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90
Millar Inc cultured cgns
Properties of IK(SO) in <t>CGNs.</t> A, Current traces taken from granule cells in the culture preparation (i), the wild-type slice preparation at P15 (ii) and P35 (iii), and a TASK-1 KO (-/-) slice preparation at P47 (iv). In each case, the holding potential was ramped from -20 to -160 mV and then maintained at -20 mV for 1 min. Note the absence of a slowly <t>inactivating</t> <t>component</t> in the data taken from a cultured granule cell (i). In the presence of this slowly inactivating current, IK(SO) was measured after the holding potential had been clamped at -20 mV for at least 1 min to avoid contamination by this conductance. B, Effect of altering external K+ concentration on the reversal potential of IK(SO). The current-voltage plot shows three traces recorded during a voltage-ramp protocol performed on the same adult wild-type granule cell. The predicted reversal potential, calculated from the Nernst equation, is marked with an open circle. C, Plot to compare the observed change in reversal potential (black filled circles) with the predicted values (open gray circles) calculated from the Nernst equation. This experiment illustrates that IK(SO) in CGNs is mediated by a pure K+ conductance. As expected from previous studies, this noninactivating K+ conductance is present in both the culture and the acute slice preparation.
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Mathis Instruments Ltd thermal conductivity and thermal effusivity testing system tc-30
Properties of IK(SO) in <t>CGNs.</t> A, Current traces taken from granule cells in the culture preparation (i), the wild-type slice preparation at P15 (ii) and P35 (iii), and a TASK-1 KO (-/-) slice preparation at P47 (iv). In each case, the holding potential was ramped from -20 to -160 mV and then maintained at -20 mV for 1 min. Note the absence of a slowly <t>inactivating</t> <t>component</t> in the data taken from a cultured granule cell (i). In the presence of this slowly inactivating current, IK(SO) was measured after the holding potential had been clamped at -20 mV for at least 1 min to avoid contamination by this conductance. B, Effect of altering external K+ concentration on the reversal potential of IK(SO). The current-voltage plot shows three traces recorded during a voltage-ramp protocol performed on the same adult wild-type granule cell. The predicted reversal potential, calculated from the Nernst equation, is marked with an open circle. C, Plot to compare the observed change in reversal potential (black filled circles) with the predicted values (open gray circles) calculated from the Nernst equation. This experiment illustrates that IK(SO) in CGNs is mediated by a pure K+ conductance. As expected from previous studies, this noninactivating K+ conductance is present in both the culture and the acute slice preparation.
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Mathis Instruments Ltd hot disktmtm
Properties of IK(SO) in <t>CGNs.</t> A, Current traces taken from granule cells in the culture preparation (i), the wild-type slice preparation at P15 (ii) and P35 (iii), and a TASK-1 KO (-/-) slice preparation at P47 (iv). In each case, the holding potential was ramped from -20 to -160 mV and then maintained at -20 mV for 1 min. Note the absence of a slowly <t>inactivating</t> <t>component</t> in the data taken from a cultured granule cell (i). In the presence of this slowly inactivating current, IK(SO) was measured after the holding potential had been clamped at -20 mV for at least 1 min to avoid contamination by this conductance. B, Effect of altering external K+ concentration on the reversal potential of IK(SO). The current-voltage plot shows three traces recorded during a voltage-ramp protocol performed on the same adult wild-type granule cell. The predicted reversal potential, calculated from the Nernst equation, is marked with an open circle. C, Plot to compare the observed change in reversal potential (black filled circles) with the predicted values (open gray circles) calculated from the Nernst equation. This experiment illustrates that IK(SO) in CGNs is mediated by a pure K+ conductance. As expected from previous studies, this noninactivating K+ conductance is present in both the culture and the acute slice preparation.
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m-Tec Mathis Technik gmbh clearmix
Properties of IK(SO) in <t>CGNs.</t> A, Current traces taken from granule cells in the culture preparation (i), the wild-type slice preparation at P15 (ii) and P35 (iii), and a TASK-1 KO (-/-) slice preparation at P47 (iv). In each case, the holding potential was ramped from -20 to -160 mV and then maintained at -20 mV for 1 min. Note the absence of a slowly <t>inactivating</t> <t>component</t> in the data taken from a cultured granule cell (i). In the presence of this slowly inactivating current, IK(SO) was measured after the holding potential had been clamped at -20 mV for at least 1 min to avoid contamination by this conductance. B, Effect of altering external K+ concentration on the reversal potential of IK(SO). The current-voltage plot shows three traces recorded during a voltage-ramp protocol performed on the same adult wild-type granule cell. The predicted reversal potential, calculated from the Nernst equation, is marked with an open circle. C, Plot to compare the observed change in reversal potential (black filled circles) with the predicted values (open gray circles) calculated from the Nernst equation. This experiment illustrates that IK(SO) in CGNs is mediated by a pure K+ conductance. As expected from previous studies, this noninactivating K+ conductance is present in both the culture and the acute slice preparation.
