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M Flura

Publications and source records attributed to M Flura.

3 recordsLinked to original sources

Multiple divergent mRNAs code for a single human calmodulin.

The isolation of a novel complementary DNA (cDNA) clone coding for human calmodulin (CaM) is reported. Although it encodes a protein indistinguishable from the only known higher vertebrate calmodulin, its nucleotide sequence varies extensively from that of two previously reported human CaM cDNAs (Wawrzynczak and Perham, 1984; SenGupta et al., 1987). Only 82 and 81% identity, respectively, is found between the newly isolated and the two known human mRNAs in their coding regions. No striking homology is present in their noncoding regions. Codon usage in the three CaM mRNAs is also surprisingly divergent. A 2.3-kilobase mRNA corresponding to the newly isolated clone is expressed to varying extents in several human tissues, together with an approximately 0.8-kilobase mRNA species presumably arising from alternative polyadenylation of the same primary transcript. The results indicate that the human genome contains at least three divergent CaM genes that are under selective pressure to encode an identical protein while maintaining maximally divergent nucleotide sequences. Partial characterization of a genomic clone specifying the 3' portion of the newly identified CaM mRNA shows that this gene contains introns at identical positions as the previously characterized bona fide vertebrate CaM genes. Evolutionary implications of the presence of a CaM multigene family are discussed.

Amino Acid Sequence

The maximal velocity and the calcium affinity of the red cell calcium pump may be regulated independently.

The kinetics of active Ca2+ transport in inside-out red cell membrane vesicles and the Ca2+-ATPase activity of the purified Ca2+ pump were studied and the effects of calmodulin, acidic phospholipids, and controlled trypsinization were compared. In the presence of calmodulin the maximal rate and the apparent affinity of the pump for Ca2+ were greatly increased in both preparations. The lowest value of Km(Ca) was between 0.5 and 0.7 microM depending on the concentration of calmodulin and on the enzyme preparation. Positive cooperativity for Ca2+ activation with a Hill coefficient of 1.6-1.7 was observed in all cases. When acidic phospholipids (phosphatidylinositol 4-phosphate was routinely used) were added to the inside-out vesicles or to the purified enzyme, maximal transport rates equal to those obtained with calmodulin were measured but the Km(Ca) decreased to 0.25 microM and the positive cooperativity disappeared (the Hill coefficient approached 1). Highly active, calmodulin-independent proteolytic fragments of molecular mass of 81 and 76 kDa were produced with controlled trypsinization. When the trypsin treatment was directed to obtain primarily the 81-kDa fragment, the preparation showed characteristics similar to those of the intact Ca2+ pump in the presence of calmodulin; that is, the same Vmax was obtained, the Km(Ca2+) was 0.5-0.6 microM, and the Hill coefficient was about 1.6. Addition of phosphatidylinositol 4-phosphate or allowing further proteolysis to produce the 76-kDa fragment, shifted the Km(Ca) to 0.25 and reduced the Hill coefficient to 1, without changes in the maximal rate. Based on these results it is suggested that the maximal velocity and the Ca2+ affinity on the erythrocyte Ca2+ pump may be regulated independently and that independent polypeptide regions of the enzyme are involved in the regulations.

Biological Transport, Active

The association of calmodulin with subcellular fractions isolated from rat liver.

Calmodulin associated with rat liver mitochondria has been found to belong to a contaminant membranous fraction which contains different subcellular membranes. The concentration of calmodulin in this fraction is relatively high, about 1.6 micrograms/mg protein, and can not be decreased with EGTA. The calmodulin-rich membranous fraction seems to contain cytoskeletal proteins which could be responsible for the binding of calmodulin.

Animals