Statistical Evaluation of Total Expiratory Breath Samples Collected throughout a Year: Reproducibility and Applicability toward Olfactory Sensor-Based Breath Diagnostics
暂无分享,去创建一个
Gaku Imamura | Kosuke Minami | Genki Yoshikawa | Takahiro Nemoto | Katsushige Inada | Hiroshi Kojima | Yukiko Cho-Isoda | Ryo Tamura | Gaku Imamura | G. Yoshikawa | Takahiro Nemoto | K. Minami | Hiroshi Kojima | Ryo Tamura | Katsushige Inada | Yukiko Cho-Isoda
[1] P. Vettiger,et al. Piezoresistive membrane-type surface stress sensor arranged in arrays for cancer diagnosis through breath analysis , 2013, 2013 IEEE 26th International Conference on Micro Electro Mechanical Systems (MEMS).
[2] H. Haick,et al. Differentiation between genetic mutations of breast cancer by breath volatolomics , 2015, Oncotarget.
[3] H. Haick,et al. Sensors for breath testing: from nanomaterials to comprehensive disease detection. , 2014, Accounts of chemical research.
[4] Hossam Haick,et al. Measurement of temperature and relative humidity in exhaled breath , 2020 .
[5] G. Hanna,et al. Accuracy and Methodologic Challenges of Volatile Organic Compound–Based Exhaled Breath Tests for Cancer Diagnosis: A Systematic Review and Meta-analysis , 2019, JAMA oncology.
[6] Kosuke Minami,et al. Discrimination of structurally similar odorous molecules with various concentrations by using a nanomechanical sensor , 2018 .
[7] Masakazu Aono,et al. Two Dimensional Array of Piezoresistive Nanomechanical Membrane-Type Surface Stress Sensor(MSS) with Improved Sensitivity , 2012, Sensors.
[8] Royston Goodacre,et al. Exhaled breath analysis: a review of ‘breath-taking’ methods for off-line analysis , 2017, Metabolomics.
[9] H. Haick,et al. Assessment of the exhalation kinetics of volatile cancer biomarkers based on their physicochemical properties , 2014, Journal of breath research.
[10] W. Miekisch,et al. Diagnostic potential of breath analysis--focus on volatile organic compounds. , 2004, Clinica chimica acta; international journal of clinical chemistry.
[11] David Smith,et al. Mass Spectrometric Analysis of Exhaled Breath for the Identification of Volatile Organic Compound Biomarkers in Esophageal and Gastric Adenocarcinoma , 2015, Annals of surgery.
[12] H. Haick,et al. Nanomaterial-based sensors for detection of disease by volatile organic compounds. , 2013, Nanomedicine.
[13] Margaret W Leigh,et al. An official ATS clinical practice guideline: interpretation of exhaled nitric oxide levels (FENO) for clinical applications. , 2011, American journal of respiratory and critical care medicine.
[14] Hossam Haick,et al. Volatile organic compounds of lung cancer and possible biochemical pathways. , 2012, Chemical reviews.
[15] H. Haick,et al. Analysis of exhaled breath for diagnosing head and neck squamous cell carcinoma: a feasibility study , 2014, British Journal of Cancer.
[16] Gaku Imamura,et al. Smell identification of spices using nanomechanical membrane-type surface stress sensors , 2016 .
[17] H. Haick,et al. Diagnosis and Classification of 17 Diseases from 1404 Subjects via Pattern Analysis of Exhaled Molecules , 2016, ACS nano.
[18] R. Dweik,et al. Clinical applications of breath testing , 2010, F1000 medicine reports.
[19] Genki Yoshikawa,et al. Nanomechanical membrane-type surface stress sensor. , 2011, Nano letters.
[20] Gaku Imamura,et al. Functional Nanoparticles-Coated Nanomechanical Sensor Arrays for Machine Learning-Based Quantitative Odor Analysis. , 2018, ACS sensors.
[21] L. Trizio,et al. Exhaled volatile organic compounds identify patients with colorectal cancer , 2013, The British journal of surgery.
[22] Gaku Imamura,et al. Data-driven nanomechanical sensing: specific information extraction from a complex system , 2017, Scientific Reports.
[23] Takashi Washio,et al. Free-hand gas identification based on transfer function ratios without gas flow control , 2018, Scientific Reports.
[24] Hossam Haick,et al. Assessment, origin, and implementation of breath volatile cancer markers. , 2014, Chemical Society reviews.
[25] J. Câmara,et al. Breath Analysis as a Potential and Non-Invasive Frontier in Disease Diagnosis: An Overview , 2015, Metabolites.
[26] Christoph Gerber,et al. Piezoresistive Membrane Surface Stress Sensors for Characterization of Breath Samples of Head and Neck Cancer Patients , 2015, Sensors.
[27] Daniel M. Rotroff,et al. Breath Metabolomics Provides an Accurate and Noninvasive Approach for Screening Cirrhosis, Primary, and Secondary Liver Tumors , 2020, Hepatology communications.