Literature DB >> 31367803

Rapid breath analysis for acute respiratory distress syndrome diagnostics using a portable two-dimensional gas chromatography device.

Menglian Zhou1, Ruchi Sharma1, Hongbo Zhu1, Ziqi Li1, Jiliang Li1, Shiyu Wang1, Erin Bisco2,3, Justin Massey2,3, Amanda Pennington2,3, Michael Sjoding3,4, Robert P Dickson3,4, Pauline Park3,5, Robert Hyzy3,4, Lena Napolitano3,5, Christopher E Gillies2,3, Kevin R Ward6,7, Xudong Fan8,9.   

Abstract

Acute respiratory distress syndrome (ARDS) is the most severe form of acute lung injury, responsible for high mortality and long-term morbidity. As a dynamic syndrome with multiple etiologies, its timely diagnosis is difficult as is tracking the course of the syndrome. Therefore, there is a significant need for early, rapid detection and diagnosis as well as clinical trajectory monitoring of ARDS. Here, we report our work on using human breath to differentiate ARDS and non-ARDS causes of respiratory failure. A fully automated portable 2-dimensional gas chromatography device with high peak capacity (> 200 at the resolution of 1), high sensitivity (sub-ppb), and rapid analysis capability (~ 30 min) was designed and made in-house for on-site analysis of patients' breath. A total of 85 breath samples from 48 ARDS patients and controls were collected. Ninety-seven elution peaks were separated and detected in 13 min. An algorithm based on machine learning, principal component analysis (PCA), and linear discriminant analysis (LDA) was developed. As compared to the adjudications done by physicians based on the Berlin criteria, our device and algorithm achieved an overall accuracy of 87.1% with 94.1% positive predictive value and 82.4% negative predictive value. The high overall accuracy and high positive predicative value suggest that the breath analysis method can accurately diagnose ARDS. The ability to continuously and non-invasively monitor exhaled breath for early diagnosis, disease trajectory tracking, and outcome prediction monitoring of ARDS may have a significant impact on changing practice and improving patient outcomes. Graphical abstract.

Entities:  

Keywords:  2D GC; Acute respiratory distress syndrome gas chromatography; Breath analysis; Machine learning

Mesh:

Year:  2019        PMID: 31367803      PMCID: PMC6722019          DOI: 10.1007/s00216-019-02024-5

Source DB:  PubMed          Journal:  Anal Bioanal Chem        ISSN: 1618-2642            Impact factor:   4.142


  42 in total

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Authors:  Jens Dallüge; Jan Beens; Udo A Th Brinkman
Journal:  J Chromatogr A       Date:  2003-06-06       Impact factor: 4.759

2.  Flow-through microfluidic photoionization detectors for rapid and highly sensitive vapor detection.

Authors:  Hongbo Zhu; Robert Nidetz; Menglian Zhou; Jiwon Lee; Sanketh Buggaveeti; Katsuo Kurabayashi; Xudong Fan
Journal:  Lab Chip       Date:  2015-07-21       Impact factor: 6.799

3.  The portable gas chromatograph OralChroma™: a method of choice to detect oral and extra-oral halitosis.

Authors:  A Tangerman; E G Winkel
Journal:  J Breath Res       Date:  2008-03-07       Impact factor: 3.262

4.  Daily cost of an intensive care unit day: the contribution of mechanical ventilation.

Authors:  Joseph F Dasta; Trent P McLaughlin; Samir H Mody; Catherine Tak Piech
Journal:  Crit Care Med       Date:  2005-06       Impact factor: 7.598

5.  Mass spectrometric profile of exhaled breath--field study by PTR-MS.

Authors:  Berthold Moser; Florian Bodrogi; Guenther Eibl; Matthias Lechner; Josef Rieder; Philipp Lirk
Journal:  Respir Physiol Neurobiol       Date:  2005-02-15       Impact factor: 1.931

