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Yusuf Tutar

Publications and source records attributed to Yusuf Tutar.

9 recordsLinked to original sources

CRP subunit association and hinge conformation changes in response to cAMP binding: analysis of C-helix cysteine-substituted CRP.

We investigated the characteristics of 13 CRP variants having cysteine substituted at positions 113, 115, 116, 117, 118, 120, 122, 124, 126, 127, 129, 130, or 131, positions that span the length of the CRP C alpha-helix. Under reducing conditions, the WT and all Cys-substituted forms of CRP migrated as 23.5 kDa CRP monomer species on SDS-PAGE gels. In the absence of a reductant, 9 of 13 Cys-substituted forms of CRP including the L113C, S117C, M120C, L124C, V126C, T127C, E129C, K130C, and V131C CRP contained protein that migrated as 47 kDa CRP dimer species on SDS-PAGE gels. CNBr digestion of the protein preparations followed by MALDI-TOF MS analysis of the peptide fragments showed these 47 kDa species to be CRP dimers that originated from disulfide bonds formed between positional-pair C alpha-helix Cys residues. The ratio of monomer CRP and disulfide cross-linked CRP within a Cys-substituted CRP preparation was found to be independent of cAMP for Cys-substituted CRP preparations denatured and renatured in the presence of various cAMP concentrations. This finding suggests that there is no large-scale concerted motion (i.e., scissoring) of the CRP subunits in response to cAMP binding. In addition, we have identified three amino acid residues located along the CRP C alpha-helix that play a role in facilitating the conformation transition of the CRP hinge from that characteristic of apo-CRP to that characteristic of the CRP.cAMP complex.

Amino Acid Sequence↗

Effect of salt bridge on transcription activation of CRP-dependent lactose operon in Escherichia coli.

Expression of catabolite-sensitive operons in Escherichia coli is cAMP-dependent and mediated through the CRP:cAMP complex binding to specific sequences in DNA. Five specific ionic or polar interactions occur in cAMP binding pocket of CRP. E72 interacts with the cAMP 2' OH, R82 and S83 interact with the negatively charged phosphate moiety, and T127 and S128 interact with the adenine ring. There is evidence to suggest that E72 and R82 may mediate an essential CRP molecular switch mechanism. Therefore, stimulation of CRP transcription activation was examined by perturbing these residues. Further, CRP:cAMP complex was treated with a specific DNA sequence containing the lac CRP binding site along with RNA polymerase to mimic in vivo conditions. Biochemical and biophysical results revealed that regulation of transcription activation depends on alignment of CRP tertiary structure through inter-domain communication and it was concluded that positions 72 and 82 are essential in the activation of CRP by cAMP.

Cyclic AMP↗

Target peptide recognition by S100P protein and role of central linker region and dimer interface.

Interaction between S100P and its target protein is an essential step in several cellular functions. The amphipathic mellitin peptide binds tightly to S100P protein in the presence of calcium cation. Since little is known about the recognition sequence, mellitin interaction form a model for S100P. Interaction between mellitin and protein examined to identify key regions required for the protein-protein interaction.

Calcium↗

Dimerization and ion binding properties of S100P protein.

Functional S100P requires dimer formation and dimerization might form for one of the two reasons: i. producing a pair of sites for target protein binding or ii. modulation of cation binding affinity. The extent of exposed protein hydrophobicity was related to dimer formation.

Calcium↗

Heat shock proteins, substrate specificity and modulation of function.

Hsp70 is a universally conserved essential protein chaperone. In addition to its roles in many cellular process, Hsp70 protects cells from stress by binding partially unfolded proteins. Therefore, Hsp70 prevents protein aggregation and prion formation. Prions are infectious agents and are responsible for several fatal neurodegenerative diseases. Eukaryotic cells have several cytosolic Hsp70 isoforms, some constitutively expressed (Hsc70s), and others expressed only when cells are exposed to stress (Hsp70s). To determine which factors conferred functional specificity, we constructed hybrid Hsc/Hsp chaperones. All hybrids supported growth except those that contained the ATPase domain derived from inducible Hsp70. Thus, regulation of peptide binding by ATP hydrolysis must differ significantly between Hsc- and Hsp70 isoforms. In this work, nucleotide and peptide binding domain communication of Hsp70 proteins during their interaction with nucleotides and peptide substrates were investigated in vitro by using hybrid constructs.

