Literature DB >> 6419773

Histone formation, gene expression, and zinc deficiency in Euglena gracilis.

B Mazus, K H Falchuk, B L Vallee.   

Abstract

Histones, and other basic proteins, have been isolated from zinc-sufficient (+Zn) Euglena gracilis by standard chromatographic methods. These cells contain 2.46 micrograms of histones and 1.96 micrograms of DNA per 10(6) organisms. Each of the histones, H1, H3, H2A, H2B, and H4, is present in both log- and stationary-phase +Zn cells and has been characterized according to its electrophoretic mobility and molecular weight. H1 has been further identified on the basis of its amino acid composition and its cross-reactivity with calf thymus histone H1 antibodies. Similarly, H3 has been recognized as well by its specific reaction with an H3 antibody. In contrast, log-phase zinc-deficient (-Zn) cells contain H1 and H3 while H2A, H2B, and H4 are absent. All of the histones vanish in stationary-phase-Zn organisms. The DNA content increases as the -Zn cells progress from log to stationary phase, reaching a value of 4.40 micrograms/10(6) cells, double that of comparable stationary-phase +Zn organisms. A 2000-3000-dalton polypeptide whose electrophoretic behavior differs from that of the known histones constitutes over 90% of the total basic proteins of -Zn cells. On addition of zinc to stationary -Zn cells, cell division resumes, and all the histones and other basic proteins reappear. Together with previous results, the data demonstrate that zinc significantly affects the metabolism of all major chromatin components, i.e., the RNA polymerases, DNA, and histones of E. gracilis [Vallee, B.L., & Falchuk, K.H. (1981) Philos. Trans. R. Soc. London, Ser. B 294, 185-197]. The implications of these effects of zinc on chromatin structure and function are discussed.

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Year:  1984        PMID: 6419773     DOI: 10.1021/bi00296a007

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  4 in total

Review 1.  The molecular basis for the role of zinc in developmental biology.

Authors:  K H Falchuk
Journal:  Mol Cell Biochem       Date:  1998-11       Impact factor: 3.396

2.  In vivo and in vitro methylation of lysine residues of Euglena gracilis histone H1.

Authors:  S Syed; R Rajpurohit; S Kim; W K Paik
Journal:  J Protein Chem       Date:  1992-06

3.  Superoxide dismutase activity and novel reactions with hydrogen peroxide of histidine-containing nickel(II)-oligopeptide complexes and nickel(II)-induced structural changes in synthetic DNA.

Authors:  E Nieboer; R T Tom; F E Rossetto
Journal:  Biol Trace Elem Res       Date:  1989 Jul-Sep       Impact factor: 3.738

4.  Transcriptome, proteome and draft genome of Euglena gracilis.

Authors:  ThankGod E Ebenezer; Martin Zoltner; Alana Burrell; Anna Nenarokova; Anna M G Novák Vanclová; Binod Prasad; Petr Soukal; Carlos Santana-Molina; Ellis O'Neill; Nerissa N Nankissoor; Nithya Vadakedath; Viktor Daiker; Samson Obado; Sara Silva-Pereira; Andrew P Jackson; Damien P Devos; Julius Lukeš; Michael Lebert; Sue Vaughan; Vladimίr Hampl; Mark Carrington; Michael L Ginger; Joel B Dacks; Steven Kelly; Mark C Field
Journal:  BMC Biol       Date:  2019-02-07       Impact factor: 7.431

  4 in total

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