IP Library Granted Patent US 8,639,639
Granted Patent B2
US 8,639,639 · App. 12/624,374 · Granted Jan 28, 2014

Predicting possible outcomes in multi-factored diseases

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Quick Facts
Patent No.
US 8,639,639
App. No.
12/624,374
Granted
Jan 28, 2014
Kind
B2
Abstract

This disclosure relates, in general, to methods, systems, apparatus, computer programs and computing devices related to predicting possible outcomes in a multi-factored disease, disorder or condition.

Claims (62)

1. A computer based method of predicting a prognosis of a patient having a multi-factored disease, disorder or condition, the method comprising:

receiving an-input representative of one or more diagnostic factors of the multi-factored disease, disorder or condition;

constructing a classification tree of two or more diagnostic factors of the multi-factored disease, disorder or condition to detect an interaction between the two or more diagnostic factors;

performing a discriminant analysis, based at least in part on the classification tree, of the two or more diagnostic factors;

calculating a score using an equation based at least in part on the discriminant analysis; and

predicting the prognosis of the patient based on the score, the input and the discriminant analysis of the two or more diagnostic factors.

2. The computer based method of claim 1 , wherein receiving an input comprises:

receiving the input, the input representative of one or more diagnostic factors selected from physical attributes, genetic characteristics, demographic factors, environmental factors, physiological data, and symptoms.

3. The computer based method of claim 2 , wherein at least one of the one or more diagnostic factors is a physical attribute selected from characteristics associated with disease state, body type, vision, strength, coordination, fertility, weight, skin, skeleto-muscular, longevity, and hair.

4. The computer based method of claim 2 , wherein at least one of the one or more diagnostic factors is a genetic characteristic selected from gene sequences, mutations, abnormalities, inversions, insertions, deletions, substitutions, duplications, single nucleotide polymorphisms, haplotypes, centromeres, telomeres, methylation patterns, introns, and exons.

5. The computer based method of claim 2 , wherein at least one of the one or more diagnostic factors is a demographic factor selected from race, ethnicity, age, sex, education level, income level, marital status, employment status, occupation, religion, location, family size, and exposure profile to environmental factors.

6. The computer based method of claim 2 , wherein at least one of the one or more diagnostic factors is an environmental factor selected from stress, physical abuse, mental abuse, diet, maternal diet, infection, and exposure to carcinogens, toxins, pathogens, teratogens, radiation, or chemicals.

7. The computer based method of claim 2 , wherein at least one of the one or more diagnostic factors is physiological data selected from heart rate, blood pressure, blood oxygen saturation, cardiac output, vascular activity, temperature, respiration, cardiac, abdominal, or breathing sounds, blood flow, hormonal concentration, enzyme and protein level, neural activity, electroencephalographic activity, and data associated with other electrical, mechanic, sonic, biochemical, or biophysical processes.

8. The computer based method of claim 2 , wherein at least one of the one or more diagnostic factors is a symptom.

9. The computer based method of claim 1 , wherein the multi-factored disease, disorder or condition is selected from cancers, autoimmune diseases, cardiovascular diseases, infectious diseases, endocrinological disorders, developmental abnormalities, mental disorders, neurological disorders, inflammatory disorders, and obesity and eating disorders.

10. The computer based method of claim 1 , wherein the multi-factored disease, disorder or condition is selected from leukemia; cancers of the bladder, brain, breast, colon, esophagus, kidney, liver, lung, mouth, ovary, pancreas, prostate, skin, stomach and uterus; rheumatoid arthritis; multiple sclerosis; epilepsy; diabetes; osteoporosis; bipolar disorder; schizophrenia; atopy; inflammatory bowel disease; asthma; systemic lupus erythematosus; Grave's disease; angina pectoris; myocardial infarcation; heart disease; cardiomyopathies; dsyrthythmias; AIDS; Lyme disease; bacterial meningitis; bacteremia and sepsis; sexually transmitted diseases; osteomyelitis; brain injuries, Parkinson's disease; Alzheimer's disease; congenital heart defects; neural tube defects; obesity and eating disorders.

11. The computer based method of claim 9 , wherein the multi-factored disease, disorder or condition is a cancer.

12. The computer based method of claim 1 , wherein calculating the score comprises a determination of a value of Y as:

Y (Score)=−58.948+2.139 drugs+3.877*Karyotyping−4.504*FLT/ITD−1.303*FLT3+5.185*DPD+1.495*MTHFR Exon 7+2.216*MTHFR Exon 4+6.365*GST T1+7.412*GST M1+59.224*FAB+7.656*gender−29.075*DNA length+1.24 *age;

wherein,

drugs group=1, 2, 3, or 4;

Karyotyping group=1 or 0;

FLT/ITD group=1 or 0;

FLT3 group=1 or 0;

DPD group=1 or 0;

MTHFR Exon 7 is AA-Normal=0, CC-mutated=1, AC-mutated=2;

MTHFR Exon 4 is CC-Normal=0, TT-mutated=1, CT-mutated=2;

GST T1 is present=1, GST T1 not present=0;

GST M1 is present=1, GST M1 not present=0;

FAB group=1, 2, or 3;

male gender=1, female gender=0;

DNA length is in μm; and

age is in years.

