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Published in: Dysphagia 2/2020

01-04-2020 | Original Article

Variations in Healthy Swallowing Mechanics During Various Bolus Conditions Using Computational Analysis of Swallowing Mechanics (CASM)

Authors: Charles Lenell, Danielle Brates, William G. Pearson Jr., Sonja Molfenter

Published in: Dysphagia | Issue 2/2020

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Abstract

Bolus properties such as volume, consistency, and density have been shown to influence swallowing through the analysis of kinematics and timing in both normal and disordered swallowing. However, inherent intra- and inter-person variability of swallowing cloud interpretation of group data. Computational analysis of swallow mechanics (CASM) is an established methodology that uses coordinate tracking to map structural movements during swallowing and yields statistically powerful analyses at both the group and individual levels. In this study, the CASM method was used to determine how different bolus properties (volume, consistency, and density) altered swallow mechanics in healthy young adults at the group and individual levels. Videofluoroscopic swallow studies of 10 (4 females) healthy young adults were analyzed using CASM. Five bolus types were administered in each study (3 × 5 ml 40% w/v nectar, 3 × 5 ml 22% w/v thin, 3 × 5 ml 40% w/v thin, 3 × 10 ml 22% w/v thin, and 3 × 20 ml 22% w/v thin). Canonical variate analyses demonstrated that bolus condition did not affect swallowing mechanics at the group level, but bolus condition did affect pharyngeal swallow mechanics at the individual level. Functional swallow adaptations (e.g., hyoid movement) to bolus conditions were not uniform across participants, consistent with the nonsignificant group finding. These results suggest that individual swallowing systems of healthy young individuals vary in how they respond to bolus different conditions, highlighting the intrinsic variability of the swallow mechanism and the importance of individually tailored evaluation and treatment of swallowing. Findings warrant further investigation with different bolus conditions and aging and disordered populations.
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Literature
1.
go back to reference Steele CM, Miller AJ. Sensory input pathways and mechanisms in swallowing: a review. Dysphagia. 2010;25:323–33.CrossRef Steele CM, Miller AJ. Sensory input pathways and mechanisms in swallowing: a review. Dysphagia. 2010;25:323–33.CrossRef
2.
go back to reference Miller AJ. The neurobiology of swallowing and dysphagia. Dev Disabil Res Rev. 2008;14:77–86.CrossRef Miller AJ. The neurobiology of swallowing and dysphagia. Dev Disabil Res Rev. 2008;14:77–86.CrossRef
3.
go back to reference Jean A. Brain stem control of swallowing: neuronal network and cellular mechanisms. Physiol Rev. 2001;81:929–69.CrossRef Jean A. Brain stem control of swallowing: neuronal network and cellular mechanisms. Physiol Rev. 2001;81:929–69.CrossRef
4.
go back to reference Kahrilas PJ, Lin S, Logemann JA, Ergun GA, Facchini F. Deglutitive tongue action: volume accommodation and bolus propulsion. Gastroenterology. 1993;104:152–62.CrossRef Kahrilas PJ, Lin S, Logemann JA, Ergun GA, Facchini F. Deglutitive tongue action: volume accommodation and bolus propulsion. Gastroenterology. 1993;104:152–62.CrossRef
5.
go back to reference Dantas RO, Kern MK, Massey BT, Dodds WJ, Kahrilas PJ, Brasseur JG, Cook IJ, Lang IM. Effect of swallowed bolus variables on oral and pharyngeal phases of swallowing. Am J Physiol. 1990;258:G675–81.PubMed Dantas RO, Kern MK, Massey BT, Dodds WJ, Kahrilas PJ, Brasseur JG, Cook IJ, Lang IM. Effect of swallowed bolus variables on oral and pharyngeal phases of swallowing. Am J Physiol. 1990;258:G675–81.PubMed
