Background: Patients who undergo decompressive craniectomy (DC) are often fitted with a helmet that protects the craniectomy site from injury during rehabilitation. However, conventional "one-size-fits-all" helmets may not be feasible for certain craniectomy defects. We describe the production and use of a custom 3D-printed helmet for a DC patient where a conventional helmet was not feasible due to the craniectomy defect configuration.
Case Presentation: A 65-year-old male with ethmoid sinonasal carcinoma underwent cranionasal resection and DC with free vastus lateralis flap reconstruction to treat cerebrospinal fluid leakage. He required an external helmet to protect the craniectomy site, however, the rim of a conventional helmet compressed the craniectomy site, and the straps compressed the vascular pedicle of the muscle flap. Computed topography (CT) scans of the patient's cranium were imported into 3D modelling software and used to fabricate a patient-specific, strapless helmet using fused deposition modelling (FDM). The final helmet fit the patient perfectly and circumvented the compression issues, while also providing better cosmesis than the conventional helmet. Four months postoperatively, the helmet remains intact and in use.
Conclusions: 3D printing can be used to produce low-volume, patient-specific external devices for rehabilitation where standardized adjuncts are not optimal. Once initial start-up costs and training are overcome, these devices can be produced by surgeons themselves to meet a wide range of clinical needs.
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http://dx.doi.org/10.1186/s41205-022-00131-1 | DOI Listing |
J Trauma Inj
December 2024
Department of Neurosurgery, Korea University Guro Hospital, Korea University College of Medicine, Seoul, Korea.
Decompressive craniectomy is one of the most common procedures for managing severe traumatic brain injury. Cranioplasty plays a vital role in restoring the integrity of the skull and preventing complications that may arise after a decompressive craniectomy. This case report presents a 24-year-old woman who underwent cranioplasty with a cryopreserved autologous bone flap.
View Article and Find Full Text PDFAustralas J Ultrasound Med
November 2024
Argentinian Critical Care Ultrasonography Association (ASARUC) Buenos Aires C1424FSD Argentina.
Introduction: Intracranial epidural abscesses require swift diagnosis and treatment. While magnetic resonance imaging (MRI) is preferred for its detailed visualisation, it is costly and time-consuming. Transcranial sonography offers a rapid, portable and cost-effective alternative for assessing brain lesions.
View Article and Find Full Text PDFJ Med Case Rep
December 2024
Department of Neurology, Los Angeles General Medical Center/University of Southern California, 1100 N. State St., Clinic Tower A4E, Los Angeles, CA, 90034, USA.
Background: The sunken flap or sinking skin flap syndrome is a complication that can be observed following decompressive craniectomy. More rare, sinking skin flap syndrome can occur as an iatrogenic complication of pleural effusion evacuation via chest tube placement in the presence of ventriculopleural shunt.
Case Presentation: We report the case of a Hispanic male patient in his 20s who presented to the emergency department after sustaining a penetrating gunshot wound to the head.
Zhongguo Xiu Fu Chong Jian Wai Ke Za Zhi
December 2024
Key Laboratory of Advanced Materials of Ministry of Education, School of Materials Science and Engineering, Tsinghua University, Beijing, 100084, P. R. China.
Objective: To explore the clinical application value of mineralized collagen (MC) bone scaffolds in repairing various types of skull defects, and to assess the suitability and repair effectiveness of porous MC (pMC) scaffolds, compact MC (cMC) scaffolds, and biphasic MC composite (bMC) scaffolds.
Methods: A retrospective analysis was conducted on the clinical data of 105 patients who underwent skull defect repair with pMC, cMC, or bMC between October 2014 and April 2022. The cohort included 63 males and 42 females, ranging in age from 3 months to 55 years, with a median age of 22.
Background: Physical forces exerted by expanding brain tumors - specifically the compressive stresses propagated through solid tissue structures - reduces brain perfusion and neurological function, but heretofore has not been directly measured in patients . Solid stress levels estimated from tumor growth patterns are negatively correlated with neurological performance in patients. We hypothesize that measurements of solid stress can be used to inform clinical management of brain tumors.
View Article and Find Full Text PDFEnter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!