13. The computer based method of claim 1 , wherein predicting the prognosis of the patient further comprises comparing the score to a predetermined range of scores.

14. A computer program product for predicting a prognosis of a patient having a multi-factored disease, disorder or condition, the product comprising:

a nontransitory computer-readable storage medium bearing:

one or more instructions for receiving an input representative of one or more diagnostic factors of the multi-factored disease, disorder or condition;

one or more instructions for constructing a classification tree of two or more diagnostic factors of the multi-factored disease, disorder or condition to detect an interaction between the two or more diagnostic factors;

one or more instructions for performing a discriminant analysis, based at least in part on the classification tree, of the two or more diagnostic factors;

one or more instructions for calculating a score using an equation based at least in part on the discriminant analysis; and

one or more instructions for predicting the prognosis of the patient based on, the score, the input and the discriminant analysis of the two or more diagnostic factors.

15. The computer program of claim 14 , wherein the one or more instructions for constructing a classification tree of two or more diagnostic factors of the multi-factored disease, disorder or condition comprise:

one or more instructions for constructing the classification tree using Chi Square Automatic Interaction Detection (CHAID).

16. The computer program of claim 14 , further comprising:

one or more instructions for generating a graphical illustration of at least one of (a) the classification tree of two or more diagnostic factors of the multi-factored disease, disorder or condition, and (b) the discriminant analysis of the two or more diagnostic factors.

17. The computer program of claim 16 , wherein the one or more instructions for generating a graphical illustration of at least one of (a) the classification tree of two or more diagnostic factors of the multi-factored disease, disorder or condition, and (b) the discriminant analysis of the two or more diagnostic factors comprises:

one or more instructions for performing an analysis of at least one of the classification tree and the discriminant analysis; and

one or more instructions for generating the graphical illustration based on the analysis.

18. The computer program of claim 14 , further comprising:

one or more instructions for generating a graphical illustration of the possible outcome.

19. The computer program of claim 18 , wherein the one or more instructions for generating a graphical illustration of the possible outcome comprises:

one or more instructions for performing an analysis of the input and at least one of (a) the classification tree of two or more diagnostic factors of the multifactored disease, disorder or condition, and (b) the discriminant analysis of the two or more diagnostic factors; and

one or more instructions for generating the graphical illustration based on the analysis.

20. A computer based system for predicting a prognosis of a patient having a multi-factored disease, disorder or condition, the system comprising:

a computing device configured to:

receive an input representative of one or more diagnostic factors of the multi-factored disease, disorder or condition;

construct a classification tree of two or more diagnostic factors of the multi-factored disease, disorder or condition to detect an interaction between two or more diagnostic factors;

perform a discriminant analysis, based at least in part on the classification tree, of the two or more diagnostic factors;

calculate a score using an equation based at least in part on the discriminant analysis; and

predict the prognosis of the patient based on, the score, the input and the discriminant analysis of the two or more diagnostic factors.

21. The computer based system of claim 20 , wherein the computing device is further configured to construct the classification tree using Chi Square Automatic Interaction Detection (CHAID).

22. The computer based system of claim 20 , wherein the computing device is further configured to determine a graphical illustration of at least one of (a) the classification tree of two or more diagnostic factors of the multi-factored disease, disorder or condition, and (b) the discriminant analysis of the two or more diagnostic factors.

Assignments (3)
RELEASE OF SECURITY INTEREST Recorded Jul 31, 2019
From: CRESTLINE DIRECT FINANCE, L.P.
To: EMPIRE TECHNOLOGY DEVELOPMENT LLC
Reel/Frame 049924/0794 →
SECURITY INTEREST Recorded Jan 29, 2019
From: EMPIRE TECHNOLOGY DEVELOPMENT LLC
To: CRESTLINE DIRECT FINANCE, L.P.
Reel/Frame 048373/0217 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 23, 2009
From: JAMIL, KAISER; REDDY, HARANATHA P.; NAIRY, SUBRAHMANYA K.
To: BHAGWAN MAHAVIR MEDICAL RESEARCH CENTRE
Reel/Frame 023560/0556 →