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A Liljas

Publications and source records attributed to A Liljas.

At least 73 records · Page 4Linked to original sources

The flexible region of protein L12 from bacterial ribosomes studied by proton nuclear magnetic resonance.

The dimeric protein L7/L12 from bacterial ribosomes has a highly elongated and flexible structure. We have, using 1H NMR methods, analyzed the extent of the flexible region and also the size of the organized structures of the molecule. A number of mutants of the protein as well as monomeric and dimeric forms of the protein and a COOH-terminal fragment have been used for the identification of certain resonances. Thus, residues 37-50 were found to be highly mobile whereas the amino-terminal and COOH-terminal regions are organized into folded domains. The flexibility between the domains and its relation to functional properties of the protein are discussed.

Acetylation↗

Structural comparison of the prokaryotic ribosomal proteins L7/L12 and L30.

The structures of two prokaryotic ribosomal proteins, the carboxyterminal half of L7/L12 from Escherichia coli (L12CTF) and L30 from Bacilus stearothermophilus display a remarkably similar fold in which alpha-helices pack onto one side of an antiparallel, three-stranded, beta-pleated sheet. A detailed comparison of the structures by least-squares methods reveals that more than two-thirds of the alpha carbons can be superimposed with a root mean square distance of 2.33 A. The principal difference is an extra alpha-helix in L12CTF. The sequences of the proteins display a distinct conservation in regions which are crucial to the common fold, in particular the hydrophobic core. It is proposed that the similarity is a result of divergent evolution.

Amino Acid Sequence↗

Refined structure of human carbonic anhydrase II at 2.0 A resolution.

The structure of human erythrocytic carbonic anhydrase II has been refined by constrained and restrained structure-factor least-squares refinement at 2.0 A resolution. The conventional crystallographic R value is 17.3%. Of 167 solvent molecules associated with the protein, four are buried and stabilize secondary structure elements. The zinc ion is ligated to three histidyl residues and one water molecule in a nearly tetrahedral geometry. In addition to the zinc-bound water, seven more water molecules are identified in the active site. Assuming that Glu-106 is deprotonated at pH 8.5, some of the hydrogen bond donor-acceptor relations in the active site can be assigned and are described here in detail. The O gamma 1 atom of Thr-199 donates its proton to the O epsilon 1 atom of Glu-106 and can function as a hydrogen bond acceptor only in additional hydrogen bonds.

Binding Sites↗

Crystallographic studies of inhibitor binding sites in human carbonic anhydrase II: a pentacoordinated binding of the SCN- ion to the zinc at high pH.

The binding of four inhibitors--mercuric ion, 3-acetoxymercuri-4-aminobenzenesulfonamide (AMS), acetazolamide (Diamox), and thiocyanate ion--to human carbonic anhydrase II (HCA II) has been studied with X-ray crystallography. The binding of mercury to HCA II at pH 7.0 has been investigated at 3.1 A resolution. Mercuric ions are observed at both nitrogens in the His-64 ring. One of these sites is pointing toward the zinc ion. The only other binding site for mercury is at Cys-206. The binding of the two sulfonamide inhibitors AMS and Diamox, has been reinvestigated at 2.0 and 3.0 A, respectively. Only the nitrogen of the sulfonamide group binds to the zinc ion replacing the hydroxyl ion. The sulfonamide oxygen closest to the zinc ion is 3.1 A away. Thus the tetrahedral geometry of the zinc is retained, refuting earlier models of a pentacoordinated zinc. The structure of the thiocyanate complex has been investigated at pH 8.5 and the structure has been refined at 1.9 A resolution using the least-squares refinement program PROLSQ. The crystallographic R factor is 17.6%. The zinc ion is pentacoordinated with the anion as well as a water molecule bound in addition to the three histidine residues. The nitrogen atom of the SCN- ion is 1.9 A from the zinc ion but shifted 1.3 A with respect to the hydroxyl ion in the native structure and at van der Waals' distance from the O gamma l atom of Thr-199. This is due to the inability of the O gamma l atom of Thr-199 to serve as a hydrogen bond donor, thus repelling the nonprotonated nitrogen. The SCN- molecule reaches into the deep end of the active site cavity where the sulfur atom has displaced the so-called "deep" water molecule of the native enzyme. The zinc-bound water molecule is 2.2 A from the zinc ion and 2.4 A from the SCN- nitrogen. In addition, this water is hydrogen bonded to the O gamma l atom of Thr-199 and to another water molecule. We have observed that solvent and inhibitor molecules have three possible binding sites on the zinc ion and their significance for the catalysis and inhibition of HCA II will be discussed. All available crystallographic data are consistent with a proposed catalytic mechanism in which both the OH moiety and one oxygen of the substrate HCO3- ion are ligated to the zinc ion.