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ATCC wheat straw hydrolysate 38 8
Properties of IK(SO) in <t>CGNs.</t> A, Current traces taken from granule cells in the culture preparation (i), the wild-type slice preparation at P15 (ii) and P35 (iii), and a TASK-1 KO (-/-) slice preparation at P47 (iv). In each case, the holding potential was ramped from -20 to -160 mV and then maintained at -20 mV for 1 min. Note the absence of a slowly <t>inactivating</t> <t>component</t> in the data taken from a cultured granule cell (i). In the presence of this slowly inactivating current, IK(SO) was measured after the holding potential had been clamped at -20 mV for at least 1 min to avoid contamination by this conductance. B, Effect of altering external K+ concentration on the reversal potential of IK(SO). The current-voltage plot shows three traces recorded during a voltage-ramp protocol performed on the same adult wild-type granule cell. The predicted reversal potential, calculated from the Nernst equation, is marked with an open circle. C, Plot to compare the observed change in reversal potential (black filled circles) with the predicted values (open gray circles) calculated from the Nernst equation. This experiment illustrates that IK(SO) in CGNs is mediated by a pure K+ conductance. As expected from previous studies, this noninactivating K+ conductance is present in both the culture and the acute slice preparation.
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Mathis Instruments Ltd hot disk™
Properties of IK(SO) in <t>CGNs.</t> A, Current traces taken from granule cells in the culture preparation (i), the wild-type slice preparation at P15 (ii) and P35 (iii), and a TASK-1 KO (-/-) slice preparation at P47 (iv). In each case, the holding potential was ramped from -20 to -160 mV and then maintained at -20 mV for 1 min. Note the absence of a slowly <t>inactivating</t> <t>component</t> in the data taken from a cultured granule cell (i). In the presence of this slowly inactivating current, IK(SO) was measured after the holding potential had been clamped at -20 mV for at least 1 min to avoid contamination by this conductance. B, Effect of altering external K+ concentration on the reversal potential of IK(SO). The current-voltage plot shows three traces recorded during a voltage-ramp protocol performed on the same adult wild-type granule cell. The predicted reversal potential, calculated from the Nernst equation, is marked with an open circle. C, Plot to compare the observed change in reversal potential (black filled circles) with the predicted values (open gray circles) calculated from the Nernst equation. This experiment illustrates that IK(SO) in CGNs is mediated by a pure K+ conductance. As expected from previous studies, this noninactivating K+ conductance is present in both the culture and the acute slice preparation.
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90
Mathis Instruments Ltd bt-01tm unit
Properties of IK(SO) in <t>CGNs.</t> A, Current traces taken from granule cells in the culture preparation (i), the wild-type slice preparation at P15 (ii) and P35 (iii), and a TASK-1 KO (-/-) slice preparation at P47 (iv). In each case, the holding potential was ramped from -20 to -160 mV and then maintained at -20 mV for 1 min. Note the absence of a slowly <t>inactivating</t> <t>component</t> in the data taken from a cultured granule cell (i). In the presence of this slowly inactivating current, IK(SO) was measured after the holding potential had been clamped at -20 mV for at least 1 min to avoid contamination by this conductance. B, Effect of altering external K+ concentration on the reversal potential of IK(SO). The current-voltage plot shows three traces recorded during a voltage-ramp protocol performed on the same adult wild-type granule cell. The predicted reversal potential, calculated from the Nernst equation, is marked with an open circle. C, Plot to compare the observed change in reversal potential (black filled circles) with the predicted values (open gray circles) calculated from the Nernst equation. This experiment illustrates that IK(SO) in CGNs is mediated by a pure K+ conductance. As expected from previous studies, this noninactivating K+ conductance is present in both the culture and the acute slice preparation.
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m-Tec Mathis Technik gmbh airless machine
Properties of IK(SO) in <t>CGNs.</t> A, Current traces taken from granule cells in the culture preparation (i), the wild-type slice preparation at P15 (ii) and P35 (iii), and a TASK-1 KO (-/-) slice preparation at P47 (iv). In each case, the holding potential was ramped from -20 to -160 mV and then maintained at -20 mV for 1 min. Note the absence of a slowly <t>inactivating</t> <t>component</t> in the data taken from a cultured granule cell (i). In the presence of this slowly inactivating current, IK(SO) was measured after the holding potential had been clamped at -20 mV for at least 1 min to avoid contamination by this conductance. B, Effect of altering external K+ concentration on the reversal potential of IK(SO). The current-voltage plot shows three traces recorded during a voltage-ramp protocol performed on the same adult wild-type granule cell. The predicted reversal potential, calculated from the Nernst equation, is marked with an open circle. C, Plot to compare the observed change in reversal potential (black filled circles) with the predicted values (open gray circles) calculated from the Nernst equation. This experiment illustrates that IK(SO) in CGNs is mediated by a pure K+ conductance. As expected from previous studies, this noninactivating K+ conductance is present in both the culture and the acute slice preparation.
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86
