| Literature DB >> 26258666 |
Matthew J Mulcahy1, Sydney B Blattman1, Francisco J Barrantes2, Ronald J Lukas3, Edward Hawrot1.
Abstract
The α7-nicotinic acetylcholine receptor (α7-nAChR) is a ligand-gated ion channel widely expressed in vertebrates and is associated with numerous physiological functions. As transmembrane ion channels, α7-nAChRs need to be expressed on the surface of the plasma membrane to function. The receptor has been reported to associate with proteins involved with receptor biogenesis, modulation of receptor properties, as well as intracellular signaling cascades and some of these associated proteins may affect surface expression of α7-nAChRs. The putative chaperone resistance to inhibitors of cholinesterase 3 (Ric-3) has been reported to interact with, and enhance the surface expression of, α7-nAChRs. In this study, we identified proteins that associate with α7-nAChRs when Ric-3 is expressed. Using α-bungarotoxin (α-bgtx), we isolated and compared α7-nAChR-associated proteins from two stably transfected, human tumor-derived cell lines: SH-EP1-hα7 expressing human α7-nAChRs and the same cell line further transfected to express Ric-3, SH-EP1-hα7-Ric-3. Mass spectrometric analysis of peptides identified thirty-nine proteins that are associated with α7-nAChRs only when Ric-3 was expressed. Significantly, and consistent with reports of Ric-3 function in the literature, several of the identified proteins are involved in biological processes that may affect nAChR surface expression such as post-translational processing of proteins, protein trafficking, and protein transport. Additionally, proteins affecting the cell cycle, the cytoskeleton, stress responses, as well as cyclic AMP- and inositol triphosphate-dependent signaling cascades were identified. These results illuminate how α-bgtx may be used to isolate and identify α7-nAChRs as well as how the expression of chaperones such as Ric-3 can influence proteins associating with α7-nAChRs. These associating proteins may alter activities of α7-nAChRs to expand their functionally-relevant repertoire as well as to affect biogenesis and membrane trafficking of α7-nAChRs.Entities:
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Year: 2015 PMID: 26258666 PMCID: PMC4530945 DOI: 10.1371/journal.pone.0134409
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Fig 1Experimental design.
Five biological replicates of both SH-EP1-hα7-Ric-3 cells and SH-EP1-hα7 cells were independently processed and analyzed. Triton X-100 solubilized α7-nAChR protein complexes were isolated from SH-EP1-hα7-Ric-3 and SH-EP1-hα7 extracts using α-bgtx-affinity beads. Binding of α7-nAChRs to affinity beads was confirmed with 125I-α-bgtx radioligand binding assays. Separately, α7-nAChR protein complexes isolated from SH-EP1-hα7-Ric-3 and SH-EP1-hα7 were eluted from affinity beads using 1 M carbachol. Eluted proteins were reduced and alkylated before being digested with trypsin in-solution. Digested peptides from each of the five samples prepared from SH-EP1-hα7-Ric-3 and SH-EP1-hα7 cells were analyzed with a Q Exactive mass spectrometer, spectra identified using the Mascot algorithm and results analyzed using ProteoIQ. Identified α7-nAChR associated proteins from SH-EP1-hα7-Ric-3 and SH-EP1-hα7 cells were compared. Associations only identified with Ric-3 co-expression in SH-EP1-hα7-Ric-3 cells were determined to be Ric-3-mediated changes in the α7-nAChR interactome.
Fig 2125I-α-bgtx binding to affinity immobilized protein.
Detergent solubilized membrane extracts were incubated with α-bgtx-affinity beads for 4 hours at 4°C. Protein-α-bgtx-affinity bead complexes were incubated with 5 nM 125I-α-bgtx for 1 hour at room temperature. Non-specific binding was determined in controls by the inclusion of 1 μM unlabeled α-bgtx to preparations prior to the addition of 125I-α-bgtx. Following incubation with 125I-α-bgtx, beads were washed three times with solubilization buffer and measured. Comparable 125I-α-bgtx binding activity of protein-α-bgtx-affinity bead complexes isolated from SH-EP1-hα7-Ric-3 (56 ± 15 fmol/mg, in blue) and SH-EP1-hα7 (49 ± 9 fmol/mg, in green) was observed (Student’s t test, p = 0.40) while SH-EP1 preparations (in purple) did not show α-bgtx binding activity. No 125I-α-bgtx binding to protein-α-bgtx-affinity bead complexes was observed in samples treated with 5 μM MLA confirming α7-nAChR specificity (Student t test, p < 0.05). SH-EP1-hα7-Ric-3 and SH-EP1-hα7 125I-bgtx binding activity was analyzed with five independent biological replicates. MLA treated samples and SH-EP1 125I-α-bgtx binding activity were analyzed with three independent biological replicates.
Fig 3Ric-3 immunoreactivity in SH-EP1-ha7-Ric-3.
