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Bench to bedside: recent advances in lung cancer pathological research with implications for diagnostic clinical practice
Abstract:After decades of relative stagnation lung cancer is emerging as a disease type where rapid progress is being made in diagnosis and therapy, as well as in our understanding of disease biology. Much of this progress is of immediate impact to diagnosticians, and more is likely to affect diagnostic practice in the near future. In this review we seek to briefly summarize several key areas of active research of immediate or probable imminent value to trainee and consultant pulmonary pathologists alike. We cover some major changes in tumour classification, grading, and patient stratification, as well as considering the state of the art in machine-assisted interpretation of lung cancer histology, and the use of genetically modified lung cancer models.
Keywords:animal models  artificial intelligence  cancer genomics  deep learning  lung cancer  tumour classification  tumour grading  tumour heterogeneity
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