| Literature DB >> 32425766 |
Enora Moutin1, Anne-Laure Hemonnot1,2, Vincent Seube1,2, Nathalie Linck1,2, François Rassendren1,2, Julie Perroy1, Vincent Compan1,2.
Abstract
Neuronal hippocampal cultures are simple and valuable models for studying neuronal function. While embryonic cultures are widely used for different applications, mouse postnatal cultures are still challenging, lack reproducibility and/or exhibit inappropriate neuronal activity. Yet, postnatal cultures have major advantages such as allowing genotyping of pups before culture and reducing the number of experimental animals. Herein we describe a simple and fast protocol for culturing and genetically manipulating hippocampal neurons from P0 to P3 mice. This protocol provides reproducible cultures exhibiting a consistent neuronal development, normal excitatory over inhibitory neuronal ratio and a physiological neuronal activity. We also describe simple and efficient procedures for genetic manipulation of neurons using transfection reagent or lentiviral particles. Overall, this method provides a detailed and validated protocol allowing to explore cellular mechanisms and neuronal activity in postnatal hippocampal neurons in culture.Entities:
Keywords: culture; hippocampus; lentivirus; neurons; postnatal; transduction; transfection
Year: 2020 PMID: 32425766 PMCID: PMC7204911 DOI: 10.3389/fnsyn.2020.00019
Source DB: PubMed Journal: Front Synaptic Neurosci ISSN: 1663-3563
FIGURE 3Neuronal morphology and activity in hippocampal culture growth in BrainPhys-containing CM– media. (A) Phase contrast images showing the development of a postnatal hippocampal culture. (B) Neuronal density of hippocampal culture from P1 (left panel) or P3 (right panel) pups growth in either Neurobasal-A or BrainPhys media. Cultures were fixed at DIV 7 or DIV 14 and neurons stained using NeuN antibody before quantification. Results represent mean + SEM, N = 3 independent cultures from P1 pups and P3 pups. At least 357 neurons were analyzed for each condition. Two way ANOVA corrected for multiple comparisons by controlling the False Discovery Rate (FDR). Ns indicates q-value > 0.05. (C) mEPSCs frequency and amplitude recorded between DIV 13 and 15 from hippocampal culture maintained in either Neurobasal-A or BrainPhys-containing CM–. Results represent mean + SEM, N = 27 and 31 cells were recorded for Neurobasal and BrainPhys condition respectively from four independent cultures done with pups aged between P1 and P2. Mann–Whitney test, **, *** indicate p-value < 0.01, p-value < 0.001, respectively. (D) Immunocytochemistry images from DIV 14 cultures stained with antibodies against the presynaptic marker Synaptophysin (Red), the dendritic marker MAP2 (Blue), the post-synaptic marker Homer1 (green) and Hoescht (Gray) in culture maintained in BrainPhys or Neurobasal-A medium. (E) Quantification of co-localizing puncta using the ImageJ plug-in called Synapse counter. For (D,E), images were acquired using EC Plan-Neofluar 40X/1.30 and 100X/1.30 objectives respectively. For (E), results represent mean + SEM, n ≥ 12 fields from N = 3 independent cultures from P1 pups. Unpaired t-test, ns indicates p-value > 0.05.
FIGURE 1Overview of the protocol for mouse postnatal hippocampal culture. (A) Hippocampus dissection. After decapitation (a–c), make a midline incision of the skin on the top of the head, from the back to the extreme rostral region of the brain. (d) Do exactly the same cutting along the skull moving forward slowly with the small scissors to avoid damaging the brain. Make two small incisions in direction of each eye and remove the skull. (e) Using a small spatula, gently remove the brain and place it into Hibernate medium. (f) Using small curved scissors, carefully separate the 2 hemispheres and ‘unroll’ the cortex from one hemisphere to make the hippocampus visible (g). (h) Using small scissors remove the hippocampus. Black scale bar = 5 mm, white scale bar = 1 mm. (B) Schematic representation of the enzymatic and mechanical dissociation of cells and plating. Only two hippocampi are represented but this protocol can be applied for up to 16 hippocampi per tube. Hippocampi were collected in Hibernate-A medium, digested using papain at 37°C for 10 min and for five additional minutes in presence of DNase1. After stopping papain activity by adding CM+ media, the tissue was subjected to three rounds of mechanical dissociation using 1,250 μL filtered tips. After adding dissociated tissue on top of a 4% BSA cushion and centrifugation for 7 min at 300 g, cells were resuspended in CM+ media and seeded on pre-coated dishes.
