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Published on: January 23, 2018
Current Trends and Future Directions in the Diagnosis and Management of Pediatric Orthopedic Disorders
Mohammed H Al-Rumaih1, Abdulrahman F Al-Otaibi1, Tareq S Almukhlafi1
1Department of Orthopaedic Surgery, Security Forces Hospital Program, Riyadh, SAU.
Insights
Recent advancements in pediatric orthopedics, including radiation-free imaging and AI, improve diagnosis and treatment for childhood musculoskeletal disorders. Innovations focus on minimally invasive, growth-preserving strategies for better long-term outcomes.
Area of Science:
- Pediatric Orthopedics
- Musculoskeletal Disorders
- Medical Technology Innovations
Background:
- Pediatric orthopedic disorders affect millions of children globally, potentially causing lifelong disability.
- Causes include genetic, biomechanical, and environmental factors impacting developing bones and joints.
- Early diagnosis and treatment are crucial for preventing long-term musculoskeletal impairment.
Purpose of the Study:
- To synthesize recent developments (2018-2025) in pediatric orthopedics.
- To highlight advancements in diagnostic and therapeutic strategies.
- To identify persistent challenges and future directions in the field.
Main Methods:
- Review of major studies from key databases.
- Focus on radiation-free diagnostic techniques like ultrasound, low-dose CBCT, and fast MRI.
- Inclusion of artificial intelligence (AI)-based diagnostic models.
Main Results:
- Radiation-free methods and AI models show high accuracy (90-98%) in diagnosing fractures, scoliosis, and assessing bone age.
- Minimally invasive, growth-preservation techniques are trending in management.
- Effective treatments include the Ponseti technique, Pavlik harnesses, and magnetically controlled growing rods for scoliosis.
Conclusions:
- Innovations in diagnostics and management reduce morbidity and improve long-term outcomes through personalized care.
- Challenges remain, including AI validation, access disparities, and the need for multicenter trials.
- Future directions involve AI integration, regenerative therapies, 3D printing, robotics, and genetic treatments for equitable care.
Abstract:
Congenital disorders, such as clubfoot, developmental dysplasia of the hip (DDH), and developmental problems, such as scoliosis, traumatic fractures, infections, tumors, neuromuscular dysfunction, and sports injuries, are all pediatric orthopedic disorders that impact millions of children around the world and can cause a lifetime of musculoskeletal disability unless they are treated early. These disorders are caused by genetic, biomechanical, and environmental factors that affect developing bones and joints. The review is a synthesis of recent developments during the 2018-2025 period, drawing on major studies from major databases. Radiation-free methods, such as high-resolution ultrasound in DDH, low-dose cone-beam computed tomography (CBCT) in fractures, fast magnetic resonance imaging (MRI) protocols, and artificial intelligence (AI)-based models have been shown to improve diagnosis with 90-98% accuracy in fracture detection, scoliosis classification, and bone age assessment. Trends in management focus on minimally invasive, growth-preservation strategies. The Ponseti technique and Pavlik harnesses remain very effective for clubfoot and DDH, and surgeries for scoliosis are minimized with magnetically controlled growing rods. Bioabsorbable fixation, virtual surgical planning (minimizing operating time and fluoroscopy), and biologics like platelet-rich plasma help promote improved healing with fewer complications. The innovations will reduce morbidity and improve long-term outcomes by providing personalized, evidence-based care. Nevertheless, the issues persist, including the lack of AI validation, access disparities in low-resource environments, and the need for more rigorous multicenter trials. The future outlook is validated AI integration, regenerative stem cell therapies, 3D-printed personalized implants, robotics, and genetic treatment to bring care to all children more equitably and effectively.
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