pubmed-article:4258145 | rdf:type | pubmed:Citation | lld:pubmed |
pubmed-article:4258145 | lifeskim:mentions | umls-concept:C0007452 | lld:lifeskim |
pubmed-article:4258145 | lifeskim:mentions | umls-concept:C0014792 | lld:lifeskim |
pubmed-article:4258145 | lifeskim:mentions | umls-concept:C0032821 | lld:lifeskim |
pubmed-article:4258145 | lifeskim:mentions | umls-concept:C0392747 | lld:lifeskim |
pubmed-article:4258145 | lifeskim:mentions | umls-concept:C0205251 | lld:lifeskim |
pubmed-article:4258145 | pubmed:issue | 3 | lld:pubmed |
pubmed-article:4258145 | pubmed:dateCreated | 1972-4-20 | lld:pubmed |
pubmed-article:4258145 | pubmed:abstractText | Red cells of newborn calves contain 105-110 mmole K(+) and 1-5 mmole Na(+) per liter of cells. As the animals age the K(+) content decreases to a value of 25-30 mmole/liter of cells after about 60 days. At approximately the same time, the sodium content reaches a value of 60-70 mmole/liter. The time required for half change (t((1/2))) is 35-37 days for both Na(+) and K(+). The activity of (Na + K)-adenosine triphosphatase (ATPase) and the influx of K(42) and Rb(86) into the red cells are high at birth and are reduced to 5 and 15% of their original values, respectively, in mature animals. t((1/2)) for both is of the order of 30-35 days. The membrane Mg-ATPase activity is also high at birth and is reduced with a t((1/2)) of 28-32 days to a final value of about 20% of its activity at birth. Separation of red cells according to their age showed that, in animals at the age of transition, newly formed red cells contain a higher K/Na ratio and a higher active transport capacity than older red cells of the same animal. It is suggested that the changes observed are a reflection of the average age of the red cell population as the animal grows. | lld:pubmed |
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pubmed-article:4258145 | pubmed:language | eng | lld:pubmed |
pubmed-article:4258145 | pubmed:journal | http://linkedlifedata.com/r... | lld:pubmed |
pubmed-article:4258145 | pubmed:citationSubset | IM | lld:pubmed |
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pubmed-article:4258145 | pubmed:status | MEDLINE | lld:pubmed |
pubmed-article:4258145 | pubmed:month | Mar | lld:pubmed |
pubmed-article:4258145 | pubmed:issn | 0022-1295 | lld:pubmed |
pubmed-article:4258145 | pubmed:author | pubmed-author:RosenmannEE | lld:pubmed |
pubmed-article:4258145 | pubmed:author | pubmed-author:BernsteinJJ | lld:pubmed |
pubmed-article:4258145 | pubmed:author | pubmed-author:IsraelYY | lld:pubmed |
pubmed-article:4258145 | pubmed:author | pubmed-author:MacdonaldAA | lld:pubmed |
pubmed-article:4258145 | pubmed:issnType | Print | lld:pubmed |
pubmed-article:4258145 | pubmed:volume | 59 | lld:pubmed |
pubmed-article:4258145 | pubmed:owner | NLM | lld:pubmed |
pubmed-article:4258145 | pubmed:authorsComplete | Y | lld:pubmed |
pubmed-article:4258145 | pubmed:pagination | 270-84 | lld:pubmed |
pubmed-article:4258145 | pubmed:dateRevised | 2010-6-22 | lld:pubmed |
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pubmed-article:4258145 | pubmed:year | 1972 | lld:pubmed |
pubmed-article:4258145 | pubmed:articleTitle | Changes from high potassium (hk) to low potassium (lk) in bovine red cells. | lld:pubmed |
pubmed-article:4258145 | pubmed:publicationType | Journal Article | lld:pubmed |
pubmed-article:4258145 | pubmed:publicationType | In Vitro | lld:pubmed |
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