6.
go back to reference Lazarus CL, Logemann JA, Rademaker AW, Kahrilas PJ, Pajak T, Lazar R, Halper A. Effects of bolus volume, viscosity, and repeated swallows in nonstroke subjects and stroke patients. Arch Phys Med Rehabil. 1993;74:1066–70.CrossRef Lazarus CL, Logemann JA, Rademaker AW, Kahrilas PJ, Pajak T, Lazar R, Halper A. Effects of bolus volume, viscosity, and repeated swallows in nonstroke subjects and stroke patients. Arch Phys Med Rehabil. 1993;74:1066–70.CrossRef
7.
go back to reference Kim Y, McCullough GH. Maximum hyoid displacement in normal swallowing. Dysphagia. 2008;23:274–9.CrossRef Kim Y, McCullough GH. Maximum hyoid displacement in normal swallowing. Dysphagia. 2008;23:274–9.CrossRef
8.
go back to reference Jacob P, Kahrilas PJ, Logemann JA, Shah V, Ha T. Upper esophageal sphincter opening and modulation during swallowing. Gastroenterology. 1989;97:1469–78.CrossRef Jacob P, Kahrilas PJ, Logemann JA, Shah V, Ha T. Upper esophageal sphincter opening and modulation during swallowing. Gastroenterology. 1989;97:1469–78.CrossRef
9.
go back to reference Dodds WJ, Man KM, Cook IJ, Kahrilas PJ, Stewart ET, Kern MK. Influence of bolus volume on swallow-induced hyoid movement in normal subjects. Am J Roentgenol. 1988;150:1307–9.CrossRef Dodds WJ, Man KM, Cook IJ, Kahrilas PJ, Stewart ET, Kern MK. Influence of bolus volume on swallow-induced hyoid movement in normal subjects. Am J Roentgenol. 1988;150:1307–9.CrossRef
10.
go back to reference Dantas RO, Dodds WJ. Effect of bolus volume and consistency on swallow-induced submental and infrahyoid electromyographic activity. Braz J Med Biol Res. 1990;23:37–44.PubMed Dantas RO, Dodds WJ. Effect of bolus volume and consistency on swallow-induced submental and infrahyoid electromyographic activity. Braz J Med Biol Res. 1990;23:37–44.PubMed
11.
go back to reference Stokely SL, Molfenter SM, Steele CM. Effects of barium concentration on oropharyngeal swallow timing measures. Dysphagia. 2014;29:78–82.CrossRef Stokely SL, Molfenter SM, Steele CM. Effects of barium concentration on oropharyngeal swallow timing measures. Dysphagia. 2014;29:78–82.CrossRef
12.
go back to reference Fink TA, Ross JB. Are we testing a true thin liquid? Dysphagia. 2009;24:285–9.CrossRef Fink TA, Ross JB. Are we testing a true thin liquid? Dysphagia. 2009;24:285–9.CrossRef
13.
go back to reference Molfenter SM, Steele CM. Physiological variability in the deglutition literature: hyoid and laryngeal kinematics. Dysphagia. 2011;26:67–74.CrossRef Molfenter SM, Steele CM. Physiological variability in the deglutition literature: hyoid and laryngeal kinematics. Dysphagia. 2011;26:67–74.CrossRef
14.
go back to reference Molfenter SM, Steele CM. Temporal variability in the deglutition literature. Dysphagia. 2012;27:162–77.CrossRef Molfenter SM, Steele CM. Temporal variability in the deglutition literature. Dysphagia. 2012;27:162–77.CrossRef
15.
go back to reference Lof GL, Robbins J. Test–retest variability in normal swallowing. Dysphagia. 1990;4:236–42.CrossRef Lof GL, Robbins J. Test–retest variability in normal swallowing. Dysphagia. 1990;4:236–42.CrossRef
16.
go back to reference Kelso JAS. Dynamic patterns: the self-organization of brain and behavior. Cambridge: MIT Press; 1995. Kelso JAS. Dynamic patterns: the self-organization of brain and behavior. Cambridge: MIT Press; 1995.
17.
go back to reference Button C, Davids K, Schollhorn W. Coordination profiling of movement systems. In: Davids K, Bennett S, Newell K, editors. Movement system variability. Champaign: Human Kinetics; 2006. p. 133–52. Button C, Davids K, Schollhorn W. Coordination profiling of movement systems. In: Davids K, Bennett S, Newell K, editors. Movement system variability. Champaign: Human Kinetics; 2006. p. 133–52.
