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Body Composition and Metabolic Caging Analysis in High Fat Fed Mice
Published on: May 24, 2018
Peptidomics biomarker discovery in mouse models of obesity and type 2 diabetes
Petra Budde1, Imke Schulte, Annette Appel
1BioVisioN AG, Feodor-Lynen-Str. 5, D-30625 Hannover, Germany. p.budde@biovision-discovery.de
Abstract:
Type 2 diabetes mellitus (T2DM) is caused by the failure of the pancreatic beta-cell to secrete sufficient insulin to compensate a decreased response of peripheral tissues to insulin action. The pathological events causing beta-cell dysfunctions are only poorly understood and early markers that would predict islet function are missing. In contrast to immunoassays, unbiased proteomic technologies provide the opportunity to screen for novel marker protein and peptides of T2DM. An important subset of the proteome, peptides and peptide hormones secreted by the pancreas are deregulated in T2DM. The mass range of peptides and small proteins (1-20 kDa) is only sufficiently targeted by peptidomics, a combination of liquid chromatographic and mass spectrometric (MS) peptide analysis. Here, we describe the application of isotope label-free quantitative peptidomics to display and quantify relevant changes in the level of pancreatic peptides and peptide hormones in a preclinical model of T2DM, the Lep(ob)/Lep(ob) mouse. The amino acid sequence of statistical relevant top candidates was determined by MS/MS fragmentation or Edman degradation. The comparison of lean versus obese mice revealed increased levels of islet-specific peptides that can be divided into the following categories 1) the major islet peptide hormones insulin, amylin and glucagon; 2) proinsulin and C-peptide and 3) novel processing products of secretogranin, glucagon and amylin. Furthermore, we found increased levels of proteins and peptides implicated in zymogen granule maturation (syncollin) and nutritional digestion. In summary, our findings demonstrate that peptidomics is a valid approach to screen for novel peptide biomarkers.
Insights
Peptidomics identified novel pancreatic peptide biomarkers for type 2 diabetes mellitus (T2DM). This study reveals increased islet-specific peptides in a T2DM mouse model, offering new diagnostic potential.
Area of Science:
- Biochemistry
- Proteomics
- Endocrinology
Background:
- Type 2 diabetes mellitus (T2DM) involves pancreatic beta-cell dysfunction and insulin resistance.
- Current diagnostic methods lack early markers for islet function.
- Proteomic technologies offer unbiased screening for novel biomarkers.
Purpose of the Study:
- To apply quantitative peptidomics for identifying novel peptide biomarkers in a preclinical model of T2DM.
- To quantify changes in pancreatic peptides and peptide hormones associated with T2DM pathogenesis.
- To explore the potential of peptidomics in discovering early diagnostic markers for T2DM.
Main Methods:
- Utilized isotope label-free quantitative peptidomics.
- Analyzed peptides and small proteins (1-20 kDa) using liquid chromatography and mass spectrometry (MS).
- Determined amino acid sequences of candidate peptides via MS/MS fragmentation or Edman degradation.
Main Results:
- Identified increased levels of islet-specific peptides in Lep(ob)/Lep(ob) mice (a T2DM model).
- Detected elevated levels of key hormones (insulin, amylin, glucagon), proinsulin, C-peptide, and novel processing products.
- Observed increased peptides related to zymogen granule maturation and nutritional digestion.
Conclusions:
- Quantitative peptidomics is a powerful approach for discovering novel peptide biomarkers in T2DM.
- The identified peptides provide insights into T2DM pathophysiology and potential diagnostic targets.
- This study validates peptidomics as a method for screening pancreatic peptides in metabolic diseases.

