| Literature DB >> 29868597 |
Kazuhiro Yasuda1, Kenta Saichi2, Hiroyasu Iwata2.
Abstract
Falls and fall-induced injuries are major global public health problems, and sensory input impairment in older adults results in significant limitations in feedback-type postural control. A haptic-based biofeedback (BF) system can be used for augmenting somatosensory input in older adults, and the application of this BF system can increase the objectivity of the feedback and encourage comparison with that provided by a trainer. Nevertheless, an optimal BF system that focuses on interpersonal feedback for balance training in older adults has not been proposed. Thus, we proposed a haptic-based perception-empathy BF system that provides information regarding the older adult's center-of-foot pressure pattern to the trainee and trainer for refining the motor learning effect. The first objective of this study was to examine the effect of this balance training regimen in healthy older adults performing a postural learning task. Second, this study aimed to determine whether BF training required high cognitive load to clarify its practicability in real-life settings. Twenty older adults were assigned to two groups: BF and control groups. Participants in both groups tried balance training in the single-leg stance while performing a cognitive task (i.e., serial subtraction task). Retention was tested 24 h later. Testing comprised balance performance measures (i.e., 95% confidence ellipse area and mean velocity of sway) and dual-task performance (number of responses and correct answers). Measurements of postural control using a force plate revealed that the stability of the single-leg stance was significantly lower in the BF group than in the control group during the balance task. The BF group retained the improvement in the 95% confidence ellipse area 24 h after the retention test. Results of dual-task performance during the balance task were not different between the two groups. These results confirmed the potential benefit of the proposed balance training regimen in designing successful motor learning programs for preventing falls in older adults.Entities:
Keywords: haptic-based perception-empathy biofeedback; interpersonal feedback; motor learning; older adults; postural control; sensory integration
Year: 2018 PMID: 29868597 PMCID: PMC5964210 DOI: 10.3389/fmed.2018.00149
Source DB: PubMed Journal: Front Med (Lausanne) ISSN: 2296-858X
Figure 1Overview of the biofeedback system. (A) When the center-of-foot pressure (CoP) exceeds the predefined threshold area, vibrators on the participant's pelvic belt are activated in the corresponding CoP direction (as indicated in the illustration, when CoP shifts to the front left, the vibrator on the front left is activated). (B) During balance training, the vibrators on the trainee's and trainer's pelvic belts are simultaneously activated corresponding to the trainee's CoP direction. Based on the shared information, the trainer is able to provide appropriate feedback and encouragement.
Figure 2Flow chart of the experimental procedure.
Participant characteristics.
| Sex (n, females) | 5 | 5 | |
| Age (y) | 71.2 ± 2.4 | 72.7 ± 3.4 | 0.9370 |
| Weight (kg) | 59.0 ± 13.7 | 55.6 ± 5.0 | 0.4717 |
| Height (cm) | 161.9 ± 6.6 | 158.5 ± 6.2 | 0.2472 |
| Leg length (cm) | 81.2 ± 4.5 | 79.3 ± 4.4 | 0.3729 |
Values are denoted in mean ± SD. BF, biofeedback.
Two-way ANOVA results of the 95% confidence ellipse area and mean velocity of sway in the experiment.
| 95% CONFIDENCE ELLIPSE AREA ( | ||||
| Group (A) | 1 | 20.63 | 53.30 | <0.0001 |
| Trials (B) | 14 | 0.1374 | 2.425 | 0.0033 |
| A × B | 14 | 0.1888 | 3.33 | <0.0001 |
| Residual | 252 | 0.05665 | ||
| Total | 281 | |||
| MEAN VELOCITY OF SWAY ( | ||||
| Group (A) | 1 | 1.497 | 8.80 | 0.0083 |
| Trials (B) | 14 | 0.07325 | 9.33 | <0.0001 |
| A × B | 14 | 0.02353 | 2.99 | 0.0003 |
| Residual | 252 | 0.007855 | ||
| Total | 281 | |||
p-value derived from ANOVA for the main effects of group and trials and interaction between group and trials. DF, degrees of freedom; MS, mean square.
p < 0.01.
Figure 3Ninety-five percent confidence ellipse area in the experiment (higher scores reflect greater spatial variability). Error bars indicate standard deviation.
Figure 4The mean velocity of sway in the experiment (higher scores reflect greater quantity of postural sway). Error bars indicate standard deviation.
Figure 5Dual-task costs (as a ratio in performance compared with single-task performance) (mean ± standard deviation).