Fractal Analysis of the Binding and Dissociation Kinetics for Different Analytes on Biosensor Surfaces -  Ajit Sadana,  Neeti Sadana

Fractal Analysis of the Binding and Dissociation Kinetics for Different Analytes on Biosensor Surfaces (eBook)

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2007 | 1. Auflage
372 Seiten
Elsevier Science (Verlag)
978-0-08-055501-0 (ISBN)
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180,16 inkl. MwSt
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Biosensors are finding increasing applications in different areas. Over the last few years the areas where biosensors may be used effectively has increased dramatically. This book like the previous four books on analyte-receptor binding and dissociation kinetics by this author addresses the often neglected area. The kinetics of binding and dissociation in solution to appropriate receptors immobilized on biosensor surfaces occurs under diffusional limitations on structured surfaces. The receptors immobilized on the biosensor surface contribute to the degree of heterogeneity on the sensor chip surface.
The fractal analysis examples presented throughout the book provide a convenient means to make quantitative the degree of heterogeneity present on the sensor surface, and relates it to the binding and dissociation rate coefficients. The fractal dimension is a quantitative measure of the degree of heterogeneity present on the biosensor surface. The book emphasizes medially-oriented examples. The detection of disease-related analytes is also emphasized. The intent being that if intractable and insidious diseases are detected earlier, they will be controlled better, eventually leading to a better prognosis. Chapter 3 is a new chapter that emphasizes enhancing the relevant biosensor performance parameters such as sensitivity, stability, selectivity, response time, etc.
As usual, as done in previous books by this author, the last chapter provides an update of the economics involved in biosensors, and the difficulties encounters in starting-up a biosensor company.
- Modelling of binding and dissociation kinetics of analyte-receptor reactions on biosensor surfaces: provides physical insights into these reactions occurring on biosensor surfaces. Very few researchers even attempt to analyze the kinetics of these types of reactions.
- Fractal analysis used to model the binding and dissociation kinetics: original and unique approach.
- Economic analysis provided in the last chapter: helps balance the book; besides providing much-needed information not available in the open literature.
- Emphasis on improving biosensor performance parameters: helps make biosensors better.
- Empahsis on medically-related analytes: helps in prognosis of diseases.
Biosensors are finding increasing applications in different areas. Over the last few years the areas where biosensors may be used effectively has increased dramatically. This book like the previous four books on analyte-receptor binding and dissociation kinetics by this author addresses the often neglected area. The kinetics of binding and dissociation in solution to appropriate receptors immobilized on biosensor surfaces occurs under diffusional limitations on structured surfaces. The receptors immobilized on the biosensor surface contribute to the degree of heterogeneity on the sensor chip surface.The fractal analysis examples presented throughout the book provide a convenient means to make quantitative the degree of heterogeneity present on the sensor surface, and relates it to the binding and dissociation rate coefficients. The fractal dimension is a quantitative measure of the degree of heterogeneity present on the biosensor surface. The book emphasizes medially-oriented examples. The detection of disease-related analytes is also emphasized. The intent being that if intractable and insidious diseases are detected earlier, they will be controlled better, eventually leading to a better prognosis. Chapter 3 is a new chapter that emphasizes enhancing the relevant biosensor performance parameters such as sensitivity, stability, selectivity, response time, etc.As usual, as done in previous books by this author, the last chapter provides an update of the economics involved in biosensors, and the difficulties encounters in starting-up a biosensor company.- Modelling of binding and dissociation kinetics of analyte-receptor reactions on biosensor surfaces: provides physical insights into these reactions occurring on biosensor surfaces. Very few researchers even attempt to analyze the kinetics of these types of reactions.- Fractal analysis used to model the binding and dissociation kinetics: original and unique approach.- Economic analysis provided in the last chapter: helps balance the book; besides providing much-needed information not available in the open literature.- Emphasis on improving biosensor performance parameters: helps make biosensors better.- Empahsis on medically-related analytes: helps in prognosis of diseases.

Cover 1
Contents 6
Preface 10
Chapter 1. Introduction 12
Cost and Implications of Medical Care of Some Common Diseases 12
Chapter 2. Modeling and Theory 16
2.1 Introduction 16
2.2 Theory 19
Chapter 3. Biosensor Performance Parameters and their Enhancement 30
3.1 Introduction 30
3.2 Theory 32
3.3 Results 34
3.4 Conclusions 62
Chapter 4. Fractal Analysis of Harmful Bacteria, Toxins, and Pathogen Detection on Biosensor Surfaces 66
4.1 Introduction 66
4.2 Theory 67
4.3 Results 69
4.4 Conclusions 97
Chapter 5. Fractal Binding and Dissociation Kinetics of Disease-Related Compounds on Biosensor Surfaces 100
5.1 Introduction 100
5.2 Theory 101
5.3 Results 103
5.4 Conclusions 129
Chapter 6. Fractal Analysis of Binding and Dissociation of Analytes that Help Control Diseases on Biosensor Surfaces 134
6.1 Introduction 134
6.2 Theory 135
6.3 Results 137
6.4 Conclusions 158
Chapter 7. Fractal Analysis of Binding and Dissociation of Small Molecules Involved in Drug Discovery on Biosensor Surfaces 162
7.1 Introduction 162
7.2 Theory 163
7.3 Results 165
7.4 Conclusions 192
Chapter 8. Fractal Binding and Dissociation Kinetics of Prion-Related Interactions on Biosensor Surfaces 196
8.1 Introduction 196
8.2 Theory 197
8.3 Results 198
8.4 Conclusions 207
Chapter 9. Fractal Analysis of Binding and Dissociation of DNA–Analyte Interactions on Biosensor Surfaces 210
9.1 Introduction 210
9.2 Theory 211
9.3 Results 213
9.4 Conclusions 236
Chapter 10. Fractal Analysis of Binding and Dissociation of Protein–Analyte Interactions on Biosensor Surfaces 240
10.1 Introduction 240
10.2 Theory 241
10.3 Results 243
10.4 Conclusions 266
Chapter 11. Fractal Analysis of Different Compounds Binding and Dissociation Kinetics on Biosensor Surfaces 270
11.1 Introduction 270
11.2 Theory 271
11.3 Results 273
11.4 Conclusions 303
Chapter 12. Fractal Analysis of Binding and Dissociation Kinetics of Environmental Contaminants and Explosives on Biosensor Surfaces 308
12.1 Introduction 308
12.2 Theory 309
12.3 Results 310
12.4 Conclusions 323
Chapter 13. Market Size and Economics for Biosensors 328
13.1 Introduction 328
13.2 Collaboration Between Companies, Universities, and State and Governmental Agencies: Trends in Collaboration 331
13.3 Factors that Could help Increase/Decrease Biosensor Markets 333
13.4 Examples of Biosensor Companies, their Product, and their Financial Backers 335
13.5 Conclusions 342
Index 346

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