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Fine Science Tools gas-fluid interface recording chamber
Gas Fluid Interface Recording Chamber, supplied by Fine Science Tools, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/gas-fluid+interface+recording+chamber/gas+fluid+interface+recording+chamber/pm39722289-53-9-16
Average 90 stars, based on 1 article reviews
gas-fluid interface recording chamber - by Bioz Stars, 2026-09
90/100 stars

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Article Title: Ovariectomy reduces cholinergic modulation of excitatory synaptic transmission in the rat entorhinal cortex.
Article Snippet: Slices were placed on a nylon net in a gas-fluid interface recording chamber (Fine Science Tools) and perfused at 2.0 ml/min with the upper surfaces exposed to humidified 95% O2, 5% CO2 atmosphere.

Article Title: Progesterone and allopregnanolone facilitate excitatory synaptic transmission in the infralimbic cortex via activation of membrane progesterone receptors.
Article Snippet: Estrogens and progesterone can have rapid effects on neuronal function and can modify the use of spatial navigation strategies dependent upon the prefrontal cortex, striatum, and hippocampus.. Here, we assessed the effects of 17β-estradiol (E2), progesterone, and its metabolite allopregnanolone, on evoked excitatory postsynaptic potentials in the infralimbic region of the female rat prefrontal cortex.. Field excitatory postsynaptic potentials (fEPSPs) evoked by stimulation of layer I were first characterized by recording responses at multiple depths between the cortical surface and the underlying white matter.

Article Title: G protein-coupled estrogen receptor-1 enhances excitatory synaptic responses in the entorhinal cortex.
Article Snippet: Funding information Natural Sciences and Engineering Research Council of Canada, Grant/Award Number: 2020-04617 Abstract Activation of estrogen receptors is thought to modulate cognitive function in the hippocampus, prefrontal cortex, and striatum by affecting both excitatory and inhibitory synaptic transmission.. The entorhinal cortex is a major source of cortical sensory and associational input to the hippocampus, but it is unclear whether either estrogens or progestogens may modulate cognitive function through effects on synaptic transmission in the entorhinal cortex.. This study assessed the effects of the brief application of either 17-β estradiol (E2) or progesterone on excitatory glutamatergic synaptic transmission in the female rat entorhinal cortex in vitro.

Article Title: Ovariectomy reduces cholinergic modulation of excitatory synaptic transmission in the rat entorhinal cortex
Article Snippet: Slices were placed on a nylon net in a gas-fluid interface recording chamber (Fine Science Tools) and perfused at 2.0 ml/min with the upper surfaces exposed to humidified 95% O 2 , 5% CO 2 atmosphere.

Article Title: NMDA receptor-dependent long-term synaptic depression in the entorhinal cortex in vitro.
Article Snippet: Kourrich, Saı̈d and C. Andrew Chapman.. NMDA receptor-dependent long-term synaptic depression in the entorhinal cortex in vitro.. J Neurophysiol 89: 2112–2119, 2003.

Article Title: Receptor protein tyrosine phosphatase sigma regulates synapse structure, function and plasticity.
Article Snippet: Acute hippocampal slices (400 lm) were cut using a vibratome (Leica Microsystems, GmbH, Germany) and placed on a nylon net in a gas-fluid interface recording chamber (Fine Science Tools, Foster City, CA, USA) in which oxygenated ACSF was perfused at 1.0–2.0 ml/min at 32 C. Slices were allowed to recover 1 h before recordings.



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Fine Science Tools gas-fluid interface recording chamber
Gas Fluid Interface Recording Chamber, supplied by Fine Science Tools, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/gas-fluid+interface+recording+chamber/gas+fluid+interface+recording+chamber/pm39722289-53-9-16
Average 90 stars, based on 1 article reviews
gas-fluid interface recording chamber - by Bioz Stars, 2026-09
90/100 stars
  Buy from Supplier

90
Harvard Bioscience fluid–gas interface recording chamber
(A) Computational current-flow model. A.1, Temporal Interference (TI) stimulation via two pairs of electrodes on scalp. Current flows between FT7 and P7 on the left and between FT8 and P8 on the right hemisphere. A.2 Spatial distribution of electric field magnitude in posterior/anterior direction across brain. A.3, Spatial distribution of amplitude-modulation across the brain in posterior/anterior direction. (B) Rodent in vitro model of gamma oscillations. B.1, Experimental setup: spatially uniform electric field was applied across hippocampal slice in an <t>interface</t> <t>chamber.</t> <t>Recording</t> of gamma oscillation in CA3a region relative to an iso-potential electrode in the bath. B.2 and B.3, Gamma oscillation induced by 20 μM carbachol in vitro and its stability in power and frequency. (C) Computational model of gamma oscillations. C.1, The network model has excitatory and inhibitory neurons (1050 neurons, 800 excitatory) that are sparsely connected with varied synaptic weights. C.2, Simulated gamma oscillation in the network model by averaging postsynaptic currents across the network. C.3, Raster-plot representing the firing activity of excitatory (red) and inhibitory (blue) neurons during induced gamma oscillation.
Fluid–Gas Interface Recording Chamber, supplied by Harvard Bioscience, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/gas-fluid+interface+recording+chamber/fluid+gas+interface+chamber/pmc09382891-38-9-16
Average 90 stars, based on 1 article reviews
fluid–gas interface recording chamber - by Bioz Stars, 2026-09
90/100 stars
  Buy from Supplier

