- Nowy
Wybierz Paczkomat Inpost, Orlen Paczkę, DHL, DPD, Pocztę, email (dla ebooków). Kliknij po więcej
Zapłać szybkim przelewem, kartą płatniczą lub za pobraniem. Kliknij po więcej szczegółów
Jeżeli jesteś konsumentem możesz zwrócić towar w ciągu 14 dni*. Kliknij po więcej szczegółów
Opis
Series Editor’s Preface xi
Preface xiii
1 The Role of Gut Peptides in the Regulation of Body Weight 1
Jens J. Holst and Sten Madsbad
Introduction and Methodological Considerations 1
Mimicry 2
Hormone Antagonists 3
Activation and Inactivation 3
Somatostatin as a Tool 4
Gut Hormones with a Possible Role in Food Intake 5
Cholecystokinin 5
GLP-1 7
Role of Endogenous GLP-1 in Food Intake Regulation 8
Mechanism of Action of Exogenous GLP-1 Receptor Agonists 9
Development of GLP-1 Receptor Agonists for Obesity Therapy 9
Oxyntomodulin and Glucagon-GLP-1 Coagonists 10
PYY 11
GIP 13
Ghrelin 16
Conclusion 18
References 19
2 Agonists and Antagonists of the Human GIP Receptor 33
Hüsün S. Kizilkaya, Larke S. Gasbjerg, Jens J. Holst, and Mette M. Rosenkilde
Introduction 33
Objective of the Chapter 34
Background 35
Glucose-Dependent Insulinotropic Polypeptide – Rationale for Initial Therapeutic Interest 35
GIP – Posttranslational Processing, Secretion, and Degradation 36
Glucose-Dependent Insulinotropic Polypeptide Receptor (GIPR) 37
Receptor Activation and Signaling 37
Desensitization, Internalization, and Receptor Trafficking 40
Expression in Humans and Animals 45
Important Species Differences in the GIP System 45
Physiological Actions of GIP 46
GIP’s Effect on the Pancreas of Healthy Individuals 46
GIP’s Effect on the Pancreas of Individuals with Type 2
Diabetes 47
GIP’s Effect on the Pancreas of Individuals with Obesity 48
Extrapancreatic Physiological Effects of GIP 49
Adipose Tissue 49
BodyWeight 50
Energy Expenditure 51
Cardiovascular System 51
Bones 52
Central Nervous System 53
Pharmacological GIPR Agonism 54
Animal Studies 54
Human Studies 55
Pharmacological GIPR Antagonism 60
Animal Studies 60
Human Studies 61
Theories Bridging GIPR Agonism and Antagonism 62
Conclusion 63
References 64
3 Amylin – Biological Aspects 87
Thomas A. Lutz
Introduction 87
Amylin Synthesis and Secretion 87
Different Molecular Forms of Amylin 88
Amylin Signaling at the Amylin Receptor 88
Amylin Receptor Activation and Intracellular Signaling 88
Amylin’s Effect on Energy Homeostasis 89
Amylin Effects on Eating; Induction of Satiation 89
Amylin Effects on Energy Expenditure 90
Sex Differences in Amylin Action 91
Brain Sites of Amylin Action 91
Caudal Hindbrain with the AP and the NTS 91
Projections from the AP – Role of the Lateral Parabrachial Nucleus 92
Single Cell Studies to Define the Phenotype of Caudal Hindbrain Neurons Involved in Amylin Action 93
Other Brain Areas Mediating the Actions of Amylin 94
Direct Amylin Action in the Hypothalamus 94
Central Reward Processing of Amylin in the Ventral Tegmental Area (VTA), the Nucleus Accumbens (NAc), the Dorsal Tegmental Area, and the Medial Prefrontal Cortex 95
Amylin–Leptin Interactions in the Regulation of Energy Homeostasis 96
Amylin–Leptin Interactions in the AP and NTS 97
Amylin–Leptin Interactions in the VMH (ARC+VMN) 98
Amylin–Leptin Interactions in the VTA 98
Other Molecular Forms of Amylin and Their Potential Role in
Physiology and Pathophysiology 99
Amylin Forms 99
Amylin Analogs Mimic Amylin’s Effects on Eating 100
Amyloid Formation in Pancreatic Islets 102
Mechanisms of Amyloid Genesis 102
Pathological Effects of Amylin Deposits on Pancreatic ß-Cells 103
Therapeutic Approach to Reduce Amylin-Derived Fibrillogenic 103
Conclusion 104
Acknowledgments and Disclosures 104
References 105
4 Peptide-Based GLP-1 Receptor Agonists for the Treatment of Type 2
Diabetes and Obesity 121
János T. Kodra, Lars Linderoth, Steffen Reedtz-Runge, Thomas Kruse, and Jacob C. Kofoed
Introduction 121
GLP-1 Biology 122
GLP-1 Receptor Binding and Activation 123
Clinical Relevant Peptide GLP-1 Receptor Agonists 124
Exendin-4-Based Analogs 124
Exenatide 124
Exenatide Long-Acting Release (LAR) 125
Lixisenatide 126
Efpeglenatide 126
Loxenatide 127
Noiiglutide 127
Visepegenatide 128
GLP-1-Based Analogs 128
Liraglutide 128
Semaglutide 129
Taspoglutide 129
Albiglutide and Albenatide 130
Dulaglutide 131
Ecnoglutide 131
Utreglutide 132
HyGlutide 132
ZT002 133
Bofanglutide 133
