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1.
BMC Bioinformatics ; 20(1): 733, 2019 Dec 27.
Artigo em Inglês | MEDLINE | ID: mdl-31881821

RESUMO

BACKGROUND: The protein ki67 (pki67) is a marker of tumor aggressiveness, and its expression has been proven to be useful in the prognostic and predictive evaluation of several types of tumors. To numerically quantify the pki67 presence in cancerous tissue areas, pathologists generally analyze histochemical images to count the number of tumor nuclei marked for pki67. This allows estimating the ki67-index, that is the percentage of tumor nuclei positive for pki67 over all the tumor nuclei. Given the high image resolution and dimensions, its estimation by expert clinicians is particularly laborious and time consuming. Though automatic cell counting techniques have been presented so far, the problem is still open. RESULTS: In this paper we present a novel automatic approach for the estimations of the ki67-index. The method starts by exploiting the STRESS algorithm to produce a color enhanced image where all pixels belonging to nuclei are easily identified by thresholding, and then separated into positive (i.e. pixels belonging to nuclei marked for pki67) and negative by a binary classification tree. Next, positive and negative nuclei pixels are processed separately by two multiscale procedures identifying isolated nuclei and separating adjoining nuclei. The multiscale procedures exploit two Bayesian classification trees to recognize positive and negative nuclei-shaped regions. CONCLUSIONS: The evaluation of the computed results, both through experts' visual assessments and through the comparison of the computed indexes with those of experts, proved that the prototype is promising, so that experts believe in its potential as a tool to be exploited in the clinical practice as a valid aid for clinicians estimating the ki67-index. The MATLAB source code is open source for research purposes.


Assuntos
Processamento de Imagem Assistida por Computador/métodos , Antígeno Ki-67/análise , Neoplasias/química , Algoritmos , Animais , Teorema de Bayes , Núcleo Celular/química , Humanos , Camundongos , Software
2.
Tumori ; 2016(3): 270-5, 2016 Jun 02.
Artigo em Inglês | MEDLINE | ID: mdl-27032701

RESUMO

INTRODUCTION: Adolescents with cancer often experience a longer diagnostic delay than children, mainly because they take longer to go to a doctor. The Italian Society for Adolescents with Oncohematological Diseases (SIAMO) has launched an information campaign focusing on raising adolescents' awareness of the importance of diagnosing cancer early. METHODS: The concepts of the campaign were developed by a scientific committee of clinicians, cancer patients and their parents, and marketing experts. The title of the campaign is "There's no reason why". A video has been launched on TV channels and the Internet, and the final frame refers viewers to the SIAMO website, which provides advice to help adolescents interpret any symptoms they experience. RESULTS: The video has had 12,181 views. In the 6 months following the launch of the campaign, the SIAMO website page dedicated to the campaign was opened by 9,767 viewers for a total of 13,632 views. CONCLUSIONS: Though it remains very difficult to judge the efficacy of this initiative, the value of a campaign focusing on improving the adolescent population's cancer awareness is supported by the large number of studies published on the diagnostic delay in this age group. Our campaign goes to show the importance of ensuring cooperation between the different stakeholders involved in the global care of adolescents with cancer.


Assuntos
Diagnóstico Tardio/prevenção & controle , Detecção Precoce de Câncer , Conhecimentos, Atitudes e Prática em Saúde , Promoção da Saúde/métodos , Internet , Neoplasias/diagnóstico , Adolescente , Fatores Etários , Conscientização , Detecção Precoce de Câncer/psicologia , Detecção Precoce de Câncer/tendências , Feminino , Humanos , Itália , Idioma , Masculino , Neoplasias/psicologia , Gravação de Videoteipe
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