90
Fine Science Tools gas–fluid interface recording chamber
(A) Computational current-flow model. A.1, Temporal Interference (TI) stimulation via two pairs of electrodes on scalp. Current flows between FT7 and P7 on the left and between FT8 and P8 on the right hemisphere. A.2 Spatial distribution of electric field magnitude in posterior/anterior direction across brain. A.3, Spatial distribution of amplitude-modulation across the brain in posterior/anterior direction. (B) Rodent in vitro model of gamma oscillations. B.1, Experimental setup: spatially uniform electric field was applied across hippocampal slice in an <t>interface</t> <t>chamber.</t> <t>Recording</t> of gamma oscillation in CA3a region relative to an iso-potential electrode in the bath. B.2 and B.3, Gamma oscillation induced by 20 μM carbachol in vitro and its stability in power and frequency. (C) Computational model of gamma oscillations. C.1, The network model has excitatory and inhibitory neurons (1050 neurons, 800 excitatory) that are sparsely connected with varied synaptic weights. C.2, Simulated gamma oscillation in the network model by averaging postsynaptic currents across the network. C.3, Raster-plot representing the firing activity of excitatory (red) and inhibitory (blue) neurons during induced gamma oscillation.
Gas–Fluid Interface Recording Chamber, supplied by Fine Science Tools, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/gas-fluid+interface+recording+chamber/gas+fluid+interface+recording+chamber/pm17005616-110-19-23
Average 90 stars, based on 1 article reviews
gas–fluid interface recording chamber - by Bioz Stars, 2026-09
90/100 stars
  Buy from Supplier

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(A) Computational current-flow model. A.1, Temporal Interference (TI) stimulation via two pairs of electrodes on scalp. Current flows between FT7 and P7 on the left and between FT8 and P8 on the right hemisphere. A.2 Spatial distribution of electric field magnitude in posterior/anterior direction across brain. A.3, Spatial distribution of amplitude-modulation across the brain in posterior/anterior direction. (B) Rodent in vitro model of gamma oscillations. B.1, Experimental setup: spatially uniform electric field was applied across hippocampal slice in an interface chamber. Recording of gamma oscillation in CA3a region relative to an iso-potential electrode in the bath. B.2 and B.3, Gamma oscillation induced by 20 μM carbachol in vitro and its stability in power and frequency. (C) Computational model of gamma oscillations. C.1, The network model has excitatory and inhibitory neurons (1050 neurons, 800 excitatory) that are sparsely connected with varied synaptic weights. C.2, Simulated gamma oscillation in the network model by averaging postsynaptic currents across the network. C.3, Raster-plot representing the firing activity of excitatory (red) and inhibitory (blue) neurons during induced gamma oscillation.

Journal: Brain stimulation

Article Title: Temporal interference stimulation targets deep brain regions by modulating neural oscillations

doi: 10.1016/j.brs.2020.11.007

Figure Lengend Snippet: (A) Computational current-flow model. A.1, Temporal Interference (TI) stimulation via two pairs of electrodes on scalp. Current flows between FT7 and P7 on the left and between FT8 and P8 on the right hemisphere. A.2 Spatial distribution of electric field magnitude in posterior/anterior direction across brain. A.3, Spatial distribution of amplitude-modulation across the brain in posterior/anterior direction. (B) Rodent in vitro model of gamma oscillations. B.1, Experimental setup: spatially uniform electric field was applied across hippocampal slice in an interface chamber. Recording of gamma oscillation in CA3a region relative to an iso-potential electrode in the bath. B.2 and B.3, Gamma oscillation induced by 20 μM carbachol in vitro and its stability in power and frequency. (C) Computational model of gamma oscillations. C.1, The network model has excitatory and inhibitory neurons (1050 neurons, 800 excitatory) that are sparsely connected with varied synaptic weights. C.2, Simulated gamma oscillation in the network model by averaging postsynaptic currents across the network. C.3, Raster-plot representing the firing activity of excitatory (red) and inhibitory (blue) neurons during induced gamma oscillation.

Article Snippet: After 60 min, slices were then transferred to a fluid–gas interface recording chamber (Hass top model, Harvard Apparatus, Holliston MA, USA) at 34 °C.

Techniques: In Vitro, Activity Assay