| Literature DB >> 24019943 |
Sachin Kumar Singh1, Sachin Sethi, Sriram Aravamudhan, Marcus Krüger, Clemens Grabher.
Abstract
Neutrophil granulocytes are pivotal cells within the first line of host defense of the innate immune system. In this study, we have used a gel-based LC-MS/MS approach to explore the proteome of primary marrow neutrophils from adult zebrafish. The identified proteins originated from all major cellular compartments. Gene ontology analysis revealed significant association of proteins with different immune-related network and pathway maps. 75% of proteins identified in neutrophils were identified in neutrophils only when compared to neutrophil-free brain tissue. Moreover, cross-species comparison with human peripheral blood neutrophils showed partial conservation of immune-related proteins between human and zebrafish. This study provides the first zebrafish neutrophil proteome and may serve as a valuable resource for an understanding of neutrophil biology and innate immunity.Entities:
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Year: 2013 PMID: 24019943 PMCID: PMC3760823 DOI: 10.1371/journal.pone.0073998
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Figure 1Zebrafish brain and neutrophil proteome comparison.
Venn diagram comparing zebrafish whole brain and zebrafish neutrophil proteome data sets.
Most abundant proteins in zebrafish neutrophils.
| Gene Name | Protein name | Uniprot Id | Intensity | No. of peptides |
| npsn | Nephrosin | Q503K7 | 6974900000 | 13 |
| lcp1;pls2 | Plastin-2 | Q6P698 | 4951600000 | 45 |
| h2afx | similar to histone cluster 2 | Q7ZUY3 | 4560900000 | 9 |
| lyz | Lysozyme C | Q24JW2 | 3172600000 | 17 |
| lect2 | Leukocyte cell-derived chemotaxin 2 like | Q0H0R9 | 2321700000 | 14 |
| nccrp1 | nonspecific cytotoxic cell receptor protein 1 | A1L1Z5 | 1100500000 | 14 |
| si:dkeyp-46h3.6 | Histone H3 | Q4QRF4 | 1019300000 | 7 |
| prdx5 | Peroxiredoxin 5 | Q502C8 | 988140000 | 9 |
| cap1 | Adenylyl cyclase-associated protein | A7E2H8 | 811930000 | 22 |
| coro1a | Coronin, actin binding protein, 1A | Q7SX58 | 626720000 | 18 |
| rdx | Radixin;67 kDa protein | Q66I42 | 565640000 | 31 |
| anxa3b | annexin A3b | A8E5E5 | 463900000 | 26 |
| wdr1 | WD repeat domain 1 | Q6NY25 | 342040000 | 24 |
| calrl | Calreticulin like | Q6DI13 | 301730000 | 25 |
| h1fx | H1 histone family, member X | Q802U8 | 240540000 | 4 |
| rab1a | RAB1A | Q7ZSZ0 | 238780000 | 8 |
| clic1 | Chloride intracellular channel 1 | Q6NYF2 | 237250000 | 13 |
| rps13 | Ribosomal protein S13 | Q6IMW6 | 234040000 | 9 |
| arpc3 | Actin related protein | Q6ZM62 | 224530000 | 9 |
| nme2 | Nucleoside diphosphate kinase | Q7SXG5 | 213480000 | 7 |
List of the 20 most abundant neutrophil-specific proteins identified in zebrafish marrow neutrophils. Protein abundance is shown as ion intensity. Number of peptides depicts the number of individual peptides identified for each protein.
Figure 2Complement pathway map analysis of zebrafish neutrophil proteins.
Alternative complement pathway map identified from the zebrafish neutrophil proteome. 10 different zebrafish neutrophil proteins were found associated with the alternative complement pathway. Proteins with red color thermometer bar represent the zebrafish neutrophil proteins identified in this study.
Figure 3Phagocytosis network process analysis of zebrafish neutrophil proteins.
Phagocytosis process network identified from the neutrophil proteome dataset. 18 neutrophil proteins were found associated in this pathway. Proteins represented with a red circle represent the proteins identified in this study.
Functional categories of zebrafish neutrophil proteins.
| Classification | Gene symbol |
| Proteases | Acp1, Ppp3cc,Ptpn6, Mtmr6,Ppp1cb |
| Transcripation factors | Drap1, Pa2g4, Gabpa, Hmgb1, Hcfc1 |
| Receptors | Atrn, M6pr, Ptgrc, CD41, CD82 |
| Ligands | Lect2, Mif, Stoml2, B2m, Manf |
| Enzymes | Arsa, Asah1, Bdh1, Hexb, Glb1 |
| Kinases | Csnk1a1i, Cpne3, Prkib, Slk |
| Phosphatases | Ppap2a, Minpp1, Nudt5, Pgaam1, Fbp1 |
List of the five most abundant proteins of different functional categories in zebrafish neutrophils.
Figure 4Cross species comparison of zebrafish and human neutrophil proteomes.
Venn diagrams comparing the zebrafish and human neutrophil proteomes. Comparison of zebrafish and human detergent soluble proteomes (a). Comparison of zebrafish detergent soluble and human detergent insoluble proteomes (b). A majority of proteins common between zebrafish detergent soluble and human detergent insoluble are also present in the human detergent soluble data set (c).
Comparison of human and zebrafish neutrophil proteomes based on subcellular localization (a) and on association with biological process (b).
| Subcellular localization (a) | ||
| Compartment | Human | Zebrafish |
| Cytoplasm | 19% | 19% |
| Macromolecular complex | 5% | 10% |
| Intracellular organelles | 10% | 3% |
| Extracellular | 6% | 2% |
| Cell surface | 1% | – |
| Plasma membrane | 11% | 3% |
| Cytoskeleton | 6% | 7% |
| Peroxisome | 1% | – |
| Nucleus | 13% | 17% |
| Mitochondria | 7% | 5% |
| ER | 4% | 4% |
| Ribosome | – | 8% |
| Chromosome | 2% | 3% |
| Endosome | 4% | 1% |
| Others | 11% | 19% |
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| Regulation | 21% | 19% |
| Reproduction | 3% | – |
| Response to stimulus | 7% | 3% |
| Cellular process | 27% | 44% |
| Developmental process | 6% | 7% |
| Growth | 2% | – |
| Immune system process | 5% | 1% |
| Interaction with cells and organism | 7% | 2% |
| Localization | 6% | 6% |
| Metabolic process | 8% | 11% |
| Other | 12% | 8% |