IP Library Granted Patent US 8,655,598
Granted Patent B2
US 8,655,598 · App. 13/037,156 · Granted Feb 18, 2014

Predictive radiosensitivity network model

Inventors: Javier F. Torres-Roca (St. Petersburg, FL); Steven Eschrich (Lakeland, FL)
Assignees: University of South Florida; H. Lee Moffitt Cancer Center and Research Institute, Inc.
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Quick Facts
Patent No.
US 8,655,598
App. No.
13/037,156
Granted
Feb 18, 2014
Kind
B2
Abstract

This invention is a model that simulates the complexity of biological signaling in a cell in response to radiation therapy. Using gene expression profiles and radiation survival assays in an algorithm, a systems model was generated of the radiosensitivity network. The network consists of ten highly interconnected genetic hubs with significant signal redundancy. The model was validated with in vitro tests perturbing network components, correctly predicting radiation sensitivity ⅔ times. The model's clinical relevance was shown by linking clinical radiosensitivity targets to the model network. Clinical applications were confirmed by testing model predictions against clinical response to preoperative radiochemotherapy in patients with rectal or esophageal cancer.

Claims (26)

1. A method of predicting a clinical response to anticancer radiation therapy in a patient with rectal cancer, the method comprising:

obtaining a sample of target cells from the patient;

determining genomic expression levels of c-jun, HDAC-1, RelA, PKC, SUMO-1, c-Abl, STAT-1, AR, PAK2, and IRF1 in the sample; and

applying the genomic expression levels of c-jun, HDAC-1, RelA, PKC, SUMO-1, c-Abl, STAT-1, AR, PAK2, and IRF1 in the sample to a multivariate linear regression model of treatment sensitivity, whereby a high expression value correlates with a treatment-sensitive phenotype thereby predicting the clinical response to anticancer radiation therapy.

2. The method of claim 1 , wherein the sample of target cells comprises rectal cancer cells.

3. The method of claim 1 , wherein the multivariate linear regression model is created comprising the steps of:

developing a multivariate linear regression model of radiosensitivity and gene expression comprising:

establishing the radiation sensitivity of at least one cell line; and

determining genomic expression levels of c-jun, HDAC-1, RelA, PKC, SUMO-1, c-Abl, STAT-1, AR, PAK2, and IRF1 in the at least one cell line; and

incorporating biological interactions of common radiation response elements with the radiosensitivity network components.

4. The method of claim 3 , wherein genomic expression levels in the at least one cell line are determined from a microarray.

5. The method of claim 3 , wherein the common radiation response elements are selected from the group consisting of: tissue origin, ras mutation status, p53 status, tissue origin interaction with gene expression, ras mutation status interaction with gene expression, and p53 status interaction with gene expression.

6. The method of claim 1 , wherein the model is a rank-based linear regression model.

7. A method of predicting a clinical response to anticancer radiation therapy in a patient with esophageal cancer, the method comprising:

obtaining a sample of target cells from the patient;

determining genomic expression levels of c-jun, HDAC-1, RelA, PKC, SUMO-1, c-Abl, STAT-1, AR, PAK2, and IRF1 in the sample; and

applying the genomic expression levels of c-jun, HDAC-1, RelA, PKC, SUMO-1, c-Abl, STAT-1, AR, PAK2, and IRF1 in the sample to a multivariate linear regression model of treatment sensitivity, whereby a high expression value correlates with a treatment-sensitive phenotype thereby predicting the clinical response to anticancer radiation therapy.

8. The method of claim 7 , wherein the sample of target cells comprises esophageal cancer cells.

9. The method of claim 7 , wherein the multivariate linear regression model is created comprising the steps of:

developing a multivariate linear regression model of radiosensitivity and gene expression comprising:

establishing the radiation sensitivity of at least one cell line; and

determining genomic expression levels of c-jun, HDAC-1, RelA, PKC, SUMO-1, c-Abl, STAT-1, AR, PAK2, and IRF1 in the at least one cell line; and

incorporating biological interactions of common radiation response elements with the radiosensitivity network components.

10. The method of claim 9 , wherein genomic expression levels in the at least one cell line are determined from a microarray.

11. The method of claim 9 , wherein the common radiation response elements are selected from the group consisting of: tissue origin, ras mutation status, p53 status, tissue origin interaction with gene expression, ras mutation status interaction with gene expression, and p53 status interaction with gene expression.

12. The method of claim 7 , wherein the model is a rank-based linear regression model.

Assignments (3)
CONFIRMATORY LICENSE Recorded Mar 18, 2011
From: H. LEE MOFFITT CANCER CTR & RESEARCH INS
To: NATIONAL INSTITUTES OF HEALTH (NIH), U.S. DEPT. OF HEALTH AND HUMAN SERVICES (DHHS), U.S. GOVERNMENT
Reel/Frame 025980/0147 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 16, 2011
From: ESCHRICH, STEVEN
To: UNIVERSITY OF SOUTH FLORIDA; H. LEE MOFFITT CANCER CENTER AND RESEARCH INSTITUTE, INC.
Reel/Frame 025965/0288 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 16, 2011
From: TORRES-ROCA, JAVIER F.
To: UNIVERSITY OF SOUTH FLORIDA
Reel/Frame 025965/0305 →
Continuity (4)
Continuation 12053796 · Mar 24, 2008
Provisional Application 60896350 · Mar 22, 2007
Provisional Application 60896550 · Mar 23, 2007
Related Publication 20120041908A1 · Feb 16, 2012