Ipsilateral femoral neck and shaft fractures are relatively rare fractures, which most commonly occur in young adults following high-energy trauma. In most cases of such fractures, neck fracture is undisplaced and often of basicervical type. Many treatment methods have been described, but there is still no generalized consensus on the same. Cephalomedullary nails are one of the preferred modalities of treatment. A cephalomedullary nail-like proximal femoral nail antirotation 2 (PFNA 2) of recent design is being widely used currently. In this study, we present 13 cases of ipsilateral femoral neck and shaft fractures treated with PFNA 2 implants. The advantages of the PFNA 2 system include reduced blood loss, reduced operative time, and fewer fluoroscopy shots. PFNA 2 is a biomechanically better implant than many cephalomedullary implants. It provides satisfactory results in ipsilateral femoral neck and shaft fractures, especially where neck fracture is of a basicervical type. Some aspects have to be taken care of when employing PFNA 2, such as anatomical reduction, and length, angulation, and rotation of both neck and shaft.
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http://dx.doi.org/10.7759/cureus.18511 | DOI Listing |
Curr Rev Musculoskelet Med
January 2025
Department of Orthopaedic Surgery, Washington University in St. Louis, St. Louis, MO, USA.
Purpose Of Review: With the growing popularity and broadening indications for Reverse Shoulder Arthroplasty (RSA), increasing modularity in design and adjustments to each component can enhance postoperative range of motion (ROM), thus expanding treatment capabilities. This review outlines the advancements developed to optimize ROM through modifications in glenoid and humeral components and the integration of computational tools for surgical planning.
Recent Findings: Enhancements in glenoid component design aim to mitigate complications like scapular notching and improve ROM, particularly in abduction and external rotation.
Injury
January 2025
University of Calgary, 0490 McCaig Tower, Foothills Hospital, 3134 Hospital Drive NW Calgary, Alberta T2N 5A1, Canada. Electronic address:
Eur J Radiol
December 2024
Department of Radiology, VA Boston Healthcare System, Boston University School of Medicine, Boston, MA, USA.
Rationale And Objectives: Accurate assessment of hip morphology is crucial for the diagnosis and management of hip pathologies. Traditional manual measurements are prone to mistakes and inter- and intra-reader variability. Artificial intelligence (AI) could mitigate such issues by providing accurate and reproducible measurements.
View Article and Find Full Text PDFJ Exp Orthop
January 2025
Department of Clinical Sciences Lund, Orthopaedics, Clinical and Molecular Osteoporosis Research Unit Faculty of Medicine Lund University Lund Sweden.
Purpose: To investigate if hip and knee alignment assessed 2 years after anterior cruciate ligament (ACL) injury is associated with compartment-specific radiographic knee osteoarthritis (OA) 3 years later.
Methods: An exploratory analysis was conducted in the knee ACL, nonsurgical versus surgical treatment (KANON) trial (ISRCTN84752559); 115 subjects with acute ACL injury were assessed at the 2-year follow-up; full-limb images of the injured leg were acquired, and the neck-shaft angle (NSA) and hip-knee-ankle angle (HKA) were measured. At the 5-year follow-up, weight-bearing tibiofemoral and patellofemoral radiographs were obtained.
Bone Joint J
January 2025
Division of Informatics, Imaging & Data Sciences, The University of Manchester, Manchester, UK.
Aims: The aims of this study were to develop an automatic system capable of calculating four radiological measurements used in the diagnosis and monitoring of cerebral palsy (CP)-related hip disease, and to demonstrate that these measurements are sufficiently accurate to be used in clinical practice.
Methods: We developed a machine-learning system to automatically measure Reimer's migration percentage (RMP), acetabular index (ACI), head shaft angle (HSA), and neck shaft angle (NSA). The system automatically locates points around the femoral head and acetabulum on pelvic radiographs, and uses these to calculate measurements.
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