Literature DB >> 1703538

Analysis of the molecular basis of calmodulin defects that affect ion channel-mediated cellular responses: site-specific mutagenesis and microinjection.

R Hinrichsen1, E Wilson, T Lukas, T Craig, J Schultz, D M Watterson.   

Abstract

The ability of microinjected calmodulin to temporarily restore an ion channel-mediated behavioral phenotype of a calmodulin mutant in Paramecium tetraurelia (cam1) is dependent on the amino acid side chain that is present at residue 101, even when there is extensive variation in the rest of the amino acid sequence. Analysis of conservation of serine-101 in calmodulin suggests that the ability of calmodulin to regulate this ion channel-associated cell function may be a biological role of calmodulin that is widely distributed phylogenetically. A series of mutant calmodulins that differ only at residue-101 were produced by in vitro site-specific mutagenesis and expression in Escherichia coli, purified to chemical homogeneity, and tested for their ability to temporarily restore a wild-type behavioral phenotype to cam1 (pantophobiacA1) Paramecium. Calmodulins with glycine-101 or tyrosine-101 had minimal activity; calmodulins with phenylalanine-101 or alanine-101 had no detectable activity. However, as a standard of comparison, all of the calmodulins were able to activate a calmodulin-regulated enzyme, myosin light chain kinase, that is sensitive to point mutations elsewhere in the calmodulin molecule. Overall, these results support the hypothesis that the structural features of calmodulin required for the transduction of calcium signals varies with the particular pathway that is being regulated and provide insight into why inherited mutations of calmodulin at residue 101 are nonlethal and selective in their phenotypic effects.

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Year:  1990        PMID: 1703538      PMCID: PMC2116388          DOI: 10.1083/jcb.111.6.2537

Source DB:  PubMed          Journal:  J Cell Biol        ISSN: 0021-9525            Impact factor:   10.539


  29 in total

1.  Mutations in paramecium calmodulin indicate functional differences between the C-terminal and N-terminal lobes in vivo.

Authors:  J A Kink; M E Maley; R R Preston; K Y Ling; M A Wallen-Friedman; Y Saimi; C Kung
Journal:  Cell       Date:  1990-07-13       Impact factor: 41.582

2.  Restoration by calmodulin of a Ca2+-dependent K+ current missing in a mutant of Paramecium.

Authors:  R D Hinrichsen; A Burgess-Cassler; B C Soltvedt; T Hennessey; C Kung
Journal:  Science       Date:  1986-04-25       Impact factor: 47.728

3.  The amino acid sequence of the Tetrahymena calmodulin which specifically interacts with guanylate cyclase.

Authors:  M Yazawa; K Yagi; H Toda; K Kondo; K Narita; R Yamazaki; K Sobue; S Kakiuchi; S Nagao; Y Nozawa
Journal:  Biochem Biophys Res Commun       Date:  1981-04-30       Impact factor: 3.575

4.  Comparison of the NAD Kinase and Myosin Light Chain Kinase Activator Properties of Vertebrate, Higher Plant, and Algal Calmodulins.

Authors:  D M Roberts; W H Burgess; D M Watterson
Journal:  Plant Physiol       Date:  1984-07       Impact factor: 8.340

Review 5.  Calcium-binding proteins and the molecular basis of calcium action.

Authors:  L J Van Eldik; J G Zendegui; D R Marshak; D M Watterson
Journal:  Int Rev Cytol       Date:  1982

6.  Analytical subcellular distribution of calmodulin and calmodulin-binding proteins in normal and virus-transformed fibroblasts.

Authors:  L J Van Eldik; W H Burgess
Journal:  J Biol Chem       Date:  1983-04-10       Impact factor: 5.157

7.  Calcium receptor protein calmodulin isolated from cilia and cells of Paramecium tetraurelia.

Authors:  M F Walter; J E Schultz
Journal:  Eur J Cell Biol       Date:  1981-04       Impact factor: 4.492

8.  Calmodulin binding domains: characterization of a phosphorylation and calmodulin binding site from myosin light chain kinase.

Authors:  T J Lukas; W H Burgess; F G Prendergast; W Lau; D M Watterson
Journal:  Biochemistry       Date:  1986-03-25       Impact factor: 3.162

9.  Use of DNA sequence and mutant analyses and antisense oligodeoxynucleotides to examine the molecular basis of nonmuscle myosin light chain kinase autoinhibition, calmodulin recognition, and activity.

Authors:  M O Shoemaker; W Lau; R L Shattuck; A P Kwiatkowski; P E Matrisian; L Guerra-Santos; E Wilson; T J Lukas; L J Van Eldik; D M Watterson
Journal:  J Cell Biol       Date:  1990-09       Impact factor: 10.539

10.  Identification of calmodulin-binding proteins in chicken embryo fibroblasts.

Authors:  W H Burgess; D M Watterson; L J Van Eldik
Journal:  J Cell Biol       Date:  1984-08       Impact factor: 10.539

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  5 in total

1.  An intragenic suppressor of a calmodulin mutation in Paramecium: genetic and biochemical characterization.

Authors:  R D Hinrichsen; M Pollock; T Hennessey; C Russell
Journal:  Genetics       Date:  1991-11       Impact factor: 4.562

2.  Regulation of peptide-calmodulin complexes by protein kinase C in vivo.

Authors:  R D Hinrichsen; P J Blackshear
Journal:  Proc Natl Acad Sci U S A       Date:  1993-02-15       Impact factor: 11.205

3.  Calmodulin isoforms in Arabidopsis encoded by multiple divergent mRNAs.

Authors:  M C Gawienowski; D Szymanski; I Y Perera; R E Zielinski
Journal:  Plant Mol Biol       Date:  1993-05       Impact factor: 4.076

Review 4.  The multifunctional role of phospho-calmodulin in pathophysiological processes.

Authors:  Antonio Villalobo
Journal:  Biochem J       Date:  2018-12-21       Impact factor: 3.857

5.  Inhibition of protein phosphatase 2A with a small molecule LB100 radiosensitizes nasopharyngeal carcinoma xenografts by inducing mitotic catastrophe and blocking DNA damage repair.

Authors:  Peng Lv; Yue Wang; Jie Ma; Zheng Wang; Jing-Li Li; Christopher S Hong; Zhengping Zhuang; Yi-Xin Zeng
Journal:  Oncotarget       Date:  2014-09-15
  5 in total

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