| Literature DB >> 30934054 |
Leo M Hall1, Chase B Hellmer1, Christina C Koehler1, Tomomi Ichinose1.
Abstract
Purpose: Motion detection is performed by a unique neural network in the mouse retina. Starburst amacrine cells (SACs), which release acetylcholine and gamma-aminobutyric acid (GABA) into the network, are key neurons in the motion detection pathway. Although GABA contributions to the network have been extensively studied, the role of acetylcholine is minimally understood. Acetylcholine receptors are present in a subset of bipolar, amacrine, and ganglion cells. We focused on α7-nicotinic acetylcholine receptor (α7-nAChR) expression in bipolar cells, and investigated which types of bipolar cells possess α7-nAChRs.Entities:
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Year: 2019 PMID: 30934054 PMCID: PMC6738513 DOI: 10.1167/iovs.18-25753
Source DB: PubMed Journal: Invest Ophthalmol Vis Sci ISSN: 0146-0404 Impact factor: 4.799
Immunohistochemistry Antibodies and Toxins
| α-Bungarotoxin 488 | α-Subunit of nAchR | Thermo Fisher Scientific, B13422 | 1:100 | |
| α-Bungarotoxin 555 | α-Subunit of nAchR | Thermo Fisher Scientific, B35451 | AB_2617152 | 1:100 |
| α7-nAChR (extracellular) | Peptide (C) KELVKNYNPLER, amino acid residues 31–42 of rat nAChR | Alomone (Jerusalem, Israel), ANC-007, Rabbit polyclonal | AB_10659339 | 1:500 |
| Calsenilin/DREAM, clone 40A5 | Full-length GST fusion protein of human Calsenilin | EMD Millipore, 05-756, Mouse monoclonal | AB_2313634 | 1:1000 |
| ChAT | Human placental enzyme | EMD Millipore, AB144P, Goat polyclonal | AB_2079751 | 1:200 |
| HCN4 clone N114/10 | Fusion protein amino acids 1019-1108 at C-terminus of rat HCN4 | NeuroMab (Davis, CA, USA), 75-150, Mouse monoclonal | AB_2248534 | 1:200 |
| NK3R | Amino acids 410-417 of rat neurokinin3 receptor (NK3R) | Gift from Dr. Hirano, Rabbit polyclonal | AB_2314947 | 1:700 |
| PKA RIIβ | Amino acids 1-418 of human PKA RIIβ | BD Biosciences (San Jose, CA, USA), 610625, Mouse monoclonal | AB_397957 | 1:3000 |
| PKC α | Amino acids 645-672 at C-terminus of human PKC α | Santa Cruz Biotechnology (Dallas, TX, USA), sc-8393, Mouse monoclonal | AB_628142 | 1:500 |
| Synaptotagmin-2 | Zebrafish Syt2 | ZIRC (Eugene, OR, USA), znp-1, Mouse monoclonal | AB_10013783 | 1:200 |
RRID, research resource identifiers; ZIRC, Zebrafish International Resource Center.
Figure 1αBgTx-sensitive, α7-nAChRs were expressed in retinal bipolar cells. (A–C) αBgTx-conjugated with Alexa Fluor 488- (green) and Alexa Fluor 555- (magenta) stained retinal neurons, including bipolar cells. When stained together, the two colors colocalized extensively (78/78 cells colocalized, n = 3 mice). (D) The α7-nAChR antibody was verified by Western blots in retinal tissue (lane 1), in which a solid band was seen at approximately 55 kDa and 58 kDa. Retinal tissue was then preincubated with peptide antigen (lane 2) in order to test for antibody specificity. Preincubation treatment led to the removal of the expected approximately 55 kDa band. (E) αBgTx-conjugated Alexa 488-labeled cells (green), which colocalized with α7-nAChR antibody staining (magenta). Scale bar: 15 μm. Images are maximum intensity projections of multiple slice sections. INL, inner nuclear layer; IPL, inner plexiform layer; GCL, ganglion cell layer.
Figure 2Type 2, but not type 3, OFF bipolar cells possessed α7-nAChRs. (A) Type 2 bipolar cells were identified with Syt2 (green), which showed αBgTx fluorescence (magenta, 32/39 cells). (B) Type 2 bipolar cells depolarized in response to PNU282987 puff (left). Individual traces shown in gray, and average trace displayed in black. A NB-filled cell depolarized in response to PNU, which was confirmed by Syt2 staining (right). (C) HCN4-labeled type 3a (green), which were partially visualized with αBgTx fluorescence (magenta) (20/89 cells). (D) PKAIIβ-labeled type 3b bipolar cells (green), which were not labeled with αBgTx fluorescence (magenta) (0/15 cells) PKAIIβ-labeled various amacrine cells that localize along the outer border of the INL.48 Scale bar: (A–C) 10 μm, (D) 20 μm. Images are maximum intensity projections of multiple slice sections.
Figure 3Type 7, but not type 5 possessed α7-nAChRs. (A) The majority of type 5 bipolar cells did not respond to PNU puff (19/22 cells). Individual traces shown in gray, and average trace displayed in black. (B) Three of 22 type 5 cells depolarized in response to PNU puff. They were all with narrow-stratifying axon terminals, possibly a subset of sustained type 5 cells. (C) Gus8.4-GFP-expressing type 7 bipolar cells displayed extensive colocalization with αBgTx fluorescence (55/62 cells). (D) Type 7 cells all depolarized in response to PNU puff (6/6 cells). Recording cells were identified as type 7 by immunoreactivity with ChAT antibody and NB (right). Images are maximum intensity projections of multiple slice sections. Scale bar: (A–D) 10 μm.
Figure 4α7-nAChRs in sustained bipolar cells. (A) Using N3KR and Syt2 antibodies, type 1 bipolar cells were identified (asterisk), which were positive for NK3R (green) but negative for Syt2 (blue). αBgTx fluorescence (magenta) labeled a majority of type 1 cells (23/25 cells). (B) Type 4 bipolar cells were identified by Csen (green), which were mostly labeled with αBgTx-fluorescence (magenta, 31/38 cells). (C) Type 6 bipolar cells were recorded by whole-cell configuration. These cells were filled with NB (green) and identified with Syt2 (magenta) axon labeling. (D) RBCs, which were identified with PKC α labeling (green), did not express αBgTx-sensitive α7-nAChRs (magenta). (E) A majority of type 6 cells did not respond to PNU puff (T6). All RBCs recorded did not respond to PNU puff (RBC). Scale bar: (A–C) 10 μm, (D) 20 μm. Images are maximum intensity projections of multiple slice sections.
Types of Bipolar Cells Exhibited a7-nAChRs