Showing posts with label Hippocampal Neurons. Show all posts
Showing posts with label Hippocampal Neurons. Show all posts

Monday, April 29, 2013

Neuron-Glial Cultures-Setting a Higher Bar!

Improved Methods for Long Term, High Denisty Cultures
 
Dr. Randen Patterson and his team at UC Davis have developed new culturing techniques using our e18 Rat Primary Hippocampal Neurons. They have developed a protocol that allows for culturing of E18 hippocampal neurons at high densities for more than 120 days. These cultured hippocampal neurons are (i) well differentiated with high numbers of synapses, (ii) anchored securely to their substrate, (iii) have high levels of functional connectivity, and (iv) form dense multi-layered cellular networks. We propose that our culture methodology is likely to be effective for multiple neuronal subtypes–particularly those that can be grown in Neurobasal/B27 media. This methodology presents new avenues for long-term functional studies in neurons. This is good news indeed: Todd GK, Boosalis CA, Burzycki AA, Steinman MQ, Hester LD, et al. (2013) Towards Neuronal Organoids: A Method for Long-Term Culturing of High-Density Hippocampal Neurons. PLoS ONE 8(4): e58996. doi:10.1371/journal.pone.0058996.
 
Protocol Highlights: 
Substrate Preparation
1. On the day of plating, prepare 25 mm coverslips by removing them from 70% ethanol storage solution and propping them up at an angle in each well of a 6-well culture plate to allow drying. [No more than 5 plates (30 coverslips) should be dried simultaneously for 15–25 minutes in culture hood to avoid over-drying.]
2. Once dry, shake slips down flat into their respective wells and coat with 1 mL 0.1% poly-D-lysine, taking care to form a liquid meniscus on each slip. Carefully transfer coverslips into incubator, taking care to preserve meniscus.
3. Incubate for 1 hr at 37°C. [Keeping poly-D-lysine meniscus on top of coverslip is important; this serves to avoid poly-D-lysine coating under coverslip surface that may lead to problematic flotation of coverslip.] After incubation, remove poly-D-lysine and rinse each coverslip three times with 2 mL sterile deionized water. Take care to ensure coverslips do not completely dry at any point during the rinse. After the third and final rinse, leave coverslips in 2 mL sterile deionized water for at least 1 hr. Remove water just before plating, again, make sure to avoid over-drying. [This critical step requires attention. Take care to aspirate off all sterile water remaining from the final rinse, but also use caution as not to over-dry the coverslips. Ultimately, the coverslip must be mostly dry as to allow for the meniscus formation during plating (Fig. 1, Step 12), whereas over-drying can result in the neurons peeling off the glass coverslips days to weeks after plating.]
Fig 1: Neuron-Glial Culturing Steps
Preparation of Isolated Neurons (Numbers in Fig. 1 correspond to numbers below).
1. Store tissue at 4°C until ready to use. If dissecting your own cultures, upon isolation of the tissue, store in an appropriate storage media.
2. When ready to plate, make 2 mL of enzymatic solution without B27. In our case, we used Hibernate E-Ca, containing 4 mg (2 mg/mL) of papain. If making your own solution, use a commercially available papain dissociation kit. Make sure to sterile filter solution with 0.2 micron filter after adding papain if source of enzyme is not sterile.
3. Remove the storage media from the dissected tissue and transfer into sterile 15 mL screw-cap tube; be careful not to disturb or remove tissue from original tube. Save the storage media, do not discard.
4. Add 2 mL of media made in Step 2 to tissue (in our case, Hibernate E-Ca containing 2 mg/mL of papain). Incubate for 35 min at 37°C. [Be sure to add Hibernate E-Ca containing papain slowly as to avoid disturbing tissue.]
5. Remove enzymatic solution from tissue, again, take care not to disturb or remove tissue. Add back 1 mL of storage media saved in 15 mL tube.
6. Using a 1 mL pipettor with a sterile plastic pipette tip (tissue can adhere to glass pipettes), aspirate the tissue with the medium into the pipette and immediately dispense contents back into same container. Take care not to create bubbles. [This is another critical step that requires attention. Take care to make sure pipette tip remains in a stable position (as shown in Fig. 1, Step 6). Maintain slow, steady speed when both drawing in and re-dispensing media containing tissue.]
7. Repeat this trituration step 10–12 times or until most all the tissue is dissociated and the cells are dispersed. [Under close examination cell dispersion is highly visible. Stop pipetting immediately upon cell dispersion.]
8. Slowly transfer contents of the tissue tube into a new sterile 15 mL screw-cap tube.
9. Use the remainder of storage medium saved in Step 3 and rinse the interior of the tissue tube before adding it to the sterile 15 mL screw cap tube containing dispersed cells from step 7. [This step helps ensure minimal wastage, as any remaining cells should be saved with this extra rinse.]
10. Spin dispersed cells at 1,100 rpm (200Xg) for 1 min.
11. Discard the supernatant while being careful not to remove any of the cells from cell pellet.
12. Flick tube a few times to loosen the cell pellet. Re-suspend pellet in 2.4 mL of pre-warmed B27/Neurobasal/0.5 mM glutamine medium. Re-suspend by gently pipetting up and down. For E18 Hippocampus, medium includes 25 µM glutamate.
13. Plate cells within a meniscus (approx. 10 mm diameter) at a minimum of 40 µL per 25 mm coverslip. Take care not to disturb meniscus. [Periodically pipette up and down throughout plating process (no more than once every plate per 6 coverslips) to help maintain equal cell density. Again, plating with meniscus formation is critical.]
14. Incubate plated cells at 37°C with 5% CO2 and/or 9% or 20% oxygen for 1 hr.
15. Add 1.5 mL per well of pre-warmed 1:1 ACM/NbActiv4. [Slow and steady media addition rate and proper pipette position are necessary for successful plating density consistency. Position pipette tip at 45° angle along middle of 6-well interior sidewalls, dispense 1.5 mL as slowly and steadily as possible (see Steps 1–14).]
16. Incubate cells at 37°C with 5% CO2 and/or 9% or 20% oxygen.
17. Add Cytosine β-D-arabinofuranoside (Ara-C) to a final concentration of 5 µM, 5–6 days after plating to curb glial proliferation. [Remove 1/3 of media from each well and replace with equal volume containing final concentration of Ara-C]
18. After 4 days or longer, neurons are well differentiated. If further culture is desired, change 1/3 of medium with fresh, pre-warmed 1:1 ACM/NbActiv4 every 7–8 days.
Images: 40X Confocal Images of 30 DIV Hippocampal Cultures. Immunofluorescence detection of MAP-2 (green) and GFAP (red) in 30 DIV (A–C) cultured E18 hippocampal cells using a 40X objective. These images (A and B) clearly depict the intimate physical contact between glia processes and dendritic arbors. Under closer examination (CI and CII), it is clear that the dendrites have grown both bellow (blue arrows) and above (white arrows) glial processes, forming a highly interconnected three-dimensional network by 30 DIV. doi:10.1371/journal.pone.0058996.g004.
All Primary Neuron Assay Customer Publications
 
