Scapulothoracic Joint - Depression

Scapulothoracic Depression is one of several movements available to the Scapulothoracic Joint that involves inferior gliding of the Scapula with a compliment of Sternoclavicular Joint and Acromioclavicular Joint rotations. In layman’s terms this movement describes the lowering or forced downwards drive of the Scapula relative to the Thorax .


Key Structures

Bone

Muscle

Connective Tissue

Nerve

Fascia


Kinematics

Depression at the Scapulothoracic Joint occurs as the Scapula glides inferiorly, guided by the fixed path of the Clavicle at the Sternoclavicular Joints articular disc due to the inferior roll of the Clavicle . In order to maintain joint congruency, the Medial Clavicle slides superiorly on the Sternoclavicular Joints articular disc (SOURCE-1+4). Simultaneously, Anterior Rotation/ Scapular Tilting at the Acromioclavicular Joint allows the Scapula to maintain a near vertical posture throughout the arch of motion (SOURCE-4). Typically Depression of the Scapula may be sufficiently achieved through the relaxing of the Upper Trapezius and the force of gravity, however active or forced Depression requires muscular contribution (SOURCE-1). These Muscles include Pectoralis Minor , Latissimus Dorsi , the lowest digitations of the Serratus Anterior , Pectoralis Major , Subclavius and the lower Trapezius (SOURCE-1+3+4). When the arm is fixed and cannot be depressed, these Muscles can raise the entire Thorax relative to The Shoulder Girdle (SOURCE-4).Scapulothoracic Depression is limited by the Upper Trapezius , Sternoclavicular Ligaments and the Sternoclavicular Joint articular disc (SOURCE-1).


Pathomechanics

Hypertonicity of Scapula Elevators such as the Upper Trapezius or Levator Scapulae may impede the ability to fully depress the Scapula . Restriction through depression is often compensated for with Thoracic - Extension or overactivity of the Middle Trapezius (SOURCE-2). Conversely, hypertonicity of larger depressors such as the Pectoralis Major (directly) or Latissimus Dorsi (indirectly) or restriction of the Posterior Glenohumeral Joint Capsule may result in an exacerbated depressive posture of the Scapula (SOURCE-3). Increased depression may also suggest weakness in the Upper Trapezius which is often attributed to a neurogenic cause (SOURCE-5). Additionally, this exacerbated posture in the form of trauma or repetitive strain can irritate the Long Thoracic Nerve (SOURCE-6+7).


Pathology

Hypertonicity of the Pectoralis Minor , a major depressor of the Scapulothoracic Joint , restricts Posterior Scapular Tilting which reduces the subacromial space and forms an avenue for Subacromial Impingement (SOURCE-8+9)

Scapular Dyskinesis - hypertonicity of Scapulothoracic Joint - Elevation muscles may restrict depression, while hypertonicity of the depressors or weakness of the elevators may exacerbate restriction. One such depressor that has well established relations to Dyskinesis is the Pectoralis Minor . Restriction of this muscle may limit necessary Posterior Scapular Tilting and External Rotation, with one study finding the extent of restriction was proportional to the presence of Dyskinesis (SOURCE-9+11). Additionally, the Serratus Anterior often displays reduced or altered activity in Dyskinesis (SOURCE-12).

Thoracic Outlet Syndrome - depression through both hypertonicity of the Pectoralis Minor or insufficiency from the Upper Trapezius may impede on the outlet and compress the neurovascular structures (predominately the Brachial Plexus ) it contains (SOURCE-10)

Nerve Palsy - injury to the nerves that innervate the Scapulothoracic Depression muscles may incapacitate their ability to produce movement. While injury to the Medial Pectoral Nerve is rare, it may result from trauma (usually direct blow or excessive stretch) or entrapment caused by a hypertonic or hypertrophic Pectoralis Minor (SOURCE-13+14). This may lead to weakness, chronic Pain and atrophy of the Pectoralis Major and/or Pectoralis Minor (SOURCE-14). In a similar fashion, injury to the Thoracodorsal Nerve compromises motor function of the Latissimus Dorsi which may lead to atrophy and limits its indirect depressive role (SOURCE-16). The Thoracodorsal Nerve is often utilised as a site of harvesting for reconstructive procedures or injured as a complication of surgery (SOURCE-15+16).

Cranial Nerve XI Neuropathy - excessive nerve traction through shoulder depression and contralateral Cervical - Rotation is a common mechanism of injury for the spinal accessory nerve (SOURCE-3).


Assessment

Observation

Range of Motion

Depression of the Scapula is rarely assessed in isolation and more often evaluated as part of composite motion of The Shoulder Girdle or determined by the resting position of the Scapula . With that said, roughly 5-10º of active Depression should be available to the Scapulothoracic Joint (SOURCE-17). Placing the patient in prone diminishes the effect of gravity while assessing depression with the arm in 130º GH Joint - Abduction helps eliminate compensatory movement (SOURCE-2). Isometric Tests of the Scapula depressors should also be conducted.

