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Published on: December 30, 2016
Proteolytic activation of human pancreatitis-associated protein is required for peptidoglycan binding and bacterial
Péter Medveczky1, Richárd Szmola, Miklós Sahin-Tóth
1Department of Molecular and Cell Biology, Boston University Goldman School of Dental Medicine, MA 02118, USA.
Insights
Pancreatitis-associated protein (PAP) requires N-terminal cleavage by proteases like trypsin or elastase to bind bacterial peptidoglycan and aggregate bacteria. This processing is essential for PAP
Area of Science:
- Biochemistry
- Microbiology
- Proteomics
Background:
- Pancreatitis-associated protein (PAP) is a lectin-like protein upregulated during acute pancreatitis.
- PAP interacts with bacteria, binding peptidoglycan and exhibiting bactericidal effects.
- The role of PAP's N-terminal processing in its antibacterial function was previously unclear.
Purpose of the Study:
- To investigate the necessity of N-terminal cleavage for PAP's peptidoglycan binding and antibacterial activity.
- To identify proteases involved in PAP processing and their effect on PAP function.
- To compare the functional equivalence of PAP processed by different proteases.
Main Methods:
- Enzymatic cleavage of PAP by trypsin, elastase, and bacterial nprE.
- Analysis of PAP's binding to Bacillus subtilis peptidoglycan.
- Assessment of bacterial aggregation and killing by processed PAP.
- Comparison of soluble vs. insoluble PAP species.
Main Results:
- N-terminal cleavage of PAP by trypsin or elastase is essential for peptidoglycan binding to Bacillus subtilis.
- Trypsin-mediated cleavage yields insoluble PAP, while elastase yields soluble PAP; both aggregate bacteria comparably.
- Neither trypsin- nor elastase-processed PAP significantly killed bacteria.
- Gram-negative Escherichia coli was not aggregated by processed PAP.
Conclusions:
- N-terminal processing is a prerequisite for PAP's peptidoglycan binding and bacteria-aggregating activity.
- Trypsin- and elastase-processed PAP are functionally equivalent in bacterial aggregation.
- The study expands the known proteases capable of PAP processing to include bacterial metalloproteases.
Abstract:
PAP (pancreatitis-associated protein) is a 16 kDa lectin-like protein, which becomes robustly up-regulated in the pancreatic juice during acute pancreatitis. Trypsin cleaves the N-terminus of PAP, which in turn forms insoluble fibrils. PAP and its paralogue, the pancreatic stone protein, induce bacterial aggregation and, more recently, PAP was shown to bind to the peptidoglycan of Gram-positive bacteria and exert a direct bactericidal effect. However, the role of N-terminal processing in the antibacterial function of PAP has remained unclear. In the present study, we demonstrate that N-terminal cleavage of PAP by trypsin at the Arg37-Ile38 peptide bond or by elastase at the Ser35-Ala36 peptide bond is a prerequisite for binding to the peptidoglycan of the Gram-positive bacterium Bacillus subtilis. The tryptic site in PAP was also efficiently cleaved by nprE (extracellular neutral metalloprotease) secreted from B. subtilis. Trypsin-mediated processing of PAP resulted in the formation of the characteristic insoluble PAP species, whereas elastase-processed PAP remained soluble. N-terminally processed PAP induced rapid aggregation of B. subtilis without significant bacterial killing. The bacteria-aggregating activities of trypsin-processed and elastase-processed PAP were comparable. In contrast with previous reports, the Gram-negative Escherichia coli bacterium was not aggregated. We conclude that N-terminal processing is necessary for the peptidoglycan binding and bacteria-aggregating activity of PAP and that trypsin-processed and elastase-processed forms are functionally equivalent. The observations also extend the complement of proteases capable of PAP processing, which now includes trypsins, pancreatic elastases and bacterial zinc metalloproteases of the thermolysin type.
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