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R H Kretsinger

Publications and source records attributed to R H Kretsinger.

At least 73 records · Page 4Linked to original sources

Structure and evolution of calcium-modulated proteins.

This review suggests that the intracellular functions of calcium are best understood in terms of calcium's functioning as a second messenger. Further, when functioning as a second messenger, calcium completes its mission not by transferring charge nor by binding to lipid but by binding to specific targets, calcium-modulated proteins. This concept is broadly interpreted to include proteins involved in calcium transport. There is strong evidence that many, if not all, of these calcium-modulated proteins are homologs. Their structures and properties are contrasted to those of extracellular calcium-binding proteins which are not homologous to one another or to the intracellular calcium-modulated proteins. Finally, this line of thought leads to a suggestion of the evolutionary reason for the choice of calcium as the sole inorganic second messenger.

3',5'-Cyclic-AMP Phosphodiesterases↗

S49 lymphoma wild type and variant clones contain normal calcium dependent regulator.

Calcium dependent regulator is present in wild-type S49 lymphoma cells, in the variant that is deficient in adenylate cyclase activity (AC-), and in the uncoupled variant (UNC). The electrophoretic mobility and the ability to stimulate cyclic nucleotide phosphodiesterase of the calcium dependent regulator from each of these three clones are indistinguishable from those of the modulator protein isolated from bovine brain. Calcium dependent regulator does not appear to be involved in the defect responsible for the UNC or AC- variants.

3',5'-Cyclic-AMP Phosphodiesterases↗

The 30 S subunit of the Escherichia coli ribosome. Topographical model of its component proteins.

This topographical model of the proteins of the 30 S subunit of the Escherichia coli ribosome was built to be consistent with the 37 published spectroscopic and chemical experiments that indicate proximity and with the two neutron diffraction experiments that indicate S3 and S7 as well as S2 and S5 to be separated by 110 A. The model is quite consistent with the protein arrangement suggested by assembly pathways, the various RNA binding sites, and the streptomycin-associated proteins, This consistency is encouraging since none of these data were considered during the construction of the model. The model differs significantly from those proposed by Traut et at. ((1974) Ribosomes 271-308) and by Tischendorf et al. ((1975) Proc. Natl. Acad. Sei. U.S. 72, 4820-4824).

Binding Sites↗

Calcium-binding proteins.

Calcium binding, which appears to be either specific or physiologically significant, has been reported for 70 norminally "different" proteins. First, I catalog these proteins. Only a few recent or general references can be cited. Those proteins that serve critical physiological functions or that may be regarded as chemical prototypes are discussed in more detail. Second, I present several generalizations. Inevitably the logic here is cyclic in that the generalizations dictate which data from all those available are actually presented. In order to focus our attention in the catalog, I outline these generalizations: 1. An examination of the five calcium-binding proteins of known structure does not reveal a correlation between ligand type and/or geometry and Ca2+ affinity or selectivity. 2. For many of the enzymes supposedly activated or stabilized by Ca2+ the available data dot not allow one to judge the physiological significance of the calcium binding or its contribution of the enzymic mechanism. 3. Of the enzymes requiring Ca2 and concanavalin A, only the nuclease of Staphylococcus and possibly phospholipase appear to bind Ca2 at the active site. 4. The calcium affinities of most of the extracellular enzymes are low, pKd = 3 to 4. This is consistent with the fact that the Ca2+ concentration of the extracellular environment is about 10(-3) M. 5. The cytosol concentration of free Ca2+ in most if not all eukaryotic cells is from 10(-6) to 10(-8) M. Following a stimulus to the cell after which Ca2+ functions as a second messenger, the free Ca2+ may rise to 10(-6) to 10(-5) M. The reported affinities of most enzymes of the cytosol are too low to be physiologically significant. 6. Several intracellular enzymes or enzyme activators have pKd values between 5 and 8. These enzymes therefore may be turned on and off or "modulated" in response to extracellular stimuli. 7. There is a distinct conceptual difference between extracellular enzymes that are "activated" by Ca2+ and those intracellular enzymes that are modulated by Ca2+. The activated proteins bind Ca2+ upon secretion or upon incorporation into a secretory vesicle and retain it throughout their functional lifetimes. The modulated proteins may bind and release Ca2+ many times in response to varying concentrations of this second messenger. 8. Several of the calcium-modulated proteins contain a characteristic conformation, consisting of a helix, calcium-binding loop, and second helix, referred to as the "EF hand". These proteins are homologous, that is, evolutionarily related.

Adenosine Triphosphatases↗

The predicted structure of the calcium-binding component of troponin.

The structure prediction of the calcium binding component of troponin (TN-C) incorporates the following assumptions: (1) TN-C contains four regions homologous to the calcium binding "EF hand" of parvalbumin. (2) The four EF hands are arranged in two pairs with overall symmetry, 222. (3) The regions of the calcium binding component of troponin which are not in the four EF hands connect the hands within each pair, one to two and three to four, and connect the pairs, region two to region three. In the resulting model there is a well-defined hydrophobic core made from side chains of all eight helical regions and of the four calcium binding loops. The Ca2+ within pairs are separated by 11 A; while the pairs of Ca2+ are separated from one another by over 30 A. Cys-98 and Tyr-109 are suggested to be sensitive spectroscopic probes. Calcium(1) is suggested to be solvent accessible and most readily replaced by a lanthanide. Because of the overall symmetry of the calcium binding component of troponin, one can anticipate that the inhibitory- and the tropomyosin binding components of troponin are similar to one another.

Albumins↗

Structure of a calcium-binding carp myogen.

The amino-acid sequence and three-dimensional structure of a calcium-binding protein prepared from carp muscle has been determined. This protein, designated carp-muscle calcium-binding protein B, is one of three closely related parvalbumins found in this tissue. The electron density map, calculated by heavyatom substitution crystallographic methods to 2.0-A resolution, reveals the orientation of most of the amino-acid side chains. The calcium coordination site consists of one glutamic- and three aspartic-acid carboxyl groups in a tetrahedral arrangement. The core of this spherical molecule is remarkably hydrophobic, with 8 of its 10 phenylalanine side chains packed in an approximate herringbone pattern. 52 of the 108 residues are in six alpha-helixes; there is no beta-pleated sheet. The acetylated amino-terminal alanine appears not to be accessible to solvent. All of the heavy-atom derivatives are bound at the sole cysteine. The properties of this protein suggest a relationship to troponin A of mammalian tissue.

Amino Acid Sequence↗