Summary and Outlook 134
References 134
5 Oral Agents Used to Treat Type 2 Diabetes and Obesity 141
John Liddle, Ekaterina Ratkova, Cátia A. Bonito, Christopher J. Rhodes, and Sarah Will
Introduction 141
Type 2 Diabetes Oral Agents 141
Sulfonylureas 145
Biguanides 146
Alpha-Glucosidase Inhibitors 147
Meglitinides (Glinides) 147
Thiazolidinediones 148
Dipeptidyl Peptidase-4 (DPP4) Inhibitors 150
Bile Acid Sequestrants 150
Dopamine-2 Agonists 152
Sodium-Glucose Transporter-2 (SGLT2) Inhibitors 153
Glimins 154
Other (Non-Approved) Small Molecule T2D Treatments 154
Obesity Oral Agents 154
Nicotine 155
Thyroxine 155
Dinitrophenol 158
Amphetamines 159
Centrally-Acting Combinations 159
Lorcaserin 161
Orlistat 162
Cannabinoid Receptor Antagonists 162
ß3-Adrenoreceptor Agonists 163
Melanocortin 4 Receptor (MC4R) Agonist 163
A Current Perspective for Oral Diabetes and Obesity Small Molecules 164
Small Molecule Glucagon-Like Peptide 1 Receptor (GLP-1R) Agonists 164
Introduction 164
The First Reported Small Molecule GLP-1R Agonists 165
GLP-1R Agonists and Positive Allosteric Modulators 168
Small Molecule GLP-1R Agonists in Clinical Development 173
TTP273 from vTv Therapeutics 173
Danuglipron and Lotiglipron 173
Orforglipron 176
Summary of the GLP-1R Small Molecule Agonist Landscape 179
Outlook for GLP-1R Small Molecule Agonists and
Beyond 180
References 180
6 Trends in the Field of Insulin Drug Design 197
Thomas Hoeg-Jensen
Introduction 197
Native Insulin 198
Meal Insulin Designs and Formulations 199
Once-Daily Basal Insulin Designs 199
Once-Weekly Insulin Designs 201
Tissue Selective and Functionally Selective Insulin 203
Oral and Pulmonary Insulin 204
Glucose-Sensitive Insulin 204
Insulin Pumps and Cell-Based Therapy 206
Conclusions 206
Abbreviations 207
Biography 207
References 207
7 Neuropeptide Y Receptor Ligands and Opportunities Within Diabetes
and Obesity 215
Soren Ostergaard
The Neuropeptide Y (NPY) Peptide and Receptor Family 215
Neuropeptides NPY, PYY, and PP 215
NPY Receptors and Distribution 217
Knockout Studies in Rodents 218
Y1R/Y5R Agonism 219
Y1R/Y5R Antagonists for Diabetes or Obesity Treatment 220
PP and Y4R Interaction 222
PYY and Y2R Interaction 223
Regulator of Food Energy Homeostasis 223
Regulator of Glucose Homeostasis 224
Lessons from Bariatric Surgery Support the Critical Role of PYY 224
SAR and Y2R Selective Agonists 225
Half-Life Extension of PYY Analogs 226
Y2R Agonism and Combinations with Other Peptide Agonists 227
Human Studies and Trials with PYY and Analogs 229
Prospects of Obesity and Diabetes Treatment with PYY 231
References 232
8 PrRP-GPR10 Signaling and Metabolism 243
Claire H. Feetham, Amy A. Worth, Sam Groom, and Simon M. Luckman
Modified PrRP Peptides as a New Pharmacological Tool 243
The Discovery of GPR10 and PrRP 244
Prolactin-Releasing Hormone – A Misnomer? 244
Central Metabolic Effects of PrRP 246
Receptor Coupling and Distribution 246
Prlh and Prlhr Knockout Mouse Models 248
Natural Polymorphisms in the PRLHR Gene 248
Genetic Mutations Affecting NPFF Signaling Related to
Metabolism 249
Brainstem PrRPNTS Neurons 250
Hypothalamic PrRPDMH Neurons 252
Systemically Administered PrRP Analogs 252
Conclusions 253
References 254
9 The Becoming of Dasiglucagon 263
Ditte Riber, Jesper M. Mathiesen, Lise Giehm, Francesca Macchi, Mikael Elander, and Jesper S. Villadsen
The Becoming of Dasiglucagon 263
The Discovery of Glucagon and Its Physiological Effects 263
Medical Use of Glucagon as a Rescue Treatment for Insulin Induced Hypoglycemia in Diabetes Mellitus 264
Rational Design of Dasiglucagon 265
Basis for the Chemical and Physical Instability of Native Glucagon 265
Design Strategy and Assays 267
1st Design: Exploring Substitution of Residues Susceptible for Isomerization, Cleavage, and Oxidation 268
2nd Design: Exploring Substitution of Potential Deamidation Sites and Disruption of an Aggregation Prone Hydrophobic Region 268
3rd Design: Combining the Learnings from Previous SAR Rounds 270
4th Design 272
5th Design 274
Characterization of Dasiglucagon 279
Physical and Chemical Stability of Dasiglucagon 279
Rotation Study – Simulating Real Use by Patients 279
Structural Characterization by Circular Dichroism 280
Pharmacological Effect of Dasiglucagon in Humans 281
Conclusion 282
Amino Acid Abbreviations 283
References 284
Index 287