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Mitocryptide-2: Identification of Its Minimum Structure for Specific Activation of FPR2-Possible Receptor Switching
Takayuki Marutani1, Kodai Nishino1, Tomoyuki Miyaji1
1Laboratory of Peptide Science, Graduate School of Bio-Science, Nagahama Institute of Bio-Science and Technology, Nagahama, Shiga 526-0829, Japan.
Abstract:
Mitocryptides are a novel family of endogenous neutrophil-activating peptides originating from various mitochondrial proteins. Mitocryptide-2 (MCT-2) is one of such neutrophil-activating peptides, and is produced as an N-formylated pentadecapeptide from mitochondrial cytochrome b. Although MCT-2 is a specific endogenous ligand for formyl peptide receptor 2 (FPR2), the chemical structure within MCT-2 that is responsible for FPR2 activation is still obscure. Here, we demonstrate that the N-terminal heptapeptide structure of MCT-2 with an N-formyl group is the minimum structure that specifically activates FPR2. Moreover, the receptor molecule for MCT-2 is suggested to be shifted from FPR2 to its homolog formyl peptide receptor 1 (FPR1) by the physiological cleavages of its C-terminus. Indeed, N-terminal derivatives of MCT-2 with seven amino acid residues or longer caused an increase of intracellular free Ca2+ concentration in HEK-293 cells expressing FPR2, but not in those expressing FPR1. Those MCT-2 derivatives also induced β-hexosaminidase secretion in neutrophilic/granulocytic differentiated HL-60 cells via FPR2 activation. In contrast, MCT-2(1-4), an N-terminal tetrapeptide of MCT-2, specifically activated FPR1 to promote those functions. Moreover, MCT-2 was degraded in serum to produce MCT-2(1-4) over time. These findings suggest that MCT-2 is a novel critical factor that not only initiates innate immunity via the specific activation of FPR2, but also promotes delayed responses by the activation of FPR1, which may include resolution and tissue regeneration. The present results also strongly support the necessity of considering the exact chemical structures of activating factors for the investigation of innate immune responses.
Insights
Mitocryptide-2 (MCT-2), a mitochondrial peptide, activates formyl peptide receptor 2 (FPR2) via its N-terminal heptapeptide. Cleaved forms of MCT-2 activate formyl peptide receptor 1 (FPR1), suggesting dual roles in immunity and healing.
Area of Science:
- Immunology
- Molecular Biology
- Biochemistry
Background:
- Mitocryptides are novel endogenous neutrophil-activating peptides derived from mitochondrial proteins.
- Mitocryptide-2 (MCT-2) is an N-formylated pentadecapeptide from mitochondrial cytochrome b.
- The precise structure of MCT-2 responsible for formyl peptide receptor 2 (FPR2) activation is not fully understood.
Purpose of the Study:
- To identify the minimum structural requirement of MCT-2 for FPR2 activation.
- To investigate the potential shift in receptor binding from FPR2 to FPR1 upon MCT-2 cleavage.
- To elucidate the distinct roles of MCT-2 and its derivatives in innate immunity.
Main Methods:
- Utilized HEK-293 cells expressing FPR2 and FPR1 to assess intracellular Ca2+ concentration changes.
- Employed differentiated HL-60 cells to measure beta-hexosaminidase secretion.
- Analyzed the degradation of MCT-2 in serum to identify cleavage products.
Main Results:
- The N-terminal heptapeptide of MCT-2 with an N-formyl group was identified as the minimal structure for specific FPR2 activation.
- N-terminal derivatives of MCT-2 (7+ amino acids) activated FPR2 but not FPR1, inducing Ca2+ increase and beta-hexosaminidase secretion.
- MCT-2(1-4), a C-terminally cleaved product, specifically activated FPR1, and MCT-2 degraded to MCT-2(1-4) in serum over time.
Conclusions:
- MCT-2 initiates innate immunity via FPR2 activation through its N-terminal heptapeptide.
- C-terminal cleavage of MCT-2 generates MCT-2(1-4), which activates FPR1, suggesting a role in delayed responses like tissue regeneration.
- Understanding the precise chemical structures of activating factors is crucial for studying innate immune responses.
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