Literature DB >> 6744323

A stochastic numerical model of breast cancer growth that simulates clinical data.

J F Speer, V E Petrosky, M W Retsky, R H Wardwell.   

Abstract

A new stochastic numerical model of breast cancer growth is developed. First, the model suggests that Gompertzian kinetics does apply but that from time to time, in random fashion, there occurs a spontaneous change in the growth rate or rate of decay of growth, such that the overall growth pattern occurs in a stepwise fashion. According to the model, the average time for the tumor burden to increase from one cell to detection is probably in the range of 8 years. Secondly, the model suggests that there is a linear relationship between the number of axillary lymph nodes positive for metastasis at diagnosis and the number of other metastatic sites. This can be described mathematically by the equation S = 0.24 + 0.35N where S is the number of other metastatic sites and N is the number of positive lymph nodes. The model has been verified by simulating three data sets: (a) the survival times of untreated breast cancer patients as described by Bloom et al. [Br. Med. J., 2: 213-221, 1962]; (b) the growth rates of breast cancers immediately prior to diagnosis as described by Heuser and Spratt [Cancer (Phila.), 43: 1888-1894, 1979]; and (c) the disease-free survival time postmastectomy as described by Fisher et al. [Surg. Gynecol. Obstet., 140: 528-534, 1975]. This model could have implications concerning the overall treatment rationale for breast cancer.

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Year:  1984        PMID: 6744323

Source DB:  PubMed          Journal:  Cancer Res        ISSN: 0008-5472            Impact factor:   12.701


  28 in total

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2.  A deterministic approach to survival statistics.

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Review 4.  Systems Biology of Cancer Metastasis.

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5.  Estimating Tumor Growth Rates In Vivo.

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6.  Are breast cancer navigation programs cost-effective? Evidence from the Chicago Cancer Navigation Project.

Authors:  Talar W Markossian; Elizabeth A Calhoun
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8.  Modeling progression in radiation-induced lung adenocarcinomas.

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Journal:  Radiat Environ Biophys       Date:  2010-01-08       Impact factor: 1.925

9.  New concepts in breast cancer emerge from analyzing clinical data using numerical algorithms.

Authors:  Michael Retsky
Journal:  Int J Environ Res Public Health       Date:  2009-01-20       Impact factor: 3.390

10.  A stochastic model for identifying differential gene pair co-expression patterns in prostate cancer progression.

Authors:  Wen Juan Mo; Xu Ping Fu; Xiao Tian Han; Guang Yuan Yang; Ji Gang Zhang; Feng Hua Guo; Yan Huang; Yu Min Mao; Yao Li; Yi Xie
Journal:  BMC Genomics       Date:  2009-07-29       Impact factor: 3.969

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