Constitutive, but Not Challenge-Induced, Interleukin-10 Production Is Robust in Acute Pre-Pubescent Protein and Energy Deficits: New Support for the Tolerance Hypothesis of Malnutrition-Associated Immune Depression Based on Cytokine Production in vivo
Abstract
:1. Introduction
2. Materials and Methods
2.1. Animals and Housing Facilities
2.2. Diets
2.3. Experimental Design
2.4. In vivo Stimulation of IL-10 and Assessment of Cytokine Production by in vivo Capture Assay
2.5. Blood Sampling Procedure for the in vivo Capture Assay
2.6. Procedure to Obtain Mononuclear Cell Suspensions for in vitro Stimulation
2.7. In vitro Stimulation of Mononuclear Cells with LPS to Elicit IL-10 Production
2.8. In vitro Stimulation of T Cells with Anti-CD3 to Elicit IL-10 Production
2.9. Assay of IL-10 Concentrations Generated in vitro
2.10. Assessment of Percentage CD3+ Cells in Mononuclear Cell Suspensions from Spleen and Lymph Nodes
2.11. Assessment of Carcass Composition
2.12. Statistical Analyses
3. Results
3.1. Distinct Weight Loss Pathologies Were Elicited by the Malnutrition Protocols
3.2. IL-10 Production in vivo and in vitro in Response to Either LPS or Anti-CD3
3.2.1. IL-10 capture in vivo following stimulation with LPS
3.2.2. IL-10 capture in vivo following stimulation with anti-CD3
3.2.3. IL-10 production by mononuclear cells stimulated in vitro with LPS
3.2.4. IL-10 production by mononuclear cells stimulated in vitro with anti-CD3
4. Discussion
Acknowledgements
References
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Dietary Group 2 | ||||
---|---|---|---|---|
Index | C | LP | R | SEM |
Day 3 | ||||
Initial body weight (g/mouse) | 8.5 | 8.4 | 8.6 | 0.10 |
Final body weight (g/mouse) | 10.4 X | 7.2 Y | 7.4 Y | 0.10 |
Food intake (g/mouse · 3d) 3 | 7.8 X | 4.5 Y | 3.6 Y | 0.20 |
Food intake (g/g body weight · d)3 | 0.19 X | 0.13 Y | 0.09 Z | 0.001 |
Carcass dry matter (g/100g wet weight) | 30.3 X | 28.3 Y | 27.9 Y | 0.30 |
Carcass lipid (g/100g wet weight)4 | 9.2 X | 5.9 Y | 3.4 Z | 0.03 |
Day 14 | ||||
Initial body weight (g/mouse) | 8.3 | 8.5 | 8.6 | 0.08 |
Final body weight (g/mouse) 4 | 17.5 X | 6.1 Y | 6.0 Y | 0.02 |
Food intake (g/mouse · 14d) 5 | 60.6 X | 18.2 Y | 12.6 Z | 0.01 |
Food intake (g/g body weight · d) | 0.20 X | 0.11 Y | 0.08 Z | 0.002 |
Carcass dry matter (g/100g wet weight) | 32.1 X | 28.1 Y | 26.5 Z | 0.26 |
Carcass lipid (g/100g wet weight) | 10.4 X | 4.5 Y | 2.7 Z | 0.34 |
Dietary Group 2 | ||||
---|---|---|---|---|
Index | C | LP | R | SEM |
Day 3 | ||||
Initial body weight (g/mouse) | 8.4 | 8.5 | 8.7 | 0.09 |
Final body weight (g/mouse) | 10.1 X | 7.4 Y | 7.5 Y | 0.12 |
Food intake (g/mouse · 3 d) 3 | 7.5 X | 4.9 Y | 3.5 Z | 0.04 |
Food intake (g/g body weight · d) 4 | 0.18 X | 0.13 Y | 0.09 Z | 0.24 |
Carcass dry matter (g/100g wet weight)3 | 30.4 X | 29.6 X | 27.4 Y | 0.01 |
Carcass lipid (g/100g wet weight) | 8.0 X | 6.1 Y | 3.8 Z | 0.23 |
Day 14 | ||||
Initial body weight (g/mouse) | 8.8 | 8.6 | 8.8 | 0.10 |
Final body weight (g/mouse) 3 | 18.5 X | 6.5 Y | 6.2 Y | 0.02 |
Food intake (g/mouse · 14 d) 3 | 65.6 X | 16.6 Y | 11.2 Z | 0.03 |
Food intake (g/g body weight · d) 3 | 0.27 X | 0.10 Y | 0.07 Z | 0.02 |
Carcass dry matter (g/100g wet weight) 3 | 32.8 X | 27.9 Y | 26.8 Y | 0.02 |
Carcass lipid (g/100g wet weight) 3 | 10.0 X | 4.1 Y | 2.0 Z | 0.04 |
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Monk, J.M.; Steevels, T.A.M.; Hillyer, L.M.; Woodward, B. Constitutive, but Not Challenge-Induced, Interleukin-10 Production Is Robust in Acute Pre-Pubescent Protein and Energy Deficits: New Support for the Tolerance Hypothesis of Malnutrition-Associated Immune Depression Based on Cytokine Production in vivo. Int. J. Environ. Res. Public Health 2011, 8, 117-135. https://doi.org/10.3390/ijerph8010117
Monk JM, Steevels TAM, Hillyer LM, Woodward B. Constitutive, but Not Challenge-Induced, Interleukin-10 Production Is Robust in Acute Pre-Pubescent Protein and Energy Deficits: New Support for the Tolerance Hypothesis of Malnutrition-Associated Immune Depression Based on Cytokine Production in vivo. International Journal of Environmental Research and Public Health. 2011; 8(1):117-135. https://doi.org/10.3390/ijerph8010117
Chicago/Turabian StyleMonk, Jennifer M., Tessa A.M. Steevels, Lyn M. Hillyer, and Bill Woodward. 2011. "Constitutive, but Not Challenge-Induced, Interleukin-10 Production Is Robust in Acute Pre-Pubescent Protein and Energy Deficits: New Support for the Tolerance Hypothesis of Malnutrition-Associated Immune Depression Based on Cytokine Production in vivo" International Journal of Environmental Research and Public Health 8, no. 1: 117-135. https://doi.org/10.3390/ijerph8010117
APA StyleMonk, J. M., Steevels, T. A. M., Hillyer, L. M., & Woodward, B. (2011). Constitutive, but Not Challenge-Induced, Interleukin-10 Production Is Robust in Acute Pre-Pubescent Protein and Energy Deficits: New Support for the Tolerance Hypothesis of Malnutrition-Associated Immune Depression Based on Cytokine Production in vivo. International Journal of Environmental Research and Public Health, 8(1), 117-135. https://doi.org/10.3390/ijerph8010117