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Breast Cancer Res Treat ; 153(2): 455-64, 2015 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-26290416

RESUMO

Stemming from breast density notification legislation in Massachusetts effective 2015, we sought to develop a collaborative evidence-based approach to density notification that could be used by practitioners across the state. Our goal was to develop an evidence-based consensus management algorithm to help patients and health care providers follow best practices to implement a coordinated, evidence-based, cost-effective, sustainable practice and to standardize care in recommendations for supplemental screening. We formed the Massachusetts Breast Risk Education and Assessment Task Force (MA-BREAST) a multi-institutional, multi-disciplinary panel of expert radiologists, surgeons, primary care physicians, and oncologists to develop a collaborative approach to density notification legislation. Using evidence-based data from the Institute for Clinical and Economic Review, the Cochrane review, National Comprehensive Cancer Network guidelines, American Cancer Society recommendations, and American College of Radiology appropriateness criteria, the group collaboratively developed an evidence-based best-practices algorithm. The expert consensus algorithm uses breast density as one element in the risk stratification to determine the need for supplemental screening. Women with dense breasts and otherwise low risk (<15% lifetime risk), do not routinely require supplemental screening per the expert consensus. Women of high risk (>20% lifetime) should consider supplemental screening MRI in addition to routine mammography regardless of breast density. We report the development of the multi-disciplinary collaborative approach to density notification. We propose a risk stratification algorithm to assess personal level of risk to determine the need for supplemental screening for an individual woman.


Assuntos
Neoplasias da Mama/diagnóstico , Detecção Precoce de Câncer , Medicina Baseada em Evidências/legislação & jurisprudência , Glândulas Mamárias Humanas/anormalidades , Algoritmos , Densidade da Mama , Gerenciamento Clínico , Detecção Precoce de Câncer/métodos , Detecção Precoce de Câncer/normas , Medicina Baseada em Evidências/normas , Feminino , Humanos , Imageamento por Ressonância Magnética , Mamografia , Massachusetts , Medição de Risco , Ultrassonografia Mamária
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