess fracture lines, and magnetic resonance imaging can identify ligament injury.8,10 Impairment of the median nerve is frequent and can trigger carpal tunnel syndrome (compression of the median nerve in the carpal tunnel area), characterized by pain with burning, paresthesia, thenar atrophy, and limitation of activity. Nerve decompression is required.
Although a closed reduction and immobilization are initially possible, surgical treatment should eventually be performed to restore the anatomy and stability of the carpus, as was done in the case reported.3–6,10–13
Conflicts of interest
The authors declare no conflicts of interest.
1. Naam NH, Smith DK, Gilula LA. Transtriquetral perihamate ulnar axial dislocation and palmar lunate dislocation. J Hand Surg Am. 1992;17(4):762–6. 2. Ozc¸elik A, Günal I, Köse N, Seber S, Omeroglu? H. Wrist ligaments: their significance in carpal instability. Ulus Travma Acil Cerrahi Derg. 2005;11(2):115–20. 3. Trumble TE. Principles of hand surgery and treatment. Philadelphia: Saunders; 2000. 4. Yeager BA, Dalinka MK. Radiology of trauma to the wrist: dislocations, fracture dislocations, and instability patterns. Skelet Radiol. 1985;13(2):120–30. 5. Mayfield JK. Mechanism of carpal injuries. Clin Orthop Relat Res. 1980;149:45–54. 6. Mayfield JK, Johnson RP, Kilcoyne RK. Carpal dislocations: pathomechanics and progressive perilunar instability. J Hand Surg Am. 1980;5(3):226–41. 7. Leung YF, Ip SP, Wong A, Ip WY. Trans-triquetral dorsal perilunate fracture dislocation. J Hand Surg Eur. 2007;32(6):647–8. 8. Sugawara LM, Yanaguizawa M, Ikawa MH, Takahashi RD, Natour J, Fernandes ARC. Instabilidade do carpo. Rev Bras Reumatol. 2008;48(1):34–8. 9. Garcia-Elias M, Dobyns JH, Cooney WP 3rd, Linscheid RL. Traumatic axial dislocations of the carpus. J Hand Surg Am. 1989;14(3):446–57. 10. Bain GI, McLean JM, Turner PC, Sood A, Pourgiezis N. Translunate fracture with associated perilunate injury: 3 casereports with introduction of the translunate arc concept. J Hand Surg Am. 2008;33(10):1770–6. 11. Graham TJ. The inferior arc injury: an addition to the family of complex carpal fracture-dislocation patterns. Am J Orthop (Belle Mead NJ). 2003;32 Suppl. 9:10–9. 12. Green DP. Carpal dislocations and instabilities. In: Green DP, editor. Operative hand surgery. 3rd ed. New York: Churchill Livingstone; 1993. p. 917–8. 13. Karolczak APB, Vaz MA, Freitas CR, Merlo ARC. Síndrome do túnel do carpo. Rev Bras Fisioter. 2005;9(2):117–22.