Hirschmann mathis dt
Properties of IK(SO) in <t>CGNs.</t> A, Current traces taken from granule cells in the culture preparation (i), the wild-type slice preparation at P15 (ii) and P35 (iii), and a TASK-1 KO (-/-) slice preparation at P47 (iv). In each case, the holding potential was ramped from -20 to -160 mV and then maintained at -20 mV for 1 min. Note the absence of a slowly <t>inactivating</t> <t>component</t> in the data taken from a cultured granule cell (i). In the presence of this slowly inactivating current, IK(SO) was measured after the holding potential had been clamped at -20 mV for at least 1 min to avoid contamination by this conductance. B, Effect of altering external K+ concentration on the reversal potential of IK(SO). The current-voltage plot shows three traces recorded during a voltage-ramp protocol performed on the same adult wild-type granule cell. The predicted reversal potential, calculated from the Nernst equation, is marked with an open circle. C, Plot to compare the observed change in reversal potential (black filled circles) with the predicted values (open gray circles) calculated from the Nernst equation. This experiment illustrates that IK(SO) in CGNs is mediated by a pure K+ conductance. As expected from previous studies, this noninactivating K+ conductance is present in both the culture and the acute slice preparation.
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Addgene inc pclx ubi venusn patrick salmon lab addgene
Properties of IK(SO) in <t>CGNs.</t> A, Current traces taken from granule cells in the culture preparation (i), the wild-type slice preparation at P15 (ii) and P35 (iii), and a TASK-1 KO (-/-) slice preparation at P47 (iv). In each case, the holding potential was ramped from -20 to -160 mV and then maintained at -20 mV for 1 min. Note the absence of a slowly <t>inactivating</t> <t>component</t> in the data taken from a cultured granule cell (i). In the presence of this slowly inactivating current, IK(SO) was measured after the holding potential had been clamped at -20 mV for at least 1 min to avoid contamination by this conductance. B, Effect of altering external K+ concentration on the reversal potential of IK(SO). The current-voltage plot shows three traces recorded during a voltage-ramp protocol performed on the same adult wild-type granule cell. The predicted reversal potential, calculated from the Nernst equation, is marked with an open circle. C, Plot to compare the observed change in reversal potential (black filled circles) with the predicted values (open gray circles) calculated from the Nernst equation. This experiment illustrates that IK(SO) in CGNs is mediated by a pure K+ conductance. As expected from previous studies, this noninactivating K+ conductance is present in both the culture and the acute slice preparation.
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Addgene inc plko thy1 1 vector
Properties of IK(SO) in <t>CGNs.</t> A, Current traces taken from granule cells in the culture preparation (i), the wild-type slice preparation at P15 (ii) and P35 (iii), and a TASK-1 KO (-/-) slice preparation at P47 (iv). In each case, the holding potential was ramped from -20 to -160 mV and then maintained at -20 mV for 1 min. Note the absence of a slowly <t>inactivating</t> <t>component</t> in the data taken from a cultured granule cell (i). In the presence of this slowly inactivating current, IK(SO) was measured after the holding potential had been clamped at -20 mV for at least 1 min to avoid contamination by this conductance. B, Effect of altering external K+ concentration on the reversal potential of IK(SO). The current-voltage plot shows three traces recorded during a voltage-ramp protocol performed on the same adult wild-type granule cell. The predicted reversal potential, calculated from the Nernst equation, is marked with an open circle. C, Plot to compare the observed change in reversal potential (black filled circles) with the predicted values (open gray circles) calculated from the Nernst equation. This experiment illustrates that IK(SO) in CGNs is mediated by a pure K+ conductance. As expected from previous studies, this noninactivating K+ conductance is present in both the culture and the acute slice preparation.
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Stakich Inc mathis et al814
Properties of IK(SO) in <t>CGNs.</t> A, Current traces taken from granule cells in the culture preparation (i), the wild-type slice preparation at P15 (ii) and P35 (iii), and a TASK-1 KO (-/-) slice preparation at P47 (iv). In each case, the holding potential was ramped from -20 to -160 mV and then maintained at -20 mV for 1 min. Note the absence of a slowly <t>inactivating</t> <t>component</t> in the data taken from a cultured granule cell (i). In the presence of this slowly inactivating current, IK(SO) was measured after the holding potential had been clamped at -20 mV for at least 1 min to avoid contamination by this conductance. B, Effect of altering external K+ concentration on the reversal potential of IK(SO). The current-voltage plot shows three traces recorded during a voltage-ramp protocol performed on the same adult wild-type granule cell. The predicted reversal potential, calculated from the Nernst equation, is marked with an open circle. C, Plot to compare the observed change in reversal potential (black filled circles) with the predicted values (open gray circles) calculated from the Nernst equation. This experiment illustrates that IK(SO) in CGNs is mediated by a pure K+ conductance. As expected from previous studies, this noninactivating K+ conductance is present in both the culture and the acute slice preparation.
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Image Search Results


