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Optimizing lumbar therapy: a biomechanical study of oblique pulling manipulation under different postures
Yanfei Wang1, Aorui Yu1,2, Lianhai Jin1
1The Fourth Clinical Medical College of Guangzhou University of Chinese Medicine, Guangzhou, Shenzhen, 518033, China.
BMC Complementary Medicine and Therapies
|August 12, 2026
Summary
Oblique pulling manipulation for lumbar disc herniation shows posture-dependent effects on spinal loading. Adjusting lumbar posture can alter regional load distribution, guiding clinical application.
Area of Science:
- Biomechanics
- Spinal Manipulation Therapy
- Lumbar Spine Anatomy
Background:
- Oblique pulling manipulation is a conservative treatment for lumbar disc herniation.
- A key limitation is inaccurate localization during the procedure.
- This study investigates posture-specific effects and load distribution.
Purpose of the Study:
- To explore the biomechanical effects of oblique pulling manipulation.
- To characterize load distribution across lumbar regions under varying postures.
- To provide a basis for posture-guided manipulation.
Main Methods:
- Multi-modal approach: motion capture, finite element modeling, biomechanical experiments.
- Analysis of 18 healthy volunteers and 6 cadaveric specimens.
- Pressure sensors used for intervertebral disc and facet joint measurements.
Main Results:
- Biomechanical effects are closely related to lumbar posture.
- Posture-dependent, region-specific loading patterns observed.
- Peak forces concentrated at L3/4 (extension), L4/5 (flexion), L5/S1 (excessive flexion).
Conclusions:
- Findings provide a biomechanical basis for posture-guided oblique pulling manipulation.
- Adjusting lumbar posture influences regional mechanical load distribution.
- May assist clinicians in selecting optimal manipulation postures.
Keywords:
Biomechanical experimentsFinite element modelingInfrared optical motion captureLumbar disc herniationOblique pulling manipulation
