| Literature DB >> 26838181 |
Julio A Landero Figueroa1,2, Cory A Stiner1,2, Tatiana L Radzyukevich3, Judith A Heiny3.
Abstract
The use of ICP-MS to measure metal ion content in biological tissues offers a highly sensitive means to study metal-dependent physiological processes. Here we describe the application of ICP-MS to measure membrane transport of Rb and K ions by the Na,K-ATPase in mouse skeletal muscles and human red blood cells. The ICP-MS method provides greater precision and statistical power than possible with conventional tracer flux methods. The method is widely applicable to studies of other metal ion transporters and metal-dependent processes in a range of cell types and conditions.Entities:
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Year: 2016 PMID: 26838181 PMCID: PMC4738345 DOI: 10.1038/srep20551
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Rb uptake by the Na,K-ATPase in quiescent mouse EDL muscle measured by ICP-MS using equimolar replacement of RbCl for KCl in the uptake buffer.
| Rb content | Rb transport rate | Rb content | Rb transport rate | |||
|---|---|---|---|---|---|---|
| no ouabain (n = 10) | 397,135.9 ± 142,548.5 | 467.2 | 459,860.8 ± 36,809.4 | 541.0 | ||
| +ouabain (n = 5) | 123,431.5 ± 23,393.8 | 145.2 | 120,601.2 ± 6,239.8 | 141.9 | ||
Rb transport rate was measured using a 10 min incubation in physiological saline containing 4.7 mM RbCl in place of KCl, and nominally 0 mM KCl, at 32 °C. Non-specific Rb uptake contributed by all other K and Rb transport pathways was measured in independent muscles using 1 mM ouabain. Using S-based muscle mass, non-specific Rb uptake was 26.2% of total uptake, and was subtracted to obtain net ouabain-sensitive uptake by the Na,K-ATPase. RSD, relative standard deviation. Rb content was normalized either to weighed wet tissue mass or to the S-based mass.
Figure 1The S content of mouse skeletal muscles is an accurate index of tissue mass.
(a) total S content of each sample vs. weighed mass. Different symbols represent different muscles and conditions. , EDL muscles incubated for 10 min in physiological saline containing 4.7 mM RbCl in place of KCl; , EDL muscles incubated for 10 min in the same solution +1 mM ouabain; EDL muscles incubated in 200 μM RbCl and 4.7 mM KCl; EDL muscles incubated in the same solution +1 mM ouabain; ο, untreated EDL muscle removed from the animal without incubation; , untreated TA muscles. Slope = 3.82 × 103 , correlation coefficient = 0.9868 (b) Muscle mass computed from the S content of each sample (S-based mass) vs. weighed mass. Slope = 0.786, correlation coefficient = 0.987.
Rb uptake by the Na,K-ATPase in quiescent mouse EDL muscle measured by ICP-MS using 200 μM RbCl as tracer.
| Rb content | Rb transport rate | K transport rate | Rb content | Rb transport rate | K transport rate | |||
|---|---|---|---|---|---|---|---|---|
| no ouabain (n = 12) | 18,959.8 ± 6,928.5 | 22.3 | 524.2 | 24,776.4 ± 2,769.3 | 29.2 | 685.0 | ||
| +ouabain (n = 10) | 2,699.2 ± 1,355.5 | 3.18 | 74.6 | 3,198.3 ± 409.8 | 3.8 | 88.42 | ||
Rb uptake was measured using a 10 min incubation in Uptake Buffer containing 4.7 mM KCl and 200 μM RbCl, at 32 C. Ouabain-sensitive Na,K-ATPase transport was obtained as described in Table 1. The amount of Rb taken up by the muscle was scaled by the molar ratio of K to Rb in the Uptake Buffer (23.5) to obtain the transport rate of the Na,K-ATPase for K. NET ouabain-specific transport by Na,K-ATPase was obtained after subtracting the fractional non-specific uptake computed as 26.2% of total uptake (from Fig 1) as described in text.
Comparison of Rb transport by human RBCs measured by ICP-MS and 86Rb tracer.
| ICP-MS | 86Rb tracer | ||||||||
|---|---|---|---|---|---|---|---|---|---|
| by wet weight | Fe- based mass | by wet weight | |||||||
| Rb content | K transport rate | Rb content | K transport rate | Rb content | K transport rate | ||||
| no ouabain (n = 6) | 79.0 ± 6.8 | 21.2 ± 1.8 | 112.8 ± 1.6 | 23.5 ± 0.4 | 78.5 ± 15.0 | 16.4 ± 3.1 | |||
| +ouabain (n = 6) | 15.1 ± 1.2 | 5.22 ± 0.3 | 23.5 ± 2.0 | 4.9 ± 0.1 | 23.4 ± 2.3 | 4.9 ± 0.5 | |||
| NET transport by Na,K-ATPase | |||||||||
All measurements were run in parallel under identical conditions using the same pooled batch of RBCs. The batch was pooled from 4 units of leucocyte-depleted RBCs, washed, and re-suspended in Rb-free buffer at a hematocrit of 50%. The incubation mix contained 150 μL RBCs, 5 mM K, 200 μM RbCl, and Uptake Buffer without or with 1 mM ouabain, in a volume of 1 ml. Radioisotope tracer assays contained, in addition, 4 nCi/ml 86Rb. Uptake was carried out for 2 h at 37 C. K transport rate was computed by multiplying the Rb transport rate by the molar ratio of K to Rb in the Uptake buffer. The endogenous Rb concentration of the pooled, untreated RBCs was 2,374 ng/g and was subtracted in all calculations of exogenous Rb uptake.
Figure 2Rb taken up by RBCs in the absence and presence of 1 mM ouabain, measured by ICP-MS and referred to Fe based mass.
The RSD for each group was 1.6%.
Instrument tune parameters for ICP-MS QQQ.
| No gas mode | He mode | O2 mode | |||
|---|---|---|---|---|---|
| Forward power | 1450 W | Forward power | 1500 W | Forward power | 1600 W |
| Nebulizer gas flow | 1.0 L/min | Nebulizer gas flow | 1.0 L/min | Nebulizer gas flow | 1.0 L/min |
| Extract 1 | 0.0 V | Extract 1 | 0.5 V | Extract 1 | 0.0 V |
| Extract 2 | −140 V | Extract 2 | −165.5 V | Extract 2 | −200.0 V |
| Isotopes monitored | 23Na, 24Mg, 39K, 43Ca, 44Ca, 45Sc, 85Rb & 87Rb | Isotopes monitored | 23Na, 24Mg, 45Sc 43Ca, 44Ca, 55Mn, 56Fe, 60Ni, 63Cu, 66Zn, 85Rb, 87Rb & 208Pb | Isotopes monitored | 31P → 31P16O, 32S → 31S16O |
| Helium gas flow | 3 ml min−1 | Oxygen gas flow (0.3 ml min−1) | 30% | ||
| OctP Bias | −8.0 V | OctP Bias | −18.0 V | OctP Bias | −5.0 V |
| OctP RF | 150 V | OctP RF | 150 V | OctP RF | 200 V |
| Energy discrimination | 5.0 V | Energy discrimination | 5.0 V | Energy discrimination | −7.0 V |