Related Content: If you have any questions on optimizing your cell cultures, do not hesitate to contact me @ pshuster@neuromics.com or 612-801-1007

Monday, December 31, 2012

Live Cell Imaging

My friends at Essen Bioscience are taking live cell imaging to new heights. I previously posted their neurite outgrowth solutions (hippcampal neurons).
In this posting, I would like share highlights from the December 2012 issue of "Genetic and Biotechnology News": Essen BioScience’s IncuCyte ZOOM™(live cell imaging in your incubator) and CellPlayer™ reagents enable you to overcome the limitations of static cell based assays. The solutions enable the acquisition, analysis, and quantification of images from living cells that remain unperturbed by the detection method, allowing for repeated measures of cell biology over long periods of time, from days to weeks. This is true Live Content Imaging.

Example: Real-Time Cell Counting in Mixed Cultures.
Cell-based models composed of more than one cell type in the same culture are increasingly recognized as more biologically relevant than monocultures. For example, a recent cancer study illustrated that some stromal cell types confer resistance to tumor cells in coculture, proposing this as a possible mechanism
of tumor resistance in the clinic.
Integrated image processing algorithms provided an independent nuclear count of both cell types continuously in time. The combined attributes of this approach can be used to better elucidate the mechanism and timing of drug responses on cell proliferation in biologically relevant, mixed culture systems.

Capabilities extend to a wide range of other phenotypic assays, including cell death, angiogenesis, neurite dynamics, and cell migration and invasion.

These solutions are have the ability to save time and drive costs out of the drug discovery process. I will keep you posted.

Thursday, April 26, 2012

Primary Hippocampal Neurons Performing!

I advertise our Primary Neurons and Astrocytes as being easy to culture, grow and maintain. We confirm this via the data/images our customers generously share and the many publications referencing use of the cells.

I would like to thank George Kenneth Todd (Patterson Lab at UC Davis) for these wonderful images of our e18 Primary Rat Hippocampal Neurons. These were taken at day 67!