6.  Exhaled breath metabolomics as a noninvasive diagnostic tool for acute respiratory distress syndrome.

Authors:  Lieuwe D J Bos; Hans Weda; Yuanyue Wang; Hugo H Knobel; Tamara M E Nijsen; Teunis J Vink; Aeilko H Zwinderman; Peter J Sterk; Marcus J Schultz
Journal:  Eur Respir J       Date:  2014-04-17       Impact factor: 16.671

7.  Clinical risks for development of the acute respiratory distress syndrome.

Authors:  L D Hudson; J A Milberg; D Anardi; R J Maunder
Journal:  Am J Respir Crit Care Med       Date:  1995-02       Impact factor: 21.405

8.  Diffuse alveolar damage associated mortality in selected acute respiratory distress syndrome patients with open lung biopsy.

Authors:  Kuo-Chin Kao; Han-Chung Hu; Chih-Hao Chang; Chen-Yiu Hung; Li-Chung Chiu; Shih-Hong Li; Shih-Wei Lin; Li-Pang Chuang; Chih-Wei Wang; Li-Fu Li; Ning-Hung Chen; Cheng-Ta Yang; Chung-Chi Huang; Ying-Huang Tsai
Journal:  Crit Care       Date:  2015-05-15       Impact factor: 9.097

9.  Diagnosis and Classification of 17 Diseases from 1404 Subjects via Pattern Analysis of Exhaled Molecules.

Authors:  Morad K Nakhleh; Haitham Amal; Raneen Jeries; Yoav Y Broza; Manal Aboud; Alaa Gharra; Hodaya Ivgi; Salam Khatib; Shifaa Badarneh; Lior Har-Shai; Lea Glass-Marmor; Izabella Lejbkowicz; Ariel Miller; Samih Badarny; Raz Winer; John Finberg; Sylvia Cohen-Kaminsky; Frédéric Perros; David Montani; Barbara Girerd; Gilles Garcia; Gérald Simonneau; Farid Nakhoul; Shira Baram; Raed Salim; Marwan Hakim; Maayan Gruber; Ohad Ronen; Tal Marshak; Ilana Doweck; Ofer Nativ; Zaher Bahouth; Da-You Shi; Wei Zhang; Qing-Ling Hua; Yue-Yin Pan; Li Tao; Hu Liu; Amir Karban; Eduard Koifman; Tova Rainis; Roberts Skapars; Armands Sivins; Guntis Ancans; Inta Liepniece-Karele; Ilze Kikuste; Ieva Lasina; Ivars Tolmanis; Douglas Johnson; Stuart Z Millstone; Jennifer Fulton; John W Wells; Larry H Wilf; Marc Humbert; Marcis Leja; Nir Peled; Hossam Haick
Journal:  ACS Nano       Date:  2016-12-21       Impact factor: 15.881

10.  Detection of an extended human volatome with comprehensive two-dimensional gas chromatography time-of-flight mass spectrometry.

Authors:  Michael Phillips; Renee N Cataneo; Anirudh Chaturvedi; Peter D Kaplan; Mark Libardoni; Mayur Mundada; Urvish Patel; Xiang Zhang
Journal:  PLoS One       Date:  2013-09-25       Impact factor: 3.240

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  10 in total

1.  Rapid breath analysis for acute respiratory distress syndrome diagnostics using a portable two-dimensional gas chromatography device.

Authors:  Menglian Zhou; Ruchi Sharma; Hongbo Zhu; Ziqi Li; Jiliang Li; Shiyu Wang; Erin Bisco; Justin Massey; Amanda Pennington; Michael Sjoding; Robert P Dickson; Pauline Park; Robert Hyzy; Lena Napolitano; Christopher E Gillies; Kevin R Ward; Xudong Fan
Journal:  Anal Bioanal Chem       Date:  2019-08-01       Impact factor: 4.142

2.  Volatile organic compounds (VOCs) in exhaled breath as a marker of hypoxia in multiple chemical sensitivity.

Authors:  Andrea Mazzatenta; Mieczyslaw Pokorski; Camillo Di Giulio
Journal:  Physiol Rep       Date:  2021-09

