| Literature DB >> 23236474 |
Justyna Siwy1, Carlamaria Zoja, Julie Klein, Ariela Benigni, Wiliam Mullen, Bernd Mayer, Harald Mischak, Joachim Jankowski, Robert Stevens, Antonia Vlahou, Sophia Kossida, Paul Perco, Ferdinand H Bahlmann.
Abstract
Representative animal models for diabetes-associated vascular complications are extremely relevant in assessing potential therapeutic drugs. While several rodent models for type 2 diabetes (T2D) are available, their relevance in recapitulating renal and cardiovascular features of diabetes in man is not entirely clear. Here we evaluate at the molecular level the similarity between Zucker diabetic fatty (ZDF) rats, as a model of T2D-associated vascular complications, and human disease by urinary proteome analysis. Urine analysis of ZDF rats at early and late stages of disease compared to age- matched LEAN rats identified 180 peptides as potentially associated with diabetes complications. Overlaps with human chronic kidney disease (CKD) and cardiovascular disease (CVD) biomarkers were observed, corresponding to proteins marking kidney damage (eg albumin, alpha-1 antitrypsin) or related to disease development (collagen). Concordance in regulation of these peptides in rats versus humans was more pronounced in the CVD compared to the CKD panels. In addition, disease-associated predicted protease activities in ZDF rats showed higher similarities to the predicted activities in human CVD. Based on urinary peptidomic analysis, the ZDF rat model displays similarity to human CVD but might not be the most appropriate model to display human CKD on a molecular level.Entities:
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Year: 2012 PMID: 23236474 PMCID: PMC3517416 DOI: 10.1371/journal.pone.0051334
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Figure 1Study design.
For biomarker definition urine samples of ZDF and LEAN control rats were used. The defined ZDF rat biomarkers at the late stage of disease (8 months) were compared based on the orthology of amino acid sequences, to the human CKD and CVD biomarkers. The overlap in sequenced urine peptide markers between early (2 months) and late stage disease ZDF rat markers is given in the Venn-diagram.
Systemic, renal function and structure parameters measured in ZDF and LEAN rats at 2 and 8 months of age.
| Groups | Body Weight (g) | Blood Glucose (mg/dl) | Serum Cholesterol (mg/dl) | Serum Triglycerides (mg/dl) | BUN (mg/dl) | Creatinine Clearance (ml/min) | Proteinuria (mg/24 h) | Glomeruli with sclerotic changes (%) | Tubular casts (n°/HPF) | Interstitial inflammation (ED1+cells/HPF) | Interstitial type III collagen (score) |
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| 2 months | 324±16°° | 200±64°° | 120±5 | 497±166°° | 24±3 | 3.56±0.32 | 75.79±25.08° | 0 | 0 | 0.8±0.7 | 0 |
| 8 months | 399±23 | 448±46 | 360±42 | 713±238 | 39±8 | 1.20±0.12 | 379.74±84.96 | 18±6 | 5±2 | 9.9±6.6 | 1.23±0.38 |
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| 2 months | 244±12 | 84±18 | <100 | 77±6 | 19±3 | 3.06±0.32 | 16.92±0.88 | 0 | 0 | 0.5±0.6 | 0 |
| 8 months | 429±17 | 135±14 | 105±9 | 93±23 | 18±2 | 2.31±0.11 | 15.63±3.01 | 0 | 0 | 1.2±0.7 | 0.09±0.07 |
Values are expressed as mean ± SD.
°p<0.01 ZDF 2 months vs. LEAN 2 months;
°°p<0.01 ZDF 2 months vs. LEAN 2 months;
p<0.01;
p<0.001 ZDF 8 months vs. LEAN 8 months;
p<0.001 ZDF 8months vs. ZDF 2months;
p<0.001 LEAN 8months vs. LEAN 2 months.
Figure 2ZDF rats develop renal damage and cardiac structural changes after the onset of diabetes.
A) Photomicrographs showing representative sections of kidneys from LEAN and ZDF rats at 2 and 8 months of age. No changes in renal morphology are observed in LEAN rats and in 2-month old ZDF rats. Sections from 8-month ZDF rats show glomerular sclerosis with thickening of the Bowman’s capsule and retraction of the tuft, tubular atrophy and dilation, and hyaline casts. PAS staining/200x; B) Time course of systolic blood pressure (SBP) in LEAN control and ZDF rats. C) Cardomyocyte area and D) Capillary density measured in cardiac tissue from LEAN and ZDF rats at 2 and 8 months of age. Values are mean±SD; *P<0.05; **P<0.01 vs. ZDF at 2 months; °P<0.05 vs. ZDF at 4 months.
Figure 3Group specific contour plots of LEAN control rats at 2 months (n = 10) and 8 months (n = 7) of age and type 2 diabetes ZDF rats at 2 and 8 months of age (n = 10 at each time).
Each consisting of digitally compiled data sets of urine samples from all individual rats in a 3D depiction. Molecular mass of the analyzed polypeptides (0.8–25 kDa) in logarithmic scale is plotted against the CE migration time (18–60 min) with MS signal intensity in z-axis.
Figure 4Similarity in amino acid sequences between rat and human biomarkers and predicted protease activities.
a) Amino acid sequence orthology between the 50 most significant human biomarkers for CKD and CVD and the defined 180 rodent markers for diabetes associated complications. To examine the orthology between human and rat markers we applied three criteria: first, we looked for identical fragments (both cleavage sites identical in human and rat); secondly, we looked for fragments with one identical cleavage site and third, we looked for peptides from the same protein area with a minimum overlap in two amino acids. b) Predicted protease activities related to rat and human COL1A1 biomarker fragments. The relative number of specific cleavage sites for MMPs, ADAMTS5, CTSK and F2 and direction of amplitude regulation for COL1A1 markers in rat and human models are given.
Identified specific cleavage sites for COL1A1.
| ZDF rat markers (8 months) | human CKD markers | human CVD markers | |||||
| specificcleavagesites (><) | Peptidase | up-regulated | down-regulated | up-regulated | down-regulated | up-regulated | down-regulated |
| PGK><QGA | MMP: 2, 3, 8, 12, 13 | 23 | 6 | 0 | 7 | 7 | 5 |
| PQG><FQG | MMP: 2, 3, 9, 12 | ||||||
| PAG><ERG | MMP: 2, 9, 13 | ||||||
| PSG><FQG | MMP: 3, 8, 9, 12, 13 | ||||||
| PRG><LPG | MMP: 8, 9, 12, 13 | ||||||
| PAG><QPG | MMP: 8, 9 | ||||||
| PPG><KNG | MMP: 9, 13 | ||||||
| QPG><SPG | MMP: 9, 13 | ||||||
| PRG><ERG | MMP 9 | ||||||
| PAG><QQG | MMP: 8 | ||||||
| PGP><SGK | ADAMTS5 | 21 | 1 | 0 | 2 | 15 | 0 |
| PGP><AGP | ADAMTS5 | ||||||
| GPR><GPP | CTSK°, F2 | 4 | 10 | 0 | 2 | 2 | 1 |
| PPQ><EKA | CTSK | ||||||
Three AA prior to and three AA after the observed cleavage point are indicated; the predicted protease (short name) and numbers on protease-to-urinary-peptide-pairs for COL1A1 based on the rat and human dataset are also provided. The trend of regulation (up- or down- in cases versus controls per species) is also shown.
°found only in CutDB-,
found only in MEROPS-database.