Movement Analysis Could Help in the Assessment of Chronic Low Back Pain Patients: Results from a Preliminary Explorative Study
Abstract
:1. Introduction
2. Methods
2.1. Design and Setting
2.2. Participants
2.3. Evaluation Protocol
2.4. Usual Care Exercise Therapy Intervention
2.5. Data Analysis
2.6. Evaluation
2.7. Statistics
3. Results
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Appendix A. Scoring Criteria
Feature | Scoring Visual Guide | |||
---|---|---|---|---|
Start | Score 0 = before the graph begins to decrease there is a clear opposite movement that creates a peak. | |||
Score 0 | Score 1 | Score 2 | Score 3 | |
Fluency | Score 0 = the graph lines are continuous with no intermittences. | |||
Score 0 | Score 1 | Score 2 | Score 3 | |
Total Displacement/ Range of Motion | Score 0 = C7 trajectory line always crosses the S2 trajectory line (the more the C7 trajectory line crosses the S2 trajectory line, the better the ROM is). | |||
Score 0 | Score 1 | Score 2 | Score 3 | |
Score 0 = when the movement ends, the line of the graph is always at a higher level with respect to the starting line level. | ||||
Score 0 | Score 1 | Score 2 | Score 3 | |
Symmetry | Score 0 = the descending part of the graph overlaps with the ascending part. | |||
Score 0 | Score 1 | Score 2 | Score 3 | |
Pelvis Centre Position | Score 0 = the pelvis centre should be in the point of maximal flexion of the markers identifying S2. | |||
Score 0 | Score 1 | Score 2 | Score 3 | |
Feature | Scoring Visual Guide | |||
---|---|---|---|---|
Fluency | Score 0 = the graph appears with fluid and continuous lines and curves. | |||
Score 0 | Score 1 | Score 2 | Score 3 | |
Total Displacement /Range of Motion | The displacement of segments trajectories | |||
Score 0 | Score 1 | Score 2 | Score 3 | |
Symmetry | Score 0 = the descending part of the graph overlaps with the ascending part | |||
Score 0 | Score 1 | Score 2 | Score 3 | |
Cervico-Thoracic/lu Mbosacral Reverse Movement | Score 0 = when observing the movements of C7 and S2, their movements should be in an opposite trend with obviously a different magnitude. | |||
Score 0 | Score 1 | Score 2 | Score 3 | |
Pelvis Centre Movement | Score 0 = the pelvis centre should be aligned with the midpoint of each line of the graph. | |||
Score 0 | Score 1 | Score 2 | Score 3 | |
Feature | Description | |||
---|---|---|---|---|
Fluency | Score 0 = the graph lines are continuous with no intermittences. | |||
Score 0 | Score 1 | Score 2 | Score 3 | |
Total Displacement/ Range of Motion | The displacement of segments trajectories | |||
Score 0 | Score 1 | Score 2 | Score 3 | |
Symmetry | Score 0 = dividing graph at the maximum and minimum point, the two parts are overlapping. | |||
Score 0 | Score 1 | Score 2 | Score 3 | |
End | Score 0 = at the end of the movement, the S2 line arrives at the same level as the start. | |||
Score 0 | Score 1 | Score 2 | Score 3 | |
Pelvis Centre Movement | Score 0 = pelvis centre should be aligned with the midpoint of each line of the graph. | |||
Score 0 | Score 1 | Score 2 | Score 3 | |
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Flexion and Extension | |
---|---|
Feature | Description |
Start | The presence of a starting overshoot, as a detectable peak in the marker trajectory (opposite to the downward trend of flexion) before the profiles begin to decrease. |
Fluency | The shape of the time trajectory is configured without sudden stops, jumps, or discontinuities. This is when the execution of the measured movement is fluid both in its trajectory and in speed and acceleration. From an analytical point of view, the graphs show a continuous trend of the trajectory and its temporal derivatives that express the continuity of velocity and acceleration during the execution of the motor task and therefore the absence of sudden irregularities or intermittence in the movement. |
Total displacement/ Range of Motion | The amount of displacement retrieved in the graph. |
End | The quote of the profiles at the end of the movement with respect to the starting point quotes. |
Symmetry | How many descending and ascending parts of the profile represent symmetric slopes with respect to the ideal vertical straight line crossing the profile at the maximum flexion position. |
Pelvis centre position | The position of the pelvis centre with respect to S2 at the maximal flexion point. |
Lateral Bending | |
Feature | Description |