Solubilized membrane extracts of SH-EP1-hα7-Ric-3 and SH-EP1-hα7 cell lines were probed with anti-Ric-3 polyclonal antibodies. Ric-3 antibody immunoreactivity at 41 kDa confirms the presence of Ric-3 in membrane extracts from SH-EP1-hα7-Ric-3 cells (A). There is no corresponding band in SH-EP1-hα7 membrane extracts (B). The anti-GAPDH antibody immunoreactivity was utilized as a loading control.
Identification of α7-nAChR in SH-EP1-hα7-Ric-3 and SH-EP1-hα7 cells.
| Protein name | Accession number | Cell line | Total peptides | Sequence coverage (%) | Data sets | Probability score (%) |
|---|---|---|---|---|---|---|
| Neuronal acetylcholine receptor subunit alpha-7 | P36544 | SH-EP1-hα7-Ric-3 | 1 | 3.98 | 5 | 100 |
| P36544 | SH-EP1-hα7 | 1 | 3.98 | 5 | 98 |
Ontological grouping of Ric-3-mediated α7-nAChR associated proteins.
| Biological process | Associated proteins | Accession number | Total peptides | Seq. cov. (%) | Data sets | Prob. score (%) | Category |
|---|---|---|---|---|---|---|---|
| Apoptotic process | KN motif and ankyrin repeat domain-containing protein 2 | Q63ZY3 | 4 | 6.6 | 3 | 100 | Protein turnover |
| Tax1-binding protein 1 | Q86VP1 | 5 | 7.5 | 3 | 100 | Protein turnover | |
| Cell cycle | Cell cycle progression protein 1 | Q9ULG6 | 5 | 11.3 | 3 | 99 | Signaling |
| Cytoskeletal organization | Rho guanine nucleotide exchange factor 17 | Q96PE2 | 1 | 0.7 | 2 | 98 | Signaling |
| SUN domain-containing protein 2 | Q9UH99 | 3 | 6.4 | 2 | 95 | Other proteins | |
| Developmental process (Developmental process, regulation of "*") | Keratin, type I cytoskeletal 15 | P19012 | 11 | 26.8 | 5 | 100 | Other proteins |
| Keratin, type II cuticular Hb4* | Q9NSB2 | 6 | 11.5 | 5 | 96 | Other proteins | |
| Keratin, type II cytoskeletal 75 (P) | O95678 | 15 | 25.1 | 5 | 100 | Other proteins | |
| Ion transport | Ferritin light chain | P02792 | 3 | 24.6 | 2 | 100 | Other proteins |
| Nucleobase, nucleoside, nucleotide, and nucleic acid metabolic process | 5'-nucleotidase | P21589 | 6 | 18.1 | 3 | 100 | Other proteins |
| FAD synthase | Q8NFF5 | 2 | 7.4 | 2 | 98 | Other proteins | |
| Nuclear receptor coactivator 4 | Q13772 | 3 | 5.7 | 2 | 100 | Protein turnover | |
| TRMT1-like protein | Q7Z2T5 | 1 | 2.1 | 3 | 90 | Other proteins | |
| Protein complex assembly | Erythrocyte band 7 integral membrane protein | P27105 | 2 | 10.1 | 2 | 99 | Other proteins |
| Gamma-adducin (P) | Q9UEY8 | 5 | 8.8 | 3 | 100 | Surface expression | |
| Protein folding | Calnexin | P27824 | 8 | 16.1 | 5 | 100 | Surface expression |
| Calreticulin | P27797 | 6 | 25.4 | 3 | 100 | Surface expression | |
| DnaJ homolog subfamily B member 11 | Q9UBS4 | 2 | 6.7 | 3 | 93 | Surface expression | |
| Peptidyl-prolyl cis-trans isomerase A | P62937 | 4 | 32.7 | 4 | 98 | Surface expression | |
| T-complex protein 1 subunit epsilon | P48643 | 3 | 9.1 | 2 | 93 | Surface expression | |
| Protein transport | ADP-ribosylation factor 4 | P18085 | 3 | 20.0 | 2 | 95 | Surface expression |
| Autophagy-related protein 9A | Q7Z3C6 | 1 | 2.3 | 2 | 91 | Protein turnover | |
| Optineurin | Q96CV9 | 1 | 2.3 | 2 | 96 | Surface expression | |
| Translocon-associated protein subunit gamma | Q9UNL2 | 1 | 7.6 | 2 | 99 | Surface expression | |
| Protein Modification | Dolichol-phosphate mannosyltransferase | O60762 | 7 | 32.7 | 5 | 91 | Surface expression |
| LIM domain only protein 7 | Q8WWI1 | 2 | 1.5 | 2 | 94 | Protein turnover | |
| Tyrosine-protein phosphatase non-receptor type 14 | Q15678 | 2 | 4.2 | 3 | 92 | Surface expression | |
| Ubiquitin-like modifier-activating enzyme 1 | P22314 | 4 | 6.3 | 2 | 100 | Protein turnover | |
