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Figure 1. Currentâvoltage relationship of the IRK1 channel in the presence of various pH buffers. (A and B) Current traces recorded from inside-out patches at membrane voltages between â100 and +100 mV in 10-mV increments, corrected for the background currents shown in C and D, respectively. Both intracellular and extracellular solutions contain either HEPES (A) or phosphate (B). The dashed lines identify the zero-current levels. (E) Normalized steady state I-V curves with intracellular solutions containing (mM): 10 phosphate and 5 EDTA (â¡), 10 borate and 5 EDTA (â), 10 phosphate and 1 EDTA (â), 10 MOPS and 5 EDTA (âµ), and 10 HEPES and 5 EDTA (â¿). In each case, the extracellular pH buffer was the same as in the intracellular solution.
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Figure 2. Currentâvoltage relationship of the D172N mutant IRK1 channel in the presence of various pH buffers. (A and B) Current traces of the D172N channels recorded from inside-out patches with voltage protocol as in Fig. 1. Both intracellular and extracellular solutions contained either HEPES (A) or phosphate (B). (C) Normalized steady state I-V curves with intracellular solutions buffered by: phosphate (â¡), borate (â), MOPS (âµ), and HEPES (â¿). In each case, the extracellular pH buffer was the same as in the intracellular solution.
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Figure 5. IRK1 current in the presence of 10 mM HEPES from different sources in the intracellular solution. All current traces were obtained from the same patch. The voltage protocol was as in Fig. 1. The extracellular solution contained 10 mM phosphate but no HEPES.
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Figure 3. IRK1 current in the presence of various concentrations of intracellular HEPES in addition to 10 mM phosphate. The voltage protocol was as in Fig. 1; all records were from the same patch. The extracellular solution contained 10 mM phosphate but no HEPES.
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Figure 4. Currentâvoltage relationship of the IRK1 channel in the presence of various concentrations of intracellular HEPES. (A) Steady state I-V curves with various concentrations of intracellular HEPES, obtained from the data shown in Fig. 3. (B) Ratios of the I-V curves with and without HEPES shown in A. The curves superimposed on the data are fits of the equation I/Io = Kd/(Kd + [HEPES]), where Kd = Kd(0 mV) eâZFVm/RT. The fits yield Kd(0 mV) = 0.96 ± 0.04 M and Z = 1.0 ± 0.1 (mean ± SEM; n = 4).
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Figure 6. Currentâvoltage relation of the IRK1 channel in the presence of 10 mM HEPES from different sources. (A) The linear steady state I-V curve was obtained in the presence of 10 mM intracellular phosphate without HEPES; the others were obtained in the presence of HEPES from the various sources used for the data shown in Fig. 5. All seven I-V curves were obtained from the same patch as in Fig. 5. (B) Ratios of the I-V curves with and without HEPES shown in A. The curves superimposed on the data are fits of the equation in Fig. 4. The fitted Kd values (M) are: 1.11 ± 0.06, 0.89 ± 0.10, 0.36 ± 0.04, 0.39 ± 0.02, 0.34 ± 0.02, and 0.65 ± 0.07 (mean ± SEM; n = 4) for sources A, B, C, D, E1, and E2, respectively. The fitted Z values are: 1.02 ± 0.01, 0.97 ± 0.01, 0.97 ± 0.01, 1.00 ± 0.01, 0.98 ± 0.01, and 0.97 ± 0.01 for 0.07 (mean ± SEM; n = 4) for sources A, B, C, D, E1, and E2, respectively.
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Figure 7. Currentâvoltage relation of the IRK1 channel in the presence of intracellular di- and polyamines. (AâC) Steady state I-V curves in the absence or presence of various concentrations of intracellular putrescine, spermidine, or spermine. (DâF) Ratios of the I-V curves with and without putrescine, spermidine, or spermine shown in AâC. The concentrations of the blockers were as indicated. The curves superimposed on the data in D or in E and F are fits of Eqs. 2 and 6, respectively, of Guo and Lu 2000a. Parameter values obtained from the fits are as follows (mean ± SEM; n = 3). For putrescine, K1 = 8.2 (± 0.9) à 10â4 M, Z1 = 1.9 ± 0.2; kâ2/kâ1 = 4.0 (± 0.5) à 10â2, âzâ1 + zâ2â = 1.6 ± 0.1. For spermidine, Ka1 = 3.9 (± 0.5) à 10â6 M, Za1 = 5.4 ± 0.4; kaâ2/kaâ1 = 2.7 (± 0.4) à 10â2, âzaâ1 + zaâ2â = 5.6 ± 0.4; Kb1 = 4.5 (± 0.6) à 10â5 M, Zb1 = 3.3 ± 0.4; kbâ2/kbâ1 = 2.0 (± 0.2) à 10â3, âzbâ1 + zbâ2â = 3.4 ± 0.5. For spermine, Ka1 = 2.4 (± 0.3) à 10â7 M, Za1 = 5.5 ± 0.4; kaâ2/kaâ1 = 3.5 (± 0.4) à 10â2, âzaâ1 + zaâ2â = 5.7 ± 0.5; Kb1 = 6.8 (± 0.7) à 10â6 M, Zb1 = 3.6 ± 0.3; kbâ2/kbâ1 = 6.9 (± 0.8) à 10â4, âzbâ1 + zbâ2â = 3.5 ± 0.4.
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