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A nomogram for predicting pathological complete response in patients with human epidermal growth factor receptor 2 negative breast cancer.

Authors :
Xi Jin
Yi-Zhou Jiang
Sheng Chen
Ke-Da Yu
Ding Ma
Wei Sun
Zhi-Min Shao
Gen-Hong Di
Jin, Xi
Jiang, Yi-Zhou
Chen, Sheng
Yu, Ke-Da
Ma, Ding
Sun, Wei
Shao, Zhi-Min
Di, Gen-Hong
Source :
BMC Cancer. 8/5/2016, Vol. 16, p1-9. 9p. 1 Diagram, 3 Charts, 3 Graphs.
Publication Year :
2016

Abstract

<bold>Background: </bold>The response to neoadjuvant chemotherapy has been proven to predict long-term clinical benefits for patients. Our research is to construct a nomogram to predict pathological complete response of human epidermal growth factor receptor 2 negative breast cancer patients.<bold>Methods: </bold>We enrolled 815 patients who received neoadjuvant chemotherapy from 2003 to 2015 and divided them into a training set and a validation set. Univariate logistic regression was performed to screen for predictors and construct the nomogram; multivariate logistic regression was performed to identify independent predictors.<bold>Results: </bold>After performing the univariate logistic regression analysis in the training set, tumor size, hormone receptor status, regimens of neoadjuvant chemotherapy and cycles of neoadjuvant chemotherapy were the final predictors for the construction of the nomogram. The multivariate logistic regression analysis demonstrated that T4 status, hormone receptor status and receiving regimen of paclitaxel and carboplatin were independent predictors of pathological complete response. The area under the receiver operating characteristic curve of the training set and the validation set was 0.779 and 0.701, respectively.<bold>Conclusions: </bold>We constructed and validated a nomogram to predict pathological complete response in human epidermal growth factor receptor 2 negative breast cancer patients. We also identified tumor size, hormone receptor status and paclitaxel and carboplatin regimen as independent predictors of pathological complete response. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
14712407
Volume :
16
Database :
Academic Search Index
Journal :
BMC Cancer
Publication Type :
Academic Journal
Accession number :
117328506
Full Text :
https://doi.org/10.1186/s12885-016-2652-z