Summary

समाई माप पैच दबाना और Ca 2 +</supरेटिना स्लाइसें में एकल तंत्रिका टर्मिनल पर इमेजिंग

Published: January 19, 2012
doi:

Summary

यहाँ हम अगर एम्बेडेड रेटिना स्लाइस कि इलेक्ट्रोफिजियोलॉजी और सीए 2 + इमेजिंग के लिए उपयुक्त हैं की तैयारी के लिए एक प्रोटोकॉल का वर्णन. यह विधि एक एकल presynaptic तंत्रिका टर्मिनलों के प्रत्यक्ष पैच दबाना रिकॉर्डिंग का उपयोग रेटिना microcircuits में रिबन प्रकार synapses का अध्ययन करने के लिए अनुमति देता है.

Abstract

Visual stimuli are detected and conveyed over a wide dynamic range of light intensities and frequency changes by specialized neurons in the vertebrate retina. Two classes of retinal neurons, photoreceptors and bipolar cells, accomplish this by using ribbon-type active zones, which enable sustained and high-throughput neurotransmitter release over long time periods. ON-type mixed bipolar cell (Mb) terminals in the goldfish retina, which depolarize to light stimuli and receive mixed rod and cone photoreceptor input, are suitable for the study of ribbon-type synapses both due to their large size (~10-12 μm diameter) and to their numerous lateral and reciprocal synaptic connections with amacrine cell dendrites. Direct access to Mb bipolar cell terminals in goldfish retinal slices with the patch-clamp technique allows the measurement of presynaptic Ca2+ currents, membrane capacitance changes, and reciprocal synaptic feedback inhibition mediated by GABAA and GABAC receptors expressed on the terminals. Presynaptic membrane capacitance measurements of exocytosis allow one to study the short-term plasticity of excitatory neurotransmitter release 14,15. In addition, short-term and long-term plasticity of inhibitory neurotransmitter release from amacrine cells can also be investigated by recordings of reciprocal feedback inhibition arriving at the Mb terminal 21. Over short periods of time (e.g. ~10 s), GABAergic reciprocal feedback inhibition from amacrine cells undergoes paired-pulse depression via GABA vesicle pool depletion 11. The synaptic dynamics of retinal microcircuits in the inner plexiform layer of the retina can thus be directly studied.

The brain-slice technique was introduced more than 40 years ago but is still very useful for the investigation of the electrical properties of neurons, both at the single cell soma, single dendrite or axon, and microcircuit synaptic level 19. Tissues that are too small to be glued directly onto the slicing chamber are often first embedded in agar (or placed onto a filter paper) and then sliced 20, 23, 18, 9. In this video, we employ the pre-embedding agar technique using goldfish retina. Some of the giant bipolar cell terminals in our slices of goldfish retina are axotomized (axon-cut) during the slicing procedure. This allows us to isolate single presynaptic nerve terminal inputs, because recording from axotomized terminals excludes the signals from the soma-dendritic compartment. Alternatively, one can also record from intact Mb bipolar cells, by recording from terminals attached to axons that have not been cut during the slicing procedure. Overall, use of this experimental protocol will aid in studies of retinal synaptic physiology, microcircuit functional analysis, and synaptic transmission at ribbon synapses.

Protocol

1. बाहरी और आंतरिक समाधान 10x शेयर समाधान से टुकड़ा करने की क्रिया समाधान (कम कैल्शियम) तैयार है और MgCl 2, 2 CaCl, और डी ग्लूकोज दैनिक जोड़ने . 119 NaCl, 2.5 KCl, 3.2 2 MgCl, 0.25 CaCl 2, 12 डी ग्लूकोज, 0.2 एल ascorbic एसिड, 12 HEPES: अंतिम 1x स?…

Discussion

हमारे प्रोटोकॉल में एक महत्वपूर्ण और कठिन कदम अगर समाधान (3.4 प्रोटोकॉल) में रेटिना के टुकड़े के हस्तांतरण है. यह आवश्यक है ध्यान से शीशे और रेटिना टुकड़ा से अवशिष्ट टुकड़ा समाधान हास्य हटा दें और ?…

Declarações

The authors have nothing to disclose.

Acknowledgements

हम अगर एम्बेडेड रेटिना टुकड़ा तैयारी का अपने तरह के स्पष्टीकरण के लिए धन्यवाद डा. फ्रेड Rieke जब हम हमारी प्रयोगशाला में प्रोटोकॉल का उपयोग शुरू कर दिया. हम भी योजनाबद्ध सिंहावलोकन और डीआरएस के चित्रण के लिए लोरी Vaskalis धन्यवाद. Veeramuthu बालकृष्णन और उपयोगी टिप्पणी के लिए पाठ और वीडियो पर Soyoun चो. यह काम एक Nei-NIH RO1 अनुदान द्वारा समर्थित किया गया था, और भी आंशिक रूप से कोरिया रिसर्च फाउंडेशन अनुदान कोरियाई सरकार द्वारा वित्त पोषित द्वारा समर्थित [KRF-2008-357-E00032]

Materials

Name of the reagent Company Catalogue number Comments
Low gelling-temperature agar Sigma A0701 Agarose type VII-A
Patch pipette World Precision Instruments 1B150F-4 Thick-walled (1.5 mm outer diameter) borosilicate glass
Vertical puller Narishige PP830  
Dental wax Cavex    
Spring scissors Fine Science Tools 15003-08  
45° angled fine tip forceps Fine Science Tools 11251-35  
Razor blade Personna   Double-edged, cleaned with 70% ethanol and H2O
Cylindrical tube Fisherbrand 03-338-1B Polyethylene sample vials 2.5 ml
Hyaluronidase Sigma H6254  
Vibratome slicer Leica VT1000S or VT1200S  
Upright microscope Olympus BX51WI  
60x water-immersion objective Olympus LUMPlanFl NA 0.90
CCD camera Sony XC-75  
Camera controller Hamamatsu C2400  
Monitor Sony   13” black and white monitor
Syringe filter Nalgene   0.2 μm
Micromanipulator Sutter Instrument MPC-200  
Lock-in amplifier HEKA   EPC-9/10 amplifiers have software emulation
Spinning disk laser confocal microscope Yokogawa CSU-X1 Live cell imaging after patch clamp whole cell recording
Slidebook software Intelligent Imaging Instruments (3i)   Imaging data acquisition and analysis
Paraformaldehyde Sigma P6148  
Phosphate buffer solution GIBCO 70013  
Superfrost slide Fisher Scientific   Slide glass
Anti-fading agents Biomeda corp.    
Confocal laser-scanning microscope Carl Zeiss LSM 710 Imaging of fixed tissue
Spatula Fisherbrand 21-401-25B  
Manuel vertical slicer Narishige ST-20  
Oregon Green 488 BAPTA-1 Invitrogen O-6806 Ca2+ sensitive fluorescent dye
Alexa Fluor 555 Hydrazide Invitrogen A-20501MP Fluorescent dye

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Kim, M., Vickers, E., von Gersdorff, H. Patch-clamp Capacitance Measurements and Ca2+ Imaging at Single Nerve Terminals in Retinal Slices. J. Vis. Exp. (59), e3345, doi:10.3791/3345 (2012).

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