| Literature DB >> 29123186 |
Qiang Li1,2, Yoshitomo Minagi2, Takahiro Ono3, Yongjin Chen4, Kazuhiro Hori5, Shigehiro Fujiwara5, Yoshinobu Maeda2.
Abstract
Swallowing is a very important and complex physiological behaviour. The dynamic of swallowing has created great interest as any procedural abnormality will result in dysphagia and even lower quality of life. However, a non-invasive evaluation of biomechanical coordination during oropharyngeal swallowing, which includes the activities of the tongue, the hyoid and swallowing-related muscles, has not yet been achieved. In the present study, we recruited fifteen subjects, and a non-invasive sensing system composed of a pressure sensor, a bend sensor, surface electrodes and a microphone was created to simultaneously monitor tongue pressure, hyoid motion, and surface EMG of swallowing-related muscles, as well as take sound recordings, when the subjects swallowed 5 ml of water. In addition to obtaining the durations of certain motor events, the considerable time (beginning, peak and ending time) of tongue pressure production, suprahyoid and infrahyoid muscle activity and hyoid motion were successfully measured. Moreover, the significant correlations between swallowing-related muscles, tongue pressure, and the hyoid were confirmed. These findings suggest that the non-invasive sensing system has potential as a good candidate for monitoring and evaluating the oropharyngeal process of swallowing, which may be useful in clinical work involving dysphagia evaluation and rehabilitation.Entities:
Mesh:
Year: 2017 PMID: 29123186 PMCID: PMC5680198 DOI: 10.1038/s41598-017-15243-6
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Schematic representations of the sensing system and experimental set-up. (a) A subject with tongue pressure sensor sheet, surface electrodes, bend sensor and microphone. (b) Tongue pressure sensor sheet. (c) Surface electrodes. (d) Bend sensor. (e) Microphone.
Figure 2Representative recordings of the noninvasive sensors. (a) Decomposed graph of waves of tongue pressure, EMG, laryngeal movement and swallowing sound. (b) The data analysis of TPon, TPmax, TPoff and DTP. (c) The data analysis of SHon, SHoff, SHpeak and DSH. (d) The data analysis of IHon, IHoff, IHpeak and DIH. (e) Laryngeal signal waveform and marked time point.
Figure 3Duration of biomechanical events during oropharyngeal swallowing. DSH, duration of suprahyoid muscle activity; DIH, duration of infrahyoid muscle activity. *p < 0.001 v.s. DSH and T1-T5; #p < 0.001 v.s. TP of Ch.3; &p < 0.005 v.s. DTP of Ch.3.
Figure 4Temporal sequence of biomechanical events during oropharyngeal swallowing. The red line is the swallowing sound that was chosen to be the reference time.
Correlation coefficient of biomechanical events during oropharyngeal swallowing.
| Events of muscle EMG | Eventsof the tongue pressure and hyoid activity |
|
|
|---|---|---|---|
| SHon | Ch.1 TPon | 0.472 | 0.058 |
| Ch.2 TPon | 0.434 | 0.064 | |
| Ch.3 TPon | 0.415 | 0.070 | |
| Ch.4 TPon | 0.377 | 0.112 | |
| Ch.5 TPon | 0.192 | 0.206 | |
| T1 | 0.658 | 0.002 | |
| T2 | 0.616 | 0.008 | |
| IHon | Ch.1 TPon | 0.543 | 0.025 |
| Ch.2 TPon | 0.302 | 0.152 | |
| Ch.3 TPon | 0.277 | 0.175 | |
| Ch.4 TPon | 0.252 | 0.199 | |
| Ch.5 TPon | 0.198 | 0.251 | |
| T1 | 0.258 | 0.193 | |
| T2 | 0.666 | 0.005 | |
| SHoff | Ch.1 TPoff | 0.653 | 0.002 |
| Ch.2 TPoff | 0.594 | 0.019 | |
| Ch.3 TPoff | 0.626 | 0.008 | |
| Ch.4 TPoff | 0.633 | 0.007 | |
| Ch.5 TPoff | 0.613 | 0.010 | |
| T5 | 0.694 | 0.001 | |
| IHoff | Ch.1 TPoff | 0.656 | 0.002 |
| Ch.2 TPoff | 0.643 | 0.003 | |
| Ch.3 TPoff | 0.640 | 0.004 | |
| Ch.4 TPoff | 0.580 | 0.026 | |
| Ch.5 TPoff | 0.689 | 0.001 | |
| T5 | 0.602 | 0.010 |