Properties of IK(SO) in CGNs. A, Current traces taken from granule cells in the culture preparation (i), the wild-type slice preparation at P15 (ii) and P35 (iii), and a TASK-1 KO (-/-) slice preparation at P47 (iv). In each case, the holding potential was ramped from -20 to -160 mV and then maintained at -20 mV for 1 min. Note the absence of a slowly inactivating component in the data taken from a cultured granule cell (i). In the presence of this slowly inactivating current, IK(SO) was measured after the holding potential had been clamped at -20 mV for at least 1 min to avoid contamination by this conductance. B, Effect of altering external K+ concentration on the reversal potential of IK(SO). The current-voltage plot shows three traces recorded during a voltage-ramp protocol performed on the same adult wild-type granule cell. The predicted reversal potential, calculated from the Nernst equation, is marked with an open circle. C, Plot to compare the observed change in reversal potential (black filled circles) with the predicted values (open gray circles) calculated from the Nernst equation. This experiment illustrates that IK(SO) in CGNs is mediated by a pure K+ conductance. As expected from previous studies, this noninactivating K+ conductance is present in both the culture and the acute slice preparation.

Journal: The Journal of Neuroscience

Article Title: Modifying the Subunit Composition of TASK Channels Alters the Modulation of a Leak Conductance in Cerebellar Granule Neurons

doi: 10.1523/JNEUROSCI.3153-05.2005

Figure Lengend Snippet: Properties of IK(SO) in CGNs. A, Current traces taken from granule cells in the culture preparation (i), the wild-type slice preparation at P15 (ii) and P35 (iii), and a TASK-1 KO (-/-) slice preparation at P47 (iv). In each case, the holding potential was ramped from -20 to -160 mV and then maintained at -20 mV for 1 min. Note the absence of a slowly inactivating component in the data taken from a cultured granule cell (i). In the presence of this slowly inactivating current, IK(SO) was measured after the holding potential had been clamped at -20 mV for at least 1 min to avoid contamination by this conductance. B, Effect of altering external K+ concentration on the reversal potential of IK(SO). The current-voltage plot shows three traces recorded during a voltage-ramp protocol performed on the same adult wild-type granule cell. The predicted reversal potential, calculated from the Nernst equation, is marked with an open circle. C, Plot to compare the observed change in reversal potential (black filled circles) with the predicted values (open gray circles) calculated from the Nernst equation. This experiment illustrates that IK(SO) in CGNs is mediated by a pure K+ conductance. As expected from previous studies, this noninactivating K+ conductance is present in both the culture and the acute slice preparation.

Article Snippet: A pH-sensitive component of I K(SO) has been described in both cultured CGNs ( Watkins and Mathie, 1996 ; Millar et al., 2000 ; Han et al., 2002 ; Lauritzen et al., 2003 ) and cells in the acute slice preparation ( Millar et al., 2000 ; Brickley et al., 2001 ; Takayasu et al., 2003 ).

Techniques: Slice Preparation, Cell Culture, Concentration Assay