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Featured researches published by R. L. Baldwin.


Amino Acids | 2001

Impact of separating amino acids between plasma, extracellular and intracellular compartments on estimating protein synthesis in rodents.

Heidi A. Johnson; R. L. Baldwin; Kirk C. Klasing; C. C. Calvert

Summary. Three models representing different separations of amino acid sources were used to simulate experimental specific radioactivity data and to predict protein fractional synthesis rate (FSR). Data were from a pulse dose of 14C-U Leu given to a non-growing 20 g mouse and a flooding dose of 3H Phe given to a non-growing 200 g rat. Protein synthesis rates estimated using the combined extracellular and intracellular (Ec + Ic) source pool and extracellular and plasma (Ec + Pls) source pool mouse models were 78 and 120% d−1 in liver, 14 and 16% d−1 in brain and 15 and 14% d−1 in muscle. Predicted protein synthesis rates using the Ec + Ic, Ec + Ic + Tr (combined extracellular, intracellular and aminoacyl tRNA source pool) and Ec + Pls rat models were 57, 3.4 and 57% d−1 in gastrocnemius, 58, 71 and 62% d−1 in gut, 8.3, 8.4 and 7.9% d−1 in heart, 32, 23 and 25% d−1 in kidney, 160, 90 and 80% d−1 in liver, 57, 5.5 and 57% d−1 in soleus and 56, 3.4 and 57% d−1 in tibialis. The Ec + Ic + Tr model underestimated protein synthesis rates in mouse tissues (5.0, 27 and 2.5% d−1 for brain, liver and muscle) and rat muscles (3.4, 5.5 and 3.4% d−1 for gastrocnemius, soleus and tibialis). The Ec + Pls model predicted the mouse pulse dose data best and the Ec + Ic model predicted the rat flooding dose data best. Model predictions of FSR imply that identification and separation of the source specific radioactivity is critical to accurately estimate FSR.


Journal of Animal Science | 1982

Estimation of stoichiometric parameters for rumen fermentation of roughage and concentrate diets.

M. R. Murphy; R. L. Baldwin; L. J. Koong


Journal of Animal Science | 1979

The Effect of PH on Maximum Bacterial Growth Rate and its Possible Role as a Determinant of Bacterial Competition in the Rumen

J. B. Russell; W. M. Sharp; R. L. Baldwin


Journal of Animal Science | 1986

Development of a Dynamic Model of Beef Cattle Growth and Composition

J. W. Oltjen; A. C. Bywater; R. L. Baldwin; W. N. Garrett


Journal of Dairy Science | 1991

Patterns of nutrient uptake by the mammary glands of lactating dairy cows

P.S. Miller; B.L. Reis; C.C. Calvert; E.J. DePeters; R. L. Baldwin


Journal of Animal Science | 1988

Effects of acid-base disturbances caused by differences in dietary fixed ion balance on kinetics of calcium metabolism in ruminants with high calcium demand.

A. H. Fredeen; E. J. DePeters; R. L. Baldwin


Journal of Dairy Science | 1991

Whole blood and plasma amino acid uptakes by lactating bovine mammary glands.

M.D. Hanigan; C.C. Calvert; E.J. DePeters; B.L. Reis; R. L. Baldwin


Journal of Dairy Science | 1991

Effect of Dietary Fat and Postruminal Casein Administration on Milk Composition of Lactating Dairy Cows

J.P. Cant; E.J. DePeters; R. L. Baldwin


Journal of Dairy Science | 1992

Kinetics of Amino Acid Extraction by Lactating Mammary Glands in Control and Sometribove-Treated Holstein Cows

M.D. Hanigan; C.C. Calvert; E.J. DePeters; B.L. Reis; R. L. Baldwin


Journal of Animal Science | 1983

A Quantitative Analysis of Rumination Patterns

M. R. Murphy; R. L. Baldwin; M. J. Ulyatt; L.J. Koong

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C. C. Calvert

University of California

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E.J. DePeters

University of California

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B.L. Reis

University of California

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C.C. Calvert

University of California

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M. J. Ulyatt

University of California

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M. R. Murphy

University of California

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A. C. Bywater

University of California

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D.P.H. Hsieh

University of California

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H. A. Johnson

University of California

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