Computational Biomechanics of Sleep: A Systematic Mapping Review
Abstract
:1. Introduction
2. Review Methodology
2.1. Search Strategy
2.2. Eligibility Criteria and Screening Process
2.3. Data Extraction and Synthesis
3. Study Selection
4. Overview and Evidence Mapping
5. Thematic Analysis
5.1. Sleep Bruxism
5.2. Sleep Ergonomics
5.3. Obstructive Sleep Apnea (OSA)
6. Discussion
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Study | Case Scenario(s) | Highlighted Feature(s) | * Primary Variant(s) | Outcome(s) |
---|---|---|---|---|
Commisso et al. [50] | Sustained and cyclic clenching |
|
| Max/Min principal stress, max shear stress of TMJ articular disc |
Sagl et al. [66] | Lateral bruxing |
|
| Max bruxing force on molar and canine, VMS of TMJ articular disc |
Sagl et al. [67] | Mediotrusive and laterotrusive bruxing |
|
| TMJ loading, VMS of TMJ articular disc |
Study | Case Scenario(s) | Highlighted Feature(s) | * Primary Variant(s) | Outcome(s) |
---|---|---|---|---|
Chen et al. [49] | Supine lying on pillow (without mattress) |
| Pillow height | VMS and displacement of headrest point, neck fossa and pillow |
Denninger et al. [51] | Supine lying on mattress |
| Foam cell design, configuration | Deformation of cube, spinal curvature (L4 to C7 levels) |
Hong et al. [53] | Supine lying on mattress (with pillow) |
| Mattress stiffness | Peak pressure and contact area of occiput, cervical, scapula, buttocks, calves, and heel, VMS of IVD, spinal curvature (HD, CLD, TI, LLD) |
Ren et al. [64] | Supine lying on pillow (with mattress) |
| Pillow height | Peak pressure of the cranial and cervical regions, cervical spine alignment (CA, KD, LD) |
Yoshida et al. [70] | Supine lying on mattress (without pillow) |
| Mattress stiffness | VMS of the cervical spine, relative sinking displacement between head and chest |
Study | Population | OSA Group | Control Group | Outcome(s) |
---|---|---|---|---|
Banabilh et al. [43] | Malays | 19 (13M, 6F) | 19 (13M, 6F) | Airway area at nasopharyngeal, oropharyngeal, and hypopharyngeal regions |
Banabilh et al. [44] | Malays | 40 | 40 | Facial morphology |
Banabilh et al. [45] | Malays | 54 | 54 | Dental arch morphology |
Banabilh et al. [46] | Malays | 54 (32M, 22F) | 54 (21M, 33F) | Nasal airway morphology |
Study | Highlighted Feature(s) | * Primary Variant(s) | Outcome(s) |
---|---|---|---|
Carrigy et al. [47] |
|
| Change of cross-sectional area at velopharyngeal and oropharyngeal regions per change in airway pressure, deformation of pharynx |
Kajee et al. [57] |
|
| Tongue displacement |
Liu et al. [58] |
|
| Displacement of soft palate, closing pressure, pressure level at adhesion failure |
Liu et al. [59] |
|
| Displacement of soft palate and closing pressure |
Pelteret and Reddy [62] |
|
| Muscle activation response, displacement of tongue, muscle fiber stretch |
Pelteret and Reddy [63] |
|
| Muscle activation response, displacement of the tongue, maximum principal stress of tongue, contractile stress of muscle fibers |
Study | Case Scenario(s) | Highlighted Feature(s) | * Primary Variant(s) | Outcome(s) |
---|---|---|---|---|
Chen et al. [48] | Inhalation and exhalation |
| Eupnea and apnea | Displacement and deformation (versus time) of soft palate, pressure distribution and velocity field of airflow in the upper airway cavity |
Dhaliwal et al. [52] | Applying an inlet–outlet pressure difference |
| w/ and w/o muscle activation | Site of maximum collapse, degree of airway collapse |
Huang et al. [54] | Inhalation and exhalation |
| Eupnea and apnea FSI and CFD | Air flux, airflow pressure distribution of the airway cross-section, strain distribution of the sagittal cross-section of soft tissues |
Huang et al. [55] | Arbitrary pressure |
| - | Airflow velocity distribution and streamline |
Ilegbusi et al. [56] | Constant pharyngeal pressure to simulate inhalation |
| w/ and w/o dilator muscle activation, standing and supine position | Width of airway lumen at soft palate, tongue, epiglottis, and larynx levels; hyoid bone elevation; displacement of soft tissues; airflow rate and velocity distribution; airflow pressure distribution |
Malhotra et al. [60] | Applying closing pressure values from existing literature |
| w/ and w/o dilator muscle activation | Soft tissue deformation and displacement, closing pressure |
Mansour et al. [61] | Respiratory cycle |
| Wakefulness, non-REM sleep and REM sleep | Pharyngeal cross-sectional area |
Rong et al. [65] | Inhalation and exhalation |
| w/ and w/o spring element | Deformation of airway cross-section, strain distribution of soft tissues in sagittal cross-section, airflow pressure and velocity distribution, airway resistance, flux |
Sun et al. [68] | Inhalation and exhalation |
| OSA and non-OSA model | Airflow pressure and velocity distribution, displacement of soft palate, airway resistance, flux |
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Cheng, E.S.-W.; Lai, D.K.-H.; Mao, Y.-J.; Lee, T.T.-Y.; Lam, W.-K.; Cheung, J.C.-W.; Wong, D.W.-C. Computational Biomechanics of Sleep: A Systematic Mapping Review. Bioengineering 2023, 10, 917. https://doi.org/10.3390/bioengineering10080917
Cheng ES-W, Lai DK-H, Mao Y-J, Lee TT-Y, Lam W-K, Cheung JC-W, Wong DW-C. Computational Biomechanics of Sleep: A Systematic Mapping Review. Bioengineering. 2023; 10(8):917. https://doi.org/10.3390/bioengineering10080917
Chicago/Turabian StyleCheng, Ethan Shiu-Wang, Derek Ka-Hei Lai, Ye-Jiao Mao, Timothy Tin-Yan Lee, Wing-Kai Lam, James Chung-Wai Cheung, and Duo Wai-Chi Wong. 2023. "Computational Biomechanics of Sleep: A Systematic Mapping Review" Bioengineering 10, no. 8: 917. https://doi.org/10.3390/bioengineering10080917
APA StyleCheng, E. S. -W., Lai, D. K. -H., Mao, Y. -J., Lee, T. T. -Y., Lam, W. -K., Cheung, J. C. -W., & Wong, D. W. -C. (2023). Computational Biomechanics of Sleep: A Systematic Mapping Review. Bioengineering, 10(8), 917. https://doi.org/10.3390/bioengineering10080917