Reagents, consumables, dissection tools, and antibodies.
| Reagents | Antibiotics (penicillin and streptomycin) | Gibco, 15140-122 | |
| B27 supplement | Gibco, 17504044 | ||
| Bovine serum albumin (BSA) | Sigma-Aldrich, A7906-50G | ||
| BrainPhys | Stemcell Technology, 05790 | For culture maintenance | |
| Cytosine β- | Sigma-Aldrich, C6645 | To curb glia proliferation | |
| DMEM high glucose with Glutamax | Gibco, 61965058 | ||
| DNase I | Roche, 10104159000 | ||
| Fetal bovine serum (FBS) | Gibco, 10270105 | Has to be heat inactivated for 30 min at 56°C prior to use | |
| Glutamax | Gibco, 35050037 | ||
| Glutamine | Gibco, 25030-023 | ||
| Hepes buffer 1M pH7.2 to 7.4 | Gibco, 15630-055 | ||
| Hibernate-A | Gibco, A12475-00 | For culture dissection | |
| Laminin | Sigma-Aldrich, L2020 | For coating | |
| Lipofectamine 2000 | Invitrogen, 11668019 | For transfection | |
| Neurobasal-A W/O Phenol red | Gibco, 12349015 | For culture plating | |
| Papain | Sigma-Aldrich, P4761 | For cellular dissociation | |
| Polyethylene glycol (PEG) | Sigma-Aldrich, 81253-250G | For lentiviral production | |
| Poly- | Sigma-Aldrich, P3654 | For coating | |
| Consumables | Conical tubes 15 mL | Falcon, CL-TFC55 | |
| Conical tubes 50 mL | Falcon, CL-TFC20 | ||
| Filter (25 mm diameter, 0.2 μm) | Pall, CL-FS1 | For papain filtration | |
| Filter (37 mm diameter, 0.2 μm) | Pall, CL-FS13 | For CM filtration | |
| Filter (33 mm diameter, 0.45 μm) | Millipore, SLHV033RS | For lentiviral production | |
| Tips (with filter) | Sorenson, 34000 | For physical dissociation | |
| Dissection tools | Dumont #7 Forceps | FST, 11271-29 | For dissection – steps 12, 15, 16 |
| Extra fine Bonn scissors straight | FST, 14084-07 | For brain dissection – steps 11, 12 | |
| Spatula | Dominique Dutscher, 037872 | For brain removal – step 13 | |
| Vannas spring scissors curved 4 mm cutting edge | FST, 15019-9 | For hippocampus dissection – step 14 | |
| Wagner scissors | FST, 14068-11 | For pup decapitation – step 10 | |
| Primary antibodies | Actin | DSHB, JLA20 | Dilution 1:2000 for WB |
| CaMKIIα | Millipore, 05-532 | Dilution 1:1000 for ICC | |
| Hoechst 33258 | Sigma-Aldrich, B2883 | Dilution at 1 μg/mL for ICC | |
| GFP | Biolabs,TP401 | Dilution 1:2000 for ICC and WB | |
| GluN1 | Synaptic systems, 114011 | Dilution 1:1000 for WB | |
| GluR2 | Sigma-Aldrich, MAB397 | Dilution 1:1000 for WB | |
| MAP2 | Sigma-Aldrich, M4403 | Dilution 1:1000 for ICC | |
| NeuN | Synaptic Systems, 266006 | Dilution 1:500 for ICC | |
| PSD95 | ABR, MA1-045 | Dilution 1:500 for ICC | |
| Prox1 | Ozyme, BLE925201 | Dilution 1:1000 for ICC | |
| RFP | MBL, PM005 | Dilution 1:2000 for ICC and WB | |
| Synaptophysin | BD Biosciences, 611880 | Dilution 1:1000 for ICC | |
| NeuN-A647 | Abcam, Ab19565 | Dilution 1:1000 for ICC | |
| GABA | Sigma, A2052 | Dilution 1:2000 for ICC | |
| Homer1 | Synaptic Systems, 160003 | Dilution 1:1000 for ICC | |
| Secondary antibodies | Donkey anti-mouse Alexa Fluor 488 | Invitrogen, A21206 | Dilution 1:1000 |
| Donkey anti-rabbit Alexa Fluor 350 | Invitrogen, A10039 | Dilution 1:1000 | |
| Goat anti-chicken Alexa Fluor 594 | Molecular Probes, A11012 | Dilution 1:1000 | |
| Goat anti-rabbit Alexa Fluor 488 | Molecular Probes, A11034 | Dilution 1:1000 | |
| Goat anti-rabbit Cy3 | Jackson Immunoresearch, 111-165-144 | Dilution 1:1000 | |
| Goat anti-mouse Cy3 | Jackson Immunoresearch, 115-165-075 | Dilution 1:1000 |
FIGURE 2Genetic manipulation of mouse postnatal hippocampal culture. (A) (left panel) Schematic representation of the main steps for transgene expression in postnatal hippocampal culture using Lipofectamine2000 as transfection reagent. To reduce cellular toxicity, 3 h after the transfection the medium from the culture dishes is replaced by a solution composed by 50% of conditioned medium collected before the transfection and 50% of fresh CM– media. (right panel) Phase contrast and fluorescence picture of neurons 24 h and 8 days after transfection with a plasmid coding for the GFP protein. (B) Overview of the protocol used to produce and purify lentiviral particles from HEK293T cells. These particles are used to transduce the cultures at DIV 6. Expression of the transgene can be detected at DIV 14 and slightly increase until DIV 21.