Acetazolamide↗

Structure of the C-terminal domain of the ribosomal protein L7/L12 from Escherichia coli at 1.7 A.

The structure of a C-terminal fragment of the ribosomal protein L7/L12 from Escherichia coli has been refined using crystallographic data to 1.7 A resolution. The R-value is 17.4%. Six residues at the N terminus are too disordered in the structure to be localized. These residues are probably part of a hinge in the complete L7/L12 molecule. The possibility that a 2-fold crystallographic axis is a molecular 2-fold axis is discussed. A patch of invariant residues on the surface of the dimer is probably involved in functional interactions with elongation factors.

Amino Acid Sequence↗

The structure and dynamics of ribosomal protein L12.

The protein L12 in bacterial ribosomes is essential for the proper function of a number of factors involved in protein synthesis. The protein is mostly described in terms of a rigid structure despite the repeated observation of high flexibility. This paper gives a review of the structure and flexibility of L12 in relation to its function.

Protein Conformation↗

Crystallization of and preliminary X-ray data for bovine carbonic anhydrase III.

Crystals of bovine carbonic anhydrase III have been grown in a solution of polyethylene glycol. The crystals are monoclinic, space group P2(1), with the unit cell parameters a = 50.6 A, b = 44.7 A, c = 56.9 A, and beta = 90.3 degrees. The asymmetric unit contains 1 molecule. The diffraction pattern extends beyond 2.0-A resolution.

Animals↗

Crystallization of and preliminary X-ray data for the plasma retinol-binding protein.

Crystals of the human and rabbit plasma retinol-binding proteins have been grown from solutions of polyethylene glycol 6000 and CdCl2. Two crystal forms have been observed for the human protein, while the rabbit protein has only crystallized in one form which is isomorphous with one of the human serum retinol-binding protein crystals. The crystals differ in their morphologies, but are both in space group P212121 and have similar unit cell sizes (a = 45.9, b = 53.3, c = 72.0 A and a = 45.7, b = 48.7, and c = 76.5 A). The crystals diffract to approximately 2.0 A resolution. In both cases there is 1 molecule/asymmetric unit.

Crystallization↗

Computed spatial homology between the L12 protein of chloroplast ribosome and 1.7 A structure of Escherichia coli L12 domain.

A computer-graphic model of the tertiary structure of a functional domain in an organelle ribosomal protein was generated using the amino acid sequence of chloroplast ribosomal protein L12 from spinach (Bartsch, Kimura and Subramanian, Proc. Natl. Acad. Sci. USA 79, 6871-6875, 1982) and 1.7 A resolution coordinates of the E. coli L12 C-terminal fragment crystal (Leijonmarck, Eriksson and Liljas, Nature 286, 824-826, 1980). A comparison between the model and the experimentally derived structure shows that although 40% of the primary structure of this part of the two proteins has undergone amino acid replacements, the gross spatial structure of the domain is maintained and the character of the surfaces of possible functional importance are not significantly altered.

Amino Acid Sequence↗

Structure and tissue distribution of some retinoid-binding proteins.

Vitamin A has, apart from its function in the visual pigments, general effects on several organs. Early signs of vitamin A deficiency include keratinization of epithelia and hyperkeratosis of the skin. To elucidate a generalized function for vitamin A, we have taken the approach of tracing the vitamin from its storage site in the liver via its blood transport by the retinol-binding protein (RBP) to its uptake by susceptible cells. We have also examined the intracellular occurrence of vitamin A as regards its binding to specific receptor proteins. Here we summarize data on the amino acid sequences of several vitamin A-binding proteins. The finding that CRBP and CRABP, the two intracellular proteins, are homologous to each other, to a myelin protein, and to a fatty acid-binding protein may shed light on the functions of these proteins. Retinoic acid, which binds to CRABP but not CRBP, induces differentiation of teratocarcinoma cells. This is accompanied by a lowering of the CRABP concentration, an increase of the CRBP level, and an increase in the uptake of retinol from RBP. The epidermis contains both CRBP and CRABP, and their distributions are rather similar. However, in contrast to CRBP, CRABP is most abundant in cells lining the hair follicles. CRBP occurs in greatest relative amounts in the outer layers of the epidermis. Since techniques have been developed to measure CRBP and CRABP, normal and disease-affected skin may now be explored as to quantity and cellular distribution of the retinoid-binding proteins.

Amino Acid Sequence↗