Evaluation of a prototype dynamic laryngoplasty system in vitro with an equine vacuum airflow system.


Journal

Veterinary surgery : VS
ISSN: 1532-950X
Titre abrégé: Vet Surg
Pays: United States
ID NLM: 8113214

Informations de publication

Date de publication:
Feb 2019
Historique:
received: 23 06 2017
revised: 09 04 2018
accepted: 29 05 2018
pubmed: 21 12 2018
medline: 26 3 2019
entrez: 21 12 2018
Statut: ppublish

Résumé

To evaluate a prototype dynamic laryngoplasty system (DLPS) in a static airflow model. Experimental. Ten equine larynges. The right arytenoid was fixed in abduction in all specimens. A left-sided laryngoplasty was performed with No. 2 Fiberwire and a FASTakII anchor. Each larynx was tested in a static airflow model. The system was adjusted to a flow rate of 55 L/s and prelaryngeal pressure of 12 mm Hg prior to testing in maximal arytenoid abduction. In phase 1, the left suture was loosened, shortened, and tested in 3-mm steps from 0 to 30 mm. In phase 2, the suture was tied with the DLPS in position at a target left-to-right quotient angle (LRQ) of 0.5. The DLPS was activated to target psi of 0, 25, and 50 for testing. Translaryngeal impedance (TLI), LRQ, cross-sectional areas (CSA), and resultant change in LRQ and CSA between, before, and during airflow testing were calculated. In phase 1, TLI was reduced by suture shortening up to 6 mm (P = .001) but not by additional shortening (P > .05). In phase 2, activation of the DLPS reduced the TLI from 0 psi (0.43 ± 0.08 mm Hg/L/s) to 25 psi (0.16 ± 0.04 mm Hg/L/s, P < .001), but no further reduction was detected at maximal psi (P = .10). Activation of the DLPS effectively reduced TLI. These results justify further investigation of the DLPS to assess its clinical applicability.

Identifiants

pubmed: 30569487
doi: 10.1111/vsu.13137
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

173-179

Informations de copyright

© 2018 The American College of Veterinary Surgeons.

Auteurs

Benjamin J Ahern (BJ)

Equine Specialist Hospital, School of Veterinary Science, University of Queensland, UQ Gatton Campus, Gatton, Queensland, Australia.

Emily Lukas (E)

Equine Specialist Hospital, School of Veterinary Science, University of Queensland, UQ Gatton Campus, Gatton, Queensland, Australia.

Kimberly Lam (K)

Equine Specialist Hospital, School of Veterinary Science, University of Queensland, UQ Gatton Campus, Gatton, Queensland, Australia.

Emma Wilke (E)

Equine Specialist Hospital, School of Veterinary Science, University of Queensland, UQ Gatton Campus, Gatton, Queensland, Australia.

Francois-Rene Bertin (FR)

Equine Specialist Hospital, School of Veterinary Science, University of Queensland, UQ Gatton Campus, Gatton, Queensland, Australia.

Andrew Van Eps (A)

Equine Specialist Hospital, School of Veterinary Science, University of Queensland, UQ Gatton Campus, Gatton, Queensland, Australia.

Samantha Franklin (S)

Equine Health and Performance Centre, University of Adelaide, Roseworthy, South Australia, Australia.

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