FIGURE 5Lentiviral approach allows fine tuning, cell-type specific gene expression. Representative immunocytochemistry images realized on cultures transduced with two genetically encoded calcium indicators (RCaMP2 or GCaMP6) and the NMDA receptor subunit NR1A fused to Venus protein. These constructs were expressed under the control of promoters specific for either neurons (CaMKIIαprom) or astrocytes (GFAPprom). Neurons and nuclei were respectively stained with anti-MAP2 antibody and Hoescht, respectively.
FIGURE 4Neuronal cell type characterization of postnatal hippocampal culture. Immunocytochemistry images (A) and quantification (B) from DIV 7 and 14 cultures stained with antibodies against the neuronal markers NeuN (Red), Prox1 (Blue), and CaMKIIα (green) in culture maintained in BrainPhys medium. Red, Blue, Green and Gray arrow heads indicate cells only NeuN+, NeuN+/Prox1+, NeuN+/CaMKIIα+ and NeuN+/CaMKIIα+/Prox1+ respectively. For (B), results represent mean + SEM, n ≥ 8 fields from N = 3 independent cultures from P1 pups and P3 pups. At least 357 neurons were analyzed for each condition. Two way ANOVA corrected for multiple comparisons by controlling the False Discovery Rate (FDR). *, *** indicate q-value < 0.05, q-value < 0.001, respectively. (C) Immunocytochemistry images from DIV 14 cultures stained with antibodies against the neuronal markers NeuN (Blue), GABA (Red), and CaMKIIα (Green) in culture maintained in BrainPhys medium. Blue, Red, and Green arrow heads indicate cells only NeuN+, NeuN+/GABA+, and NeuN+/CaMKIIα + respectively. Results represent mean + SEM, N = 3 independent cultures from P1 pups with n ≥ 4 fields per culture.
FIGURE 6Postnatal hippocampal culture is a simple model to study neuronal function. (A) Identification of the subcellular localization of proteins in neurons. After synaptosome purification, expression of endogenous (actin and GluR2) and overexpressed proteins (NLuc-YPet and LIMK-NLuc-YPet) was evaluated by immunoblot in the homogenate (H), the cytosolic fraction (C) and synaptosomes (S). Note that the N-terminal tail of LIMK1 is sufficient to target the cytoplasmic construct NLuc-YPet to dendritic spines. (B) Identification of the subcellular localization of proteins in neurons by immunocytochemistry. NLuc-YPet constructs were detected using a GFP antibody recognizing YPet. Dendritic spines were stained using antibodies against PSD-95. (C) Calcium recording using videomicroscopy. Spontaneous fluorescence variations of neurons expressing GCaMP6 following lentiviral transduction were recorded for 6 min at 0.15 Hz. Fluorescence intensity was acquired in seven neuronal cell bodies (Top panels) and in 17 different dendritic spines before and after application of 50 μM NMDA (bottom panel). (D) Calcium recording using a plate reader. Postnatal culture was seeded in 96 well plate and transduced with lentiviruses coding for GCaMP6 at DIV 7 (top panel). Fluorescence was recorded using an Infinite F500 plate reader for 15 min before and after a control (ACSF) or 50 μM NMDA (NMDA) stimulation. (E–G) Monitoring and controlling neuronal activity by light. VARNAM, a red shifted voltage indicator was used to monitor spontaneous (E) and light-induced (G) neuronal activity at 600 Hz in cells co-expressing the blue shifted channelrhodopsin CheRiff (F). Addition of 0.3 μM TTX completely abolished VARNAM -evoked fluorescence variations.
Preparation of culture media.
| Culture | Neurobasal-A | 86.5% | 43.250 |
| medium | B27 | 2% | 1 |
| + (CM+) | Glutamax | 0.25% | 0.125 |
| 0.25% – 0.5 mM | 0.125 | ||
| Antibiotics | 1% | 0.5 | |
| FBS, heat inactivated | 10% | 5 | |
| Culture | BrainPhys | 96.75% | 48.375 |
| medium | B27 | 2% | 1 |
| − (CM−) | Glutamax | 0.25% | 0.125 |
| Antibiotics | 1% | 0.5 |