Orthopaedic Tests

The following Shoulder - Special Tests may be relevant in the assessment of dysfunctional Scapulothoracic Joint Depression: Scapular Dyskinesis

Subacromial Impingement

Thoracic Outlet Syndrome

Cervical Spine Radiculopathy

Neurological Tests

The following tests may be conducted to rule in/out nerve contribution with C5 , C6 , C7 , C8 and T1 Nerve Roots mst relevant to Scapulothoracic Joint Depression: Cervical - Myotomes (active resisted)

Cervical - Dermatomes - evaluates sensory region

Reflex - diminished reflex indicates potential lesion at corresponding Nerve Root

Upper Limb Nerve Tension Tests


Treatment

The treatment of Scapulothoracic Joint Depression dysfunction should be specific to the underlying cause. For rehabilitation of common underlying conditions such as Scapular Dyskinesis , Subacromial Impingement or a hypertonic Pectoralis Minor , see their respective pages.

Stretching

The following Stretching techniques may directly or indirectly improve Scapulothoracic Joint Depression restriction:

Strengthening

As a specific training protocol relates to the underlying cause of Scapulothoracic Joint Depression dysfunction, the following lists depression-based Strength exercises in rough descending order from most rudimentary:

Mobilisation

The following Mobilisation techniques may be relevant in the treatment of Scapulothoracic Joint Depression: Joint Play

Mobilisation with Movement - mobilisations applied with active movement


References

  1. Standring, S. (Ed.). (2016). Gray’s anatomy: The anatomical basis of clinical practice (41st ed.). Elsevier.

  2. Clarkson, H. M. (2013). Musculoskeletal assessment: Joint motion and muscle testing (3rd ed.). Wolters Kluwer/Lippincott Williams & Wilkins.

  3. Magee, D. J. (2014). Orthopedic physical assessment (6th ed.). Saunders.

  4. Neumann, D. A. (2002). Kinesiology of the musculoskeletal system: Foundations for physical rehabilitation (1st ed.). Mosby.

  5. Bordoni, B., & Varacallo, M. A. (2025). Neuroanatomy, cranial nerve 11 (Accessory). StatPearls Publishing. Retrieved from https://www.ncbi.nlm.nih.gov/books/NBK507722/

  6. Hamada, J., Igarashi, E., Akita, K., & Mochizuki, T. (2008). A cadaveric study of the serratus anterior muscle and the long thoracic nerve. Journal of Shoulder and Elbow Surgery, 17(5), 790–794. https://doi.org/10.1016/j.jse.2008.02.009

  7. Martin, R. M., & Fish, D. E. (2008). Scapular winging: Anatomical review, diagnosis, and treatments. Current Reviews in Musculoskeletal Medicine, 1(1), 1–11. https://doi.org/10.1007/s12178-007-9000-5

  8. Struyf, F., Nijs, J., Mottram, S., Roussel, N. A., Cools, A. M., & Meeusen, R. (2014). Clinical assessment of the scapula: a review of the literature. British journal of sports medicine, 48(11), 883–890. https://doi.org/10.1136/bjsports-2012-091059

  9. Yeşilyaprak, S. S., Yüksel, E., & Kalkan, S. (2016). Influence of pectoralis minor and upper trapezius lengths on observable scapular dyskinesis. Physical Therapy in Sport, 19, 7–13. https://doi.org/10.1016/j.ptsp.2015.08.002

  10. Kaplan, J., & Kanwal, A. (2023). Thoracic outlet syndrome. In StatPearls. StatPearls Publishing. Retrieved from https://www.ncbi.nlm.nih.gov/books/NBK557450/

  11. Umehara, J., Nakamura, M., Nishishita, S., Tanaka, H., Kusano, K., & Ichihashi, N. (2018). Scapular kinematic alterations during arm elevation with decrease in pectoralis minor stiffness after stretching in healthy individuals. Journal of shoulder and elbow surgery, 27(7), 1214–1220. https://doi.org/10.1016/j.jse.2018.02.037

  12. https://bjsm.bmj.com/content/bjsports/48/8/692.full.pdfCools, A. M. J., Struyf, F., De Mey, K., Maenhout, A., Castelein, B., & Cagnie, B. (2014). Rehabilitation of scapular dyskinesis: From the office worker to the elite overhead athlete. British Journal of Sports Medicine, 48(8), 692–697. https://doi.org/10.1136/bjsports-2013-092148

  13. Porzionato, A., Macchi, V., Stecco, C., Loukas, M., Tubbs, R. S., & De Caro, R. (2012). Surgical anatomy of the pectoral nerves and the pectoral musculature. Clinical Anatomy, 25(5), 559–575. https://doi.org/10.1002/ca.21301

  14. Borg-Stein, J., Mostoufi, S. A., & Hirschberg, R. (2006). Chronic pectoral pain following medial pectoral nerve injury: A case report. Journal of Back and Musculoskeletal Rehabilitation, 19(1), 7–11. https://doi.org/10.3233/BMR-2006-19102

  15. Chu, B., & Bordoni, B. (2023). Anatomy, thorax, thoracodorsal nerves. In StatPearls. StatPearls Publishing. Retrieved from https://www.ncbi.nlm.nih.gov/sites/books/NBK539761/

  16. Ostrowska, M., & de Carvalho, M. (2015). Injuries of the nerves of the thorax. In Nerves and nerve injuries: Vol 2. Pain, treatment, injury, disease and future directions (pp. 525–543). Academic Press. https://doi.org/10.1016/B978-0-12-802653-3.00083-X

  17. Hallaçeli, H., & Günal, I. (2002). Normal range of scapular elevation and depression in healthy subjects. Archives of orthopaedic and trauma surgery, 122(2), 99–101. https://doi.org/10.1007/s004020100339

Related Articles