Breathogenomics: A Computational Architecture for Screening, Early Diagnosis and Genotyping of Lung Cancer

被引:2
作者
Adetiba, Emmanuel [1 ,3 ]
Adebiyi, Marion O. [2 ,3 ]
Thakur, Surendra [4 ]
机构
[1] Covenant Univ, Coll Engn, Dept Elect & Informat Engn, Ota, Ogun State, Nigeria
[2] Covenant Univ, Coll Sci & Technol, Dept Comp & Informat Sci, Ota, Ogun State, Nigeria
[3] Covenant Univ Bioinformat Res CUBRe, Ota, Nigeria
[4] Durban Univ Technol, KZN E Skills CoLab, Durban, South Africa
来源
BIOINFORMATICS AND BIOMEDICAL ENGINEERING, IWBBIO 2017, PT II | 2017年 / 10209卷
关键词
Breathogenomics; Biomarkers; Early diagnosis; Genotyping; Genome; Lung cancer; Screening; VOC; BREATH; SENSORS;
D O I
10.1007/978-3-319-56154-7_5
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The genome sequences of some genes have been implicated to carry various mutations that lead to the initiation and advancement of lung cancer. In addition, it has been scientifically established that anytime we breathe out, chemicals called Volatile Organic Compounds (VOCs) are released from the breath. Hundreds of such VOCs have been uniquely identified from samples of breathe collected from lung cancer patients, which make them viable as chemical biomarkers for lung cancer. Based on the foregoing scientific breakthroughs, we developed breathogenomics, a computational architecture for screening, early diagnosis and genotyping of lung cancer victims anchored on the analysis of exhaled breath and mutational profiles of genomic biomarkers. The architecture contains two important sub-modules. At the first sub-module, the exhaled breadths of smokers or persons that are at risk of lung cancer are collected and appropriate computational algorithms are employed to determine the presence of any of the VOC biomarkers. Next, a patient with any VOC biomarker in the exhaled breath proceeds to the second sub-module, which contains appropriate computational models for the detection of mutated genes. Once mutations are detected in any of the biomarker genes found in a given patient, such patient is recommended for targeted therapy to promptly curtail the progression of the mutations to advanced stages. The breathogenomics architecture serves as a generic template for the development of clinical equipment for breath and genomic based screening, early diagnosis and genotyping of lung cancer. In this paper, we report the preliminary result obtained from the prototype that we are currently developing based on the architecture. Constructing a lung cancer early diagnosis/ screening system based on the prototype when fully developed will hopefully minimize the current spate of deaths as a result of late diagnosis of the disease.
引用
收藏
页码:41 / 49
页数:9
相关论文
共 21 条
[1]   Improved Classification of Lung Cancer Using Radial Basis Function Neural Network with Affine Transforms of Voss Representation [J].
Adetiba, Emmanuel ;
Olugbara, Oludayo O. .
PLOS ONE, 2015, 10 (12)
[2]  
Adetiba Emmanuel, 2015, ScientificWorldJournal, V2015, P786013, DOI 10.1155/2015/786013
[3]   Breath sensors for lung cancer diagnosis [J].
Adiguzel, Yekbun ;
Kulah, Haluk .
BIOSENSORS & BIOELECTRONICS, 2015, 65 :121-138
[4]   What is the Optimum Screening Strategy for the Early Detection of Lung Cancer [J].
Baldwin, D. R. ;
Callister, M. E. J. .
CLINICAL ONCOLOGY, 2016, 28 (11) :672-681
[5]  
Chen X, 2005, P ANN INT IEEE EMBS, P5873
[6]   Identification of candidate genes for lung cancer somatic mutation test kits [J].
Chen, Yong ;
Shi, Jian-Xin ;
Pan, Xu-Feng ;
Feng, Jian ;
Zhao, Heng .
GENETICS AND MOLECULAR BIOLOGY, 2013, 36 (03) :455-464
[7]   Smoking and lung cancer: recent evidence and a discussion of some questions [J].
Cornfield, Jerome ;
Haenszel, William ;
Hammond, E. Cuyler ;
Lilienfeld, Abraham M. ;
Shimkin, Michael B. ;
Wynder, Ernst L. .
INTERNATIONAL JOURNAL OF EPIDEMIOLOGY, 2009, 38 (05) :1175-1191
[8]   An electronic nose in the discrimination of patients with non-small cell lung cancer and COPD [J].
Dragonieri, Silvano ;
Annema, Jouke T. ;
Schot, Robert ;
van der Schee, Marc P. C. ;
Spanevello, Antonio ;
Carratu, Pierluigi ;
Resta, Onofrio ;
Rabe, Klaus F. ;
Sterk, Peter J. .
LUNG CANCER, 2009, 64 (02) :166-170
[9]   COSMIC: mining complete cancer genomes in the Catalogue of Somatic Mutations in Cancer [J].
Forbes, Simon A. ;
Bindal, Nidhi ;
Bamford, Sally ;
Cole, Charlotte ;
Kok, Chai Yin ;
Beare, David ;
Jia, Mingming ;
Shepherd, Rebecca ;
Leung, Kenric ;
Menzies, Andrew ;
Teague, Jon W. ;
Campbell, Peter J. ;
Stratton, Michael R. ;
Futreal, P. Andrew .
NUCLEIC ACIDS RESEARCH, 2011, 39 :D945-D950
[10]   Initial sequencing and analysis of the human genome [J].
Lander, ES ;
Int Human Genome Sequencing Consortium ;
Linton, LM ;
Birren, B ;
Nusbaum, C ;
Zody, MC ;
Baldwin, J ;
Devon, K ;
Dewar, K ;
Doyle, M ;
FitzHugh, W ;
Funke, R ;
Gage, D ;
Harris, K ;
Heaford, A ;
Howland, J ;
Kann, L ;
Lehoczky, J ;
LeVine, R ;
McEwan, P ;
McKernan, K ;
Meldrim, J ;
Mesirov, JP ;
Miranda, C ;
Morris, W ;
Naylor, J ;
Raymond, C ;
Rosetti, M ;
Santos, R ;
Sheridan, A ;
Sougnez, C ;
Stange-Thomann, N ;
Stojanovic, N ;
Subramanian, A ;
Wyman, D ;
Rogers, J ;
Sulston, J ;
Ainscough, R ;
Beck, S ;
Bentley, D ;
Burton, J ;
Clee, C ;
Carter, N ;
Coulson, A ;
Deadman, R ;
Deloukas, P ;
Dunham, A ;
Dunham, I ;
Durbin, R ;
French, L .
NATURE, 2001, 409 (6822) :860-921