Prior to staining, the cells were treated with Wnt5 for 2 min, then Wnt5 + Wnt3 for an additional 2 min during Calcium Imaging experiments. The cells were then fixed and stained for IP3R (green), Frizzled2 (blue), and B-Catenin (red), and the confocal images were captured at 10x. Notice the parallel neurites formation in image 3.


For staining culture options, check out our neuron-glial-astrocyte markers.

Monday, June 20, 2011

Transfection/Infection of Primary Neurons

Gene Expression Analysis of Neurons is an important tools in basic research and the study of neuropathologies. At the Neuromics' blog: "siRNA, DsiRNA and Plasmid Transfection Efficiency", I have posted many examples of successful tarnsfection of primary neurons and related cells using both our Transfection Kits/Reagents and others.

The other puzzle piece for these studies is having a fresh, pure and easy to use source of cells. Here, Neuromics has many options. These primary neurons and neural progenitors are widely referenced in key publications. Applications referenced include: transfection, pharmacology, electrophysiology, immunocytochemistry, and neuronal development studies.

This posting features infection of our e18 Primary Rat Combined Hippocampus, Cortex, and Ventricular Neurons using Nipah virus related components and HeV pseudotyped virions

Aparna Talekar, Antonello Pessi, and Matteo Porotto. Infection of primary neurons mediated by Nipah virus envelope proteins: Role of host target cells in antiviral action. J. Virol. doi:10.1128/JVI.00452-11.

Abstract: We have previously described heterotypic peptides from parainfluenza virus that potently inhibit Nipah virus in vitro, but are not efficacious in vivo. By contrast, our second-generation inhibitors, featuring a cholesterol moiety, are also efficacious in vivo. The difference between in vitro and in vivo results led us to investigate the basis for this discrepancy. Here we compare the activity of the compounds in standard laboratory cells and in cells relevant to the natural tropism of Nipah virus, i.e. primary neurons, and show that while our first generation inhibitors are poorly active in primary neurons, the cholesterol-conjugated compounds are highly potent. These results highlight the advantage of evaluating antiviral potency in cells relevant to natural host target tissue.

Customer Data: Transfection of functional HeV glycoproteins and infection with HeV pseudotyped virions.In order to establish the feasibility of carrying out the proposed experiments in primary neurons, we show (figure ) that our assays are amenable to use in primary neurons. In the experiment, Combined Hippocampus, Cortex, and Ventricular -E18 (Neuromics) were plated, and at 3 days were transfected with plasmids encoding HeV G/F as well as YFP. On the following day, these cells were infected with HeV or VSV pseudotyped viruses bearing RFP. In the figure, (A) the phase contrast photos show the differentiated neurons; (B) upon excitation for RFP, the red fluorescence indicates neurons infected by HeV pseudotyped virions; (C) upon excitation for YFP, and the green fluorescence shows the efficiency of transfection in neurons. This experiment indicates that the proposed experiments can be carried out in primary neurons, which are transfectable and infectable in our systems, and thus supports all the proposed aims. Data Courtesy of Dr. Matteo Porotto, Weill Cornell Medical College. Larger Image

We will continue to keep you updated.

Tuesday, December 29, 2009

Tuj-1-Neuronal Differentiation Marker

Our Tuj-1 antibodies are widely used and frequently referenced in customer publications. They are proven markers for Neural Progenitor and Neuronal Differentiation. Here's the latest reference:


...Tuj 1 (Neuron-specific class III beta-tubulin)-Mouse (MO15013, Neuromics Antibodies, Edina, MN)...

Immunofluorescence Method:

Cells grown on coverslips were fixed for 5 min in 4% paraformaldehydecontaining 4% sucrose in phosphate buffer saline (PBS) at 37ºC. Cells were then permeabilized with 0.2% Triton X-100 in PBS during 5 min at room temperature. After blocking (5% bovine serum albumin in PBS for 1 h), cells were incubated with the corresponding primary antibodies, and immunoreactivity was detected with the suitable fluorophore-conjugated secondary antibody before mounting on slides with Mowiol4-88 (Harland Co., UK). Confocal images were acquired using an inverted Leica TCS SP5 laser confocal microscope with a 63X Plan- Achromatic oil immersion objective and processed with LAS AF Leica Application Suite and Adobe Photoshop CS2 (Adobe Systems
Inc., CA). All images correspond to the projection of sections from a ~50μm z-stack, except for colocalization analysis where they correspond to 0.5-0.7μm single sections.

Image: Rat hippocampal neurons were fixed at 1.5 DIV and immunostained for the neuronal marker βIII-Tubulin/Tuj1 (blue).