Adenosine Triphosphatases↗

Key residues involved in Hsp70 regulatory activity and affect of co-chaperones on mechanism of action.

Hsp70 proteins assist refolding of polypeptides in an ATP dependent manner. Crystal structure of intact Hsp70 protein has not been determined yet however, structures of its two domains were solved separately. Allostery between ATPase domain and peptide-binding domain facilitates unfolded substrate processing. To elucidate function of key residues and affect of other factors involved in this allosteric mechanism, a biochemical study was undertaken.

Amino Acids↗

Primate chaperones Hsc70 (constitutive) and Hsp70 (induced) differ functionally in supporting growth and prion propagation in Saccharomyces cerevisiae.

Hsp70's are highly conserved essential protein chaperones that assist protein folding and prevent protein aggregation. They have modular structures consisting of ATPase, substrate-binding, and C-terminal domains. Substrate binding and release is regulated by ATP hydrolysis and nucleotide exchange, which in turn are regulated by cochaperones. Eukaryotes have constitutive (Hsc70) and stress-inducible (iHsp70) isoforms, but their functions have not been systematically compared. Using a yeast system to evaluate heterologous Hsp70's we find that primate Hsc70 supported growth but iHsp70 did not. Plant Hsc70 and iHsp70 counterparts behaved similarly, implying evolutionary conservation of this distinction. Swapping yeast and primate Hsp70 domains showed that (i) the Hsc70-iHsp70 distinction resided in the ATPase domain, (ii) substrate-binding domains of Hsp70's within and across species functioned similarly regarding growth, (iii) C-terminal domain function was important for growth, and (iv) Hsp70 functions important for cell growth and prion propagation were separable. Enzymatic analysis uncovered a correlation between substrate affinity and prion phenotype and showed that ATPase and protein-folding activities were generally similar. Our data support a view that intrinsic activities of Hsp70 isoforms are comparable, and functional differences in vivo lie mainly in complex interactions of Hsp70 with cochaperones.

Adenosine Triphosphatases↗

Role for Hsp70 chaperone in Saccharomyces cerevisiae prion seed replication.

The Saccharomyces cerevisiae [PSI+] prion is a misfolded form of Sup35p that propagates as self-replicating cytoplasmic aggregates. Replication is believed to occur through breakage of transmissible [PSI+] prion particles, or seeds, into more numerous pieces. In [PSI+] cells, large Sup35p aggregates are formed by coalescence of smaller sodium dodecyl sulfate-insoluble polymers. It is uncertain if polymers or higher-order aggregates or both act as prion seeds. A mutant Hsp70 chaperone, Ssa1-21p, reduces the number of transmissible [PSI+] seeds per cell by 10-fold but the overall amount of aggregated Sup35p by only two- to threefold. This discrepancy could be explained if, in SSA1-21 cells, [PSI+] seeds are larger or more of the aggregated Sup35p does not function as a seed. To visualize differences in aggregate size, we constructed a Sup35-green fluorescent protein (GFP) fusion (NGMC) that has normal Sup35p function and can propagate like [PSI+]. Unlike GFP fusions lacking Sup35p's essential C-terminal domain, NGMC did not form fluorescent foci in log-phase [PSI+] cells. However, using fluorescence recovery after photobleaching and size fractionation techniques, we find evidence that NGMC is aggregated in these cells. Furthermore, the aggregates were larger in SSA1-21 cells, but the size of NGMC polymers was unchanged. Possibly, NGMC aggregates are bigger in SSA1-21 cells because they contain more polymers. Our data suggest that Ssa1-21p interferes with disruption of large Sup35p aggregates, which lack or have limited capacity to function as seed, into polymers that function more efficiently as [PSI+] seeds.

Adenosine Triphosphatases↗

Interaction of CRP L124 with cAMP affects CRP cAMP binding constants, cAMP binding cooperativity, and CRP allostery.

A cyclic nucleotide-binding pocket of the CRP dimer is composed of amino acid residues contributