Literature DB >> 8099368

Depletion and repletion of biotinyl enzymes in liver of biotin-deficient rats: evidence of a biotin storage system.

B J Shriver1, C Roman-Shriver, J B Allred.   

Abstract

The quantities of biotinyl proteins in liver of young rats were compared with age-matched controls at intervals during depletion and repletion of biotin. Growth rate and the concentrations of biotinyl proteins previously proposed as mitochondrial storage forms of acetyl CoA carboxylase rapidly decreased in response to biotin deprivation, whereas neither the concentration nor activity of cytosolic acetyl CoA carboxylase was affected. Concentrations of carboxylases active within mitochondria (pyruvate carboxylase, propionyl CoA carboxylase and 3-methyl crotonyl CoA carboxylase) decreased only after d 28. When biotin was injected into biotin-deficient rats, concentrations of the carboxylases active within mitochondria were restored to control levels within 3 h, whereas the concentrations of putative mitochondrial storage forms of acetyl CoA carboxylase reached normal levels only after 9 h, indicating that the injected biotin was preferentially used for the synthesis of the carboxylases active within mitochondria rather than acetyl CoA carboxylase. Mitochondrial acetyl CoA carboxylase may serve as a reservoir to maintain a normal concentration of cytosolic acetyl CoA carboxylase in liver of rats deprived of biotin and provide biotin, indirectly, to maintain essentially normal concentrations of the biotinyl enzymes active within mitochondria for several weeks after rats were fed a biotin-deficient diet.

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Year:  1993        PMID: 8099368     DOI: 10.1093/jn/123.6.1140

Source DB:  PubMed          Journal:  J Nutr        ISSN: 0022-3166            Impact factor:   4.798


  8 in total

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Journal:  Clin Cancer Res       Date:  2011-10-05       Impact factor: 12.531

2.  Biotin requirements are lower in human Jurkat lymphoid cells but homeostatic mechanisms are similar to those of HepG2 liver cells.

Authors:  Gaganpreet Kaur Mall; Yap Ching Chew; Janos Zempleni
Journal:  J Nutr       Date:  2010-03-31       Impact factor: 4.798

3.  Biotin regulates the expression of holocarboxylase synthetase in the miR-539 pathway in HEK-293 cells.

Authors:  Baolong Bao; Rocio Rodriguez-Melendez; Subhashinee S K Wijeratne; Janos Zempleni
Journal:  J Nutr       Date:  2010-06-30       Impact factor: 4.798

4.  The major biotinyl protein from Pisum sativum seeds covalently binds biotin at a novel site.

Authors:  M Duval; R T DeRose; C Job; D Faucher; R Douce; D Job
Journal:  Plant Mol Biol       Date:  1994-10       Impact factor: 4.076

5.  Metabolic adaptation to vitamin auxotrophy by leaf-associated bacteria.

Authors:  Birgitta Ryback; Miriam Bortfeld-Miller; Julia A Vorholt
Journal:  ISME J       Date:  2022-08-20       Impact factor: 11.217

Review 6.  Biotin.

Authors:  Janos Zempleni; Subhashinee S K Wijeratne; Yousef I Hassan
Journal:  Biofactors       Date:  2009 Jan-Feb       Impact factor: 6.113

7.  Selective overexpression of human SIRT1 in adipose tissue enhances energy homeostasis and prevents the deterioration of insulin sensitivity with ageing in mice.

Authors:  Cheng Xu; Bo Bai; Pengcheng Fan; Yu Cai; Bosheng Huang; Ivy Km Law; Ling Liu; Aimin Xu; Chunling Tung; Xuechen Li; Fung-Ming Siu; Chi-Ming Che; Paul M Vanhoutte; Yu Wang
Journal:  Am J Transl Res       Date:  2013-05-24       Impact factor: 4.060

8.  Biotin and biotinidase deficiency.

Authors:  Janos Zempleni; Yousef I Hassan; Subhashinee Sk Wijeratne
Journal:  Expert Rev Endocrinol Metab       Date:  2008-11-01
  8 in total

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