18.
go back to reference Pearson WG Jr, Taylor BK, Blair J, Martin-Harris B. Computational analysis of swallowing mechanics underlying impaired epiglottic inversion. Laryngoscope. 2016;126:1854–8.CrossRef Pearson WG Jr, Taylor BK, Blair J, Martin-Harris B. Computational analysis of swallowing mechanics underlying impaired epiglottic inversion. Laryngoscope. 2016;126:1854–8.CrossRef
20.
go back to reference Molfenter SM, Steele CM. Use of an anatomical scalar to control for sex-based size differences in measures of hyoid excursion during swallowing. J Speech Lang Hear Res. 2014;57:768–78.CrossRef Molfenter SM, Steele CM. Use of an anatomical scalar to control for sex-based size differences in measures of hyoid excursion during swallowing. J Speech Lang Hear Res. 2014;57:768–78.CrossRef
21.
go back to reference Natarajan R, Stavness I, Pearson W. Semi-automatic tracking of hyolaryngeal coordinates in videofluoroscopic swallowing studies. Comput Methods Biomech Biomed Eng Imaging Vis. 2017;5:379–89.CrossRef Natarajan R, Stavness I, Pearson W. Semi-automatic tracking of hyolaryngeal coordinates in videofluoroscopic swallowing studies. Comput Methods Biomech Biomed Eng Imaging Vis. 2017;5:379–89.CrossRef
22.
go back to reference Pearson WG, Zumwalt AC. Visualising hyolaryngeal mechanics in swallowing using dynamic MRI. Comput Methods Biomech Biomed Eng Imaging Vis. 2014;2:208–16.CrossRef Pearson WG, Zumwalt AC. Visualising hyolaryngeal mechanics in swallowing using dynamic MRI. Comput Methods Biomech Biomed Eng Imaging Vis. 2014;2:208–16.CrossRef
23.
go back to reference Klingenberg CP. MorphoJ: an integrated software package for geometric morphometrics. Mol Ecol Resour. 2011;11:353–7.CrossRef Klingenberg CP. MorphoJ: an integrated software package for geometric morphometrics. Mol Ecol Resour. 2011;11:353–7.CrossRef
24.
go back to reference Davids K, Glazier P, Araujo D, Bartlett R. Movement systems as dynamical systems: the functional role of variability and its implications for sports medicine. Sports Med. 2003;33:245–60.CrossRef Davids K, Glazier P, Araujo D, Bartlett R. Movement systems as dynamical systems: the functional role of variability and its implications for sports medicine. Sports Med. 2003;33:245–60.CrossRef
25.
go back to reference Magill RA, Anderson D. Motor learning and control: concepts and applications. 10th ed. New York: McGraw-Hill; 2014. Magill RA, Anderson D. Motor learning and control: concepts and applications. 10th ed. New York: McGraw-Hill; 2014.
26.
go back to reference McCullough GH, Wertz RT, Rosenbek JC, Mills RH, Ross KB, Ashford JR. Inter- and intrajudge reliability of a clinical examination of swallowing in adults. Dysphagia. 2000;15:58–67.CrossRef McCullough GH, Wertz RT, Rosenbek JC, Mills RH, Ross KB, Ashford JR. Inter- and intrajudge reliability of a clinical examination of swallowing in adults. Dysphagia. 2000;15:58–67.CrossRef
27.
go back to reference Lee JW, Randall DR, Evangelista LM, Kuhn MA, Belafsky PC. Subjective assessment of videofluoroscopic swallow studies. Otolaryngol Head Neck Surg. 2017;156:901–5.CrossRef Lee JW, Randall DR, Evangelista LM, Kuhn MA, Belafsky PC. Subjective assessment of videofluoroscopic swallow studies. Otolaryngol Head Neck Surg. 2017;156:901–5.CrossRef
Metadata
Title
Variations in Healthy Swallowing Mechanics During Various Bolus Conditions Using Computational Analysis of Swallowing Mechanics (CASM)
Authors
Charles Lenell
Danielle Brates
William G. Pearson Jr.
Sonja Molfenter
Publication date
01-04-2020
Publisher
Springer US
Published in
Dysphagia / Issue 2/2020
Print ISSN: 0179-051X
Electronic ISSN: 1432-0460
DOI
https://doi.org/10.1007/s00455-019-10026-9

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