3.  Real Time Breath Analysis Using Portable Gas Chromatography for Adult Asthma Phenotypes.

Authors:  Ruchi Sharma; Wenzhe Zang; Menglian Zhou; Nicole Schafer; Lesa A Begley; Yvonne J Huang; Xudong Fan
Journal:  Metabolites       Date:  2021-04-23

4.  Diagnosis of COVID-19 by analysis of breath with gas chromatography-ion mobility spectrometry - a feasibility study.

Authors:  Dorota M Ruszkiewicz; Daniel Sanders; Rachel O'Brien; Frederik Hempel; Matthew J Reed; Ansgar C Riepe; Kenneth Bailie; Emma Brodrick; Kareen Darnley; Richard Ellerkmann; Oliver Mueller; Angelika Skarysz; Michael Truss; Thomas Wortelmann; Simeon Yordanov; C L Paul Thomas; Bernhard Schaaf; Michael Eddleston
Journal:  EClinicalMedicine       Date:  2020-10-24

Review 5.  Systematic review of diagnostic methods for acute respiratory distress syndrome.

Authors:  Laura A Hagens; Nanon F L Heijnen; Marry R Smit; Marcus J Schultz; Dennis C J J Bergmans; Ronny M Schnabel; Lieuwe D J Bos
Journal:  ERJ Open Res       Date:  2021-01-18

6.  A method for the identification of COVID-19 biomarkers in human breath using Proton Transfer Reaction Time-of-Flight Mass Spectrometry.

Authors:  Aikaterini Liangou; Antonios Tasoglou; Heinz J Huber; Christopher Wistrom; Kevin Brody; Prahlad G Menon; Thomas Bebekoski; Kevin Menschel; Marlise Davidson-Fiedler; Karl DeMarco; Harshad Salphale; Jonathan Wistrom; Skyler Wistrom; Richard J Lee
Journal:  EClinicalMedicine       Date:  2021-11-20

7.  Breath analysis for detection and trajectory monitoring of acute respiratory distress syndrome in swine.

Authors:  Ruchi Sharma; Menglian Zhou; Mohamad Hakam Tiba; Brendan M McCracken; Robert P Dickson; Christopher E Gillies; Michael W Sjoding; Jean A Nemzek; Kevin R Ward; Kathleen A Stringer; Xudong Fan
Journal:  ERJ Open Res       Date:  2022-02-14

8.  Breath octane and acetaldehyde as markers for acute respiratory distress syndrome in invasively ventilated patients suspected to have ventilator-associated pneumonia.

Authors:  Nanon F L Heijnen; Laura A Hagens; Frederik-Jan van Schooten; Lieuwe D J Bos; Iwan C C van der Horst; Alex Mommers; Marcus J Schultz; Marry R Smit; Dennis C J J Bergmans; Agnieszka Smolinska; Ronny M Schnabel
Journal:  ERJ Open Res       Date:  2022-03-21

9.  Early prediction of moderate-to-severe condition of inhalation-induced acute respiratory distress syndrome via interpretable machine learning.

Authors:  Junwei Wu; Chao Liu; Lixin Xie; Xiang Li; Kun Xiao; Guotong Xie; Fei Xie
Journal:  BMC Pulm Med       Date:  2022-05-12       Impact factor: 3.320

10.  Mask assistance to colorimetric sniffers for detection of Covid-19 disease using exhaled breath metabolites.

Authors:  Mohammad Mahdi Bordbar; Hosein Samadinia; Ali Hajian; Azarmidokht Sheini; Elham Safaei; Jasem Aboonajmi; Fabiana Arduini; Hashem Sharghi; Pegah Hashemi; Hosein Khoshsafar; Mostafa Ghanei; Hasan Bagheri
Journal:  Sens Actuators B Chem       Date:  2022-07-14       Impact factor: 9.221

  10 in total

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