Fluency | The shape of the time trajectory is configured without sudden stops, jumps, or discontinuities. This is when the execution of the measured movement is fluid both in its trajectory and in speed and acceleration. From an analytical point of view, the graphs show a continuous trend of the trajectory and its temporal derivatives that express the continuity of velocity and acceleration during the execution of the motor task and therefore the absence of sudden irregularities or intermittence in the movement. |
Total displacement/ Range of Motion | The amount of displacement retrieved in the graph. |
Symmetry | The amount of overlap between the descending and ascending part of each curve (right and left) in the graph. |
Cervico-thoracic/lumbosacral reverse movement | The opposite trend trajectory of C7 and S2 lines during movement. |
Pelvis centre position | The position of the pelvis with respect to the midpoint of each line of the graph. |
Rotation | |
Feature | Description |
Fluency | The shape of the time trajectory is configured without sudden stops, jumps, or discontinuities. This is when the execution of the measured movement is fluid both in its trajectory and in speed and acceleration. From an analytical point of view, the graphs show a continuous trend of the trajectory and its temporal derivatives that express the continuity of velocity and acceleration during the execution of the motor task and therefore the absence of sudden irregularities or intermittence in the movement |
Total displacement/ Range of motion | The total amount of displacement is retrieved in the graph. |
Symmetry | The amount of overlap between the descending and ascending part of each curve (right and left) in the graph. |
End | The end height of the lines of the graph with respect to the starting point height. |
Pelvis centre position | The position of the pelvis with respect to the midpoint of each line of the graph. |
cLBP | Healthy | p | |
---|---|---|---|
Gender | 5F; 5M | 5F; 5M | - |
Age (year) | 58 ± 16 | 22 ± 1 | 0.00 |
Height (cm) | 168 ± 7 | 173 ± 6 | 0.20 |
Weight (kg) | 75 ± 14 | 68 ± 8 | 0.20 |
BMI (kg/m2) | 26 ± 4 | 23 ± 2 | 0.03 |
NRS (baseline) | 5.5 ± 3 | // | |
ODI (baseline) | 19 ± 8 | // |
Movement | Average Interitem Covariance | Chronbach’s Alpha | Ranges |
---|---|---|---|
Flexion and return | 0.60 | 0.88 | 0.10–0.80 |
Lateral bending | 0.61 | 0.88 | 0.21–0.80 |
Rotation | 0.45 | 0.84 | 0.20–0.81 |
ICC | 95%CI | |||
---|---|---|---|---|
IC | Intra-rater | Flexion and return | 0.99 | 0.98–1.00 |
Lateral bending | 0.97 | 0.94–0.99 | ||
Rotation | 0.95 | 0.88–0.98 | ||
Inter-rater | Flexion and return | 0.72 | 0.36–0.89 | |
Lateral bending | 0.78 | 0.53–0.91 | ||
Rotation | 0.39 | −0.09–0.73 |
cLBP T0 | cLBP T1 | Healthy | |
---|---|---|---|
Mean ± SD | Mean ± SD | Mean ± SD | |
Overall flexion score | 6.3 ± 3.5 | 5.7 ± 1.9 | 2.8 ± 1.3 |
Overall lateral bending score | 5.5 ± 2.9 | 5.4 ± 1.9 | 5.2 ± 1.4 |
Overall rotation score | 6.4 ± 1.2 | 6.3 ± 1.9 | 4.3 ± 1.0 |
Total movement score | 18.2 ± 6.3 * | 17.4 ± 5.3 + | 12.4 ± 1.9 |
Measures | Baseline (T0) Mean (SD) | Follow-Up (T1) Mean (SD) | p-Value |
---|---|---|---|
Total movement score | 18.52 (7.74) | 21.2 (10.40) | 0.38 |
ODI (%) | 19 (8.48) | 16 (11.06) | 0.27 |
NRS | 5.5 (2.99) | 3.2 (2.04) | 0.07 |
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Negrini, S.; Pollet, J.; Ranica, G.; Donzelli, S.; Vanossi, M.; Piovanelli, B.; Amici, C.; Buraschi, R. Movement Analysis Could Help in the Assessment of Chronic Low Back Pain Patients: Results from a Preliminary Explorative Study. Int. J. Environ. Res. Public Health 2022, 19, 9033. https://doi.org/10.3390/ijerph19159033
Negrini S, Pollet J, Ranica G, Donzelli S, Vanossi M, Piovanelli B, Amici C, Buraschi R. Movement Analysis Could Help in the Assessment of Chronic Low Back Pain Patients: Results from a Preliminary Explorative Study. International Journal of Environmental Research and Public Health. 2022; 19(15):9033. https://doi.org/10.3390/ijerph19159033
Chicago/Turabian StyleNegrini, Stefano, Joel Pollet, Giorgia Ranica, Sabrina Donzelli, Massimiliano Vanossi, Barbara Piovanelli, Cinzia Amici, and Riccardo Buraschi. 2022. "Movement Analysis Could Help in the Assessment of Chronic Low Back Pain Patients: Results from a Preliminary Explorative Study" International Journal of Environmental Research and Public Health 19, no. 15: 9033. https://doi.org/10.3390/ijerph19159033
APA StyleNegrini, S., Pollet, J., Ranica, G., Donzelli, S., Vanossi, M., Piovanelli, B., Amici, C., & Buraschi, R. (2022). Movement Analysis Could Help in the Assessment of Chronic Low Back Pain Patients: Results from a Preliminary Explorative Study. International Journal of Environmental Research and Public Health, 19(15), 9033. https://doi.org/10.3390/ijerph19159033