| Regulation of biosynthetic process | Protein LYRIC | Q86UE4 | 2 | 9.3 | 2 | 99 | Other proteins |
| Response to stress | Hypoxia up-regulated protein 1 | Q9Y4L1 | 7 | 10.3 | 3 | 100 | Surface expression |
| Calcium-binding and coiled-coil domain-containing protein 2 | Q13137 | 8 | 23.5 | 5 | 100 | Protein turnover | |
| Peroxidasin homolog | Q92626 | 9 | 8.5 | 5 | 100 | Other proteins | |
| Signal Transduction | Angiopoietin-related protein 2 | Q9UKU9 | 3 | 7.5 | 2 | 99 | Signaling |
| cAMP-dependent protein kinase type I-alpha regulatory subunit | P10644 | 2 | 8.4 | 2 | 92 | Surface expression | |
| Inositol 1,4,5-trisphosphate receptor type 1 | Q14643 | 4 | 1.8 | 2 | 90 | Signaling | |
| Reticulocalbin-3 (P) | Q96D15 | 1 | 3.7 | 2 | 98 | Surface expression | |
| Unattributed | BTB/POZ domain-containing protein 2 | Q9BX70 | 4 | 11.1 | 4 | 100 | Other proteins |
| RNA-binding protein 33 | Q96EV2 | 4 | 4.4 | 2 | 92 | Other proteins | |
| Uncharacterized protein | F5H7S3 | 7 | 24.0 | 3 | 97 | Other proteins |
Summary analysis of Ric-3-mediated proteins with literature citations implicating functional interactions with nAChRs.
| Protein Summary | Accession number | Citation type | α7-nAChR only | α7 and other nAChRs | non-α7 nAChRs only |
|---|---|---|---|---|---|
| Calnexin | P27824 | Specific Protein | [ | ||
| Calreticulin | P27797 | Specific Protein | [ | ||
| cAMP-dependent protein kinase type I-alpha regulatory subunit | P10644 | Both | [ | ||
| Dolichol-phosphate mannosyltransferase | O60762 | Protein Class | [ | ||
| Inositol 1,4,5-trisphosphate receptor type 1 | Q14643 | Both | [ | ||
| Peptidyl-prolyl cis-trans isomerase A | P62937 | Protein Class | [ | ||
| Tyrosine-protein phosphatase non-receptor type 14 | Q15678 | Protein Class | [ |
Summary of single-peptide-based protein identifications.
| Protein Summary | Accession number | m/z | z | Peptide sequence | Score | Replicate |
|---|---|---|---|---|---|---|
| Autophagy-related protein 9A | Q7Z3C6 | 889.85 | 2 | ESDESGESAPDEGGEGAR | 42.29 | 4 |
| Q7Z3C6 | 889.85 | 2 | ESDESGESAPDEGGEGAR | 57.04 | 5 | |
| Optineurin | Q96CV9 | 719.83 | 2 | SEIETQTEGSTEK | 20.43 | 4 |
| Q96CV9 | 719.83 | 2 | SEIETQTEGSTEK | 77.71 | 5 | |
| Reticulcalbin-3 | Q96D15 | 633.28 | 2 | VADQDGDSMATR | 87.64 | 1 |
| Q96D15 | 633.27 | 2 | VADQDGDSMATR | 85.03 | 2 | |
| Rho guanine nucleotide exchange factor 17 | Q96PE2 | 640.81 | 2 | LSSGGGSSSETVGR | 89.08 | 4 |
| Q96PE2 | 640.81 | 2 | LSSGGGSSSETVGR | 89.33 | 5 | |
| Translocon-associated protein subunit gamma | Q9UNL2 | 854.42 | 2 | QQSEEDLLLQDFSR | 109.45 | 4 |
| Q9UNL2 | 854.41 | 2 | QQSEEDLLLQDFSR | 19.33 | 5 | |
| TRMT1-like protein | Q7Z2T5 | 822.37 | 2 | TTDDTTTDNYIAQGK | 58.93 | 2 |
| Q7Z2T5 | 822.37 | 2 | TTDDTTTDNYIAQGK | 57.62 | 4 | |
| Q7Z2T5 | 822.37 | 2 | TTDDTTTDNYIAQGK | 54.36 | 5 |
Fig 4Proteins that could affect the life-cycle of α7-nAChRs.
A total of twenty-one identified proteins have functions that could affect the life-cycle of the α7-nAChR, e.g., receptor biogenesis, modulation of intracellular and plasma-membrane expressed receptor pools, as well as receptor turnover, autophagy, or apoptosis related. These proteins are grouped based on their reported cellular compartment localization. The activity of these proteins may be localized to the endoplasmic reticulum (A), the Golgi complex (B), or the cytosol (C&D). Cytosolic proteins can either be involved in the mobilization of internal pools of α7-nAChRs through kinase and phosphatase activity (C) or be associated with protein turnover, autophagy, and apoptosis-related processes (D).