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Updated: Sep 19, 2025

Methods for In Vivo Biomechanical Testing on Brachial Plexus in Neonatal Piglets
Published on: December 19, 2019
Changes in Glenohumeral Musculoskeletal Development Following Brachial Plexus Birth Injury
Emily B Fawcett1, Kyla B Bosh1, Katherine R Saul2
1Joint Department of Biomedical Engineering, University of North Carolina, Chapel Hill, NC, and North Carolina State University, Raleigh, North Carolina, USA.
Insights
Brachial plexus birth injury (BPBI) causes complex shoulder deformities. Differentiating nerve rupture from avulsion is crucial for targeted treatments and preventing long-term musculoskeletal issues in children.
Area of Science:
- Pediatric Orthopedics
- Pediatric Neurology
- Biomedical Engineering
Background:
- Brachial plexus birth injury (BPBI) is a common pediatric nerve injury impacting shoulder development.
- BPBI can lead to significant, long-term postural, bone, and muscle deformities.
- Current treatment lacks consensus due to the complexity of BPBI sequelae and difficulty distinguishing injury types.
Purpose of the Study:
- To review current knowledge on musculoskeletal deformity development after BPBI.
- To highlight the distinct effects of postganglionic (nerve rupture) and preganglionic (nerve avulsion) injuries.
- To identify research gaps for improved, targeted BPBI treatments.
Main Methods:
- Literature review of clinical knowledge on BPBI-related shoulder deformities.
- Inclusion of insights from animal and computational models.
- Analysis of factors contributing to glenohumeral joint development disruption.
Main Results:
- Clinical understanding of BPBI sequelae is largely based on nerve rupture, with limited data on nerve avulsion.
- Distinct musculoskeletal consequences of nerve rupture versus avulsion are not well-differentiated clinically.
- Existing treatments may not be optimal due to the inability to distinguish between injury types.
Conclusions:
- A deeper understanding of the specific effects of nerve rupture and avulsion is essential for effective BPBI management.
- Further research is needed to differentiate injury types and their impact on glenohumeral deformity.
- Targeted therapeutic strategies are required to mitigate and prevent long-term shoulder deformities in BPBI patients.
Abstract:
Brachial plexus birth injury (BPBI), one of the most common nerve injuries in children, often leads to impaired shoulder development, resulting in sustained postural and bone deformity and muscle weakness. Despite the substantial long-term consequences, clinical consensus is lacking for what BPBI treatments are optimal in terms of timing and approach, primarily because BPBI sequelae are complex, involving stunted muscle growth, muscle denervation, and limb disuse that can disrupt glenohumeral joint development. Injury can occur as nerve rupture (postganglionic injury) or nerve avulsion (preganglionic injury), which have distinct musculoskeletal consequences yet are often treated similarly clinically due to their similar initial presentations and the inability of existing methods to distinguish between them. Most of our clinical knowledge about the musculoskeletal detriments in the shoulder comes from studies in nerve rupture patients. Knowledge is generally lacking for the specific effects of injury location on the development and progression of muscle and bone deficits following BPBI. A better understanding of the distinct effects of postganglionic and preganglionic BPBI is important for developing more effective and targeted treatments. More studies are needed to elucidate differences between nerve rupture and nerve avulsion and the particular factors driving glenohumeral deformity development. This paper reviews current knowledge about clinical musculoskeletal deformity development in the shoulder following BPBI, as well as additional insights gleaned from animal and computational models, and identifies key gaps that need to be addressed in future studies to inform better approaches for mitigating and preventing glenohumeral deformity in these patients.
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