Novel Video-Laryngoscope with Wireless Image Transmission via Wi-Fi towards a Smartphone
Abstract
:1. Introduction
2. Materials and Methods
2.1. VDL System
2.2. In Vitro Study with Training Mannequin to Simulate the Airway
2.3. Clinical Tests in Patients
2.3.1. Subjects
2.3.2. Data Acquisition
2.3.3. Statistical Analysis
3. Results
3.1. In Vitro Study with Training Mannequin to Simulate the Airway
3.2. Clinical Tests in Patients
4. Discussion
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
- MIT-Based Team Works on Rapid Deployment of Open-Source, Low-Cost Ventilator, MIT News. Available online: http://news.mit.edu/2020/ventilator-covid-deployment-open-source-low-cost-0326 (accessed on 27 July 2020).
- Istituto Italiano di Tecnologia. FI5 Pulmonary Ventilator. Available online: https://www.iit.it/iit-vs-covid-19/fi5-ventilator (accessed on 27 July 2020).
- From Making Cars to Ventilators. Available online: https://www.volkswagenag.com/en/news/stories/2020/04/from-making-cars-to-ventilators.html (accessed on 27 July 2020).
- Colegio Mexicano de Medicina Crítica. Guía COVID-19 para la atención del paciente crítico con infección por SARS-coV-2 (segunda parte). Med. Crítica 2020, 34, 99–124. [Google Scholar] [CrossRef]
- Apfelbaum, J.L.; Hagberg, C.A.; Caplan, R.A.; Blitt, C.D.; Connis, R.T.; Nickinovich, D.G. Practice guidelines for management of the difficult airway: An updated report by the American Society of Anesthesiologists Task Force on Management of the Difficult Airway. Anesthesiology 2013, 118, 251–270. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Frerk, C.; Mitchell, V.S.; McNarry, A.F.; Mendonca, C.; Bhagrath, R.; Patel, A.A.; O’Sullivan, E.P.; Woodall, N.M.; Ahmad, I. Difficult Airway Society 2015 guidelines for management of unanticipated difficult intubation in adults. BJA Br. J. Anaesth. 2015, 115, 827–848. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Hoshijima, H.; Kuratani, N.; Hirabayashi, Y.; Takeuchi, R.; Shiga, T.; Masaki, E. Pentax Airway Scope® vs Macintosh laryngoscope for tracheal intubation in adult patients: A systematic review and meta-analysis. Anaesthesia 2014, 69, 911–918. [Google Scholar] [CrossRef] [PubMed]
- Smereka, J.; Ladny, J.R.; Naylor, A.; Ruetzler, K.; Szarpak, L. C-MAC compared with direct laryngoscopy for intubation in patients with cervical spine immobilization: A manikin trial. Am. J. Emerg. Med. 2017, 35, 1142–1146. [Google Scholar] [CrossRef] [PubMed]
- Saricicek, V.; Mizrak, A.; Gul, R.; Goksu, S.; Cesur, M. GlideScope video laryngoscopy use tracheal intubation in patients with ankylosing spondylitis: A series of four cases and literature review. J. Clin. Monit. Comput. 2014, 28, 169–172. [Google Scholar] [CrossRef] [PubMed]
- Hazarika, H.; Saxena, A.; Meshram, P.; Bhargava, A.K. A randomized controlled trial comparing C Mac D Blade and Macintosh laryngoscope for nasotracheal intubation in patients undergoing surgeries for head and neck cancer. Saudi J. Anaesth. 2018, 12, 35–41. [Google Scholar] [CrossRef] [PubMed]
- Bailey, B. Laryngoscopy and laryngoscopes--Who’s first?: The forefathers/four fathers of laryngology. Laryngoscope 1996, 106, 939–943. [Google Scholar] [CrossRef] [PubMed]
- McCoy, E.P.; Mirakhur, R.K. The levering laryngoscope. Anaesthesia 1993, 48, 516–519. [Google Scholar] [CrossRef] [PubMed]
- Lewis, S.R.; Butler, A.R.; Parker, J.; Cook, T.M.; Smith, A.F. Videolaryngoscopy versus direct laryngoscopy for adult patients requiring tracheal intubation. Cochrane Database Syst. Rev. 2016, 11, 15. [Google Scholar] [CrossRef] [PubMed]
- Bustillos-Gaytán, M.L.; Palacios-Ríos, D.; López-Cabrera, N.G.; Rodríguez-Flores, A.M.; García-Torres, R.M.; Mendoza-Rosales, C.F. Effectiveness of a laryngoscope blade with video adaptation. Anest. México 2018, 30, 28–35. [Google Scholar]
- Reglamento de la Ley General de Salud en Materia de Investigación para la Salud. Available online: http://www.salud.gob.mx/unidades/cdi/nom/compi/rlgsmis.html (accessed on 13 August 2020).
- Russell, T.; Khan, S.; Elman, J.; Katznelson, R.; Cooper, R.M. Measurement of forces applied during Macintosh direct laryngoscopy compared with GlideScope® videolaryngoscopy. Anaesthesia 2012, 67, 626–631. [Google Scholar] [CrossRef] [PubMed]
Variables | G I | G II | p Value |
---|---|---|---|
n = 15 (%) | n = 15 (%) | ||
Intubation time (s) | 27 | 106 | 0.005 |
[21, 33.5] | [44, 120] | ||
(15–120) | (18–120) | ||
Successful intubations | 13 (87) | 9 (60) | 0.215 |
Cormack scale | <0.0001 | ||
One | 14 (94) | 1 (6) | |
Two | 1 (6) | 8 (54) | |
Three | 0 | 3 (20) | |
Four | 0 | 3 (20) | |
Cormack groups | 0.016 | ||
1 = 1 y 2 | 15 (100) | 9 (60) | |
2 = 3 y 4 | 0 | 6 (40) |
Variable | N = 60 | GI | GII | p |
---|---|---|---|---|
n = 30 | n = 30 | Value | ||
Age (y.o.) | 47 ± 16 | 46 ± 14 | 47 ± 17.5 | 0.78 |
(18–83) | (19–71) | (18–83) | ||
Gender | 0.434 | |||
Female | 34 (57) | 15 (50) | 19 (63) | - |
Male | 26 (43) | 15 (50) | 11 (37) | - |
ASA classification | 0.77 | |||
ASA I | 6 (10) | 3 (10) | 3 (10) | - |
ASA II | 33 (55) | 17 (57) | 16 (53) | - |
ASA III | 15 (25) | 6 (20) | 9 (30) | - |
ASA IV | 6 (10) | 4 (13) | 2 (7) | - |
Cormack–Lehane scale | ||||
Grade l | 58 (97) | - | - | - |
Grade ll | 2 (3) | - | - | - |
Grade lll | 0 | - | - | - |
Grade lV | 0 | - | - | - |
Mallampati scale | 0.88 | |||
Class I | 19 (32) | 10 (33) | 9 (30) | - |
Class II | 22 (37) | 12 (40) | 10 (33) | - |
Class III | 15 (25) | 6 (20) | 9 (30) | - |
Class IV | 4 (7) | 2 (7) | 2 (7) | - |
Bellhouse-Dore classification | 0.03 | |||
Grade l | 46 (77) | 19 (63) | 27 (90) | - |
Grade ll | 14 (23) | 11 (37) | 3 (10) | - |
Grade lll | 0 | 0 | 0 | - |
Intubation time (s) | 24 [11] | - | - | - |
(16–79) | ||||
Number of attempts | 1 [0] | - | - | - |
(1–2) | ||||
Failed intubations | 0 | - | - | - |
Operator | - | - | - | - |
Resident 2 | 30 (50) | - | - | - |
Resident 3 | 23 (38) | - | - | - |
Base physician | 7 (12) | - | - | - |
Variable | GI | GII | p |
---|---|---|---|
n = 30 | n = 30 | Value | |
Intubation time (s) | 23.5 [8] | 26 [14.5] | 0.136 |
(16–54) | (17–79) | ||
Number of attempts | 1 [0] | 1 [0] | 0.57 |
(1–2) | (1–2) | ||
Operator | 0.08 | ||
Resident 2 | 12 (40) | 18 (60) | - |
Resident 3 | 12 (40) | 11 (38) | - |
Base physician | 6 (20) | 1 (3) | - |
Cormack–Lehane scale | 0.49 | ||
Grade l | 28 (93) | 30 (100) | - |
Grade ll | 2 (7) | 0 | - |
Grade lll | 0 | 0 | - |
Grade lV | 0 | 0 | - |
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Guerra-Hernández, M.; Vidaña-Martínez, G.J.; Camacho-Juárez, J.S.; Barragán-Villegas, H.; Calacuayo-Rojas, J.E.; Reyes, B.A.; Castañón-González, J.A.; Núñez-Olvera, O.F.; Fonseca-Leal, M.d.P. Novel Video-Laryngoscope with Wireless Image Transmission via Wi-Fi towards a Smartphone. Electronics 2020, 9, 1629. https://doi.org/10.3390/electronics9101629
Guerra-Hernández M, Vidaña-Martínez GJ, Camacho-Juárez JS, Barragán-Villegas H, Calacuayo-Rojas JE, Reyes BA, Castañón-González JA, Núñez-Olvera OF, Fonseca-Leal MdP. Novel Video-Laryngoscope with Wireless Image Transmission via Wi-Fi towards a Smartphone. Electronics. 2020; 9(10):1629. https://doi.org/10.3390/electronics9101629
Chicago/Turabian StyleGuerra-Hernández, Mauricio, Gabriela Josefina Vidaña-Martínez, José S. Camacho-Juárez, Hugo Barragán-Villegas, José Enrique Calacuayo-Rojas, Bersaín Alexander Reyes, Jorge Alberto Castañón-González, Oscar Fernando Núñez-Olvera, and Ma. del Pilar Fonseca-Leal. 2020. "Novel Video-Laryngoscope with Wireless Image Transmission via Wi-Fi towards a Smartphone" Electronics 9, no. 10: 1629. https://doi.org/10.3390/electronics9101629
APA StyleGuerra-Hernández, M., Vidaña-Martínez, G. J., Camacho-Juárez, J. S., Barragán-Villegas, H., Calacuayo-Rojas, J. E., Reyes, B. A., Castañón-González, J. A., Núñez-Olvera, O. F., & Fonseca-Leal, M. d. P. (2020). Novel Video-Laryngoscope with Wireless Image Transmission via Wi-Fi towards a Smartphone. Electronics, 9(10), 1629. https://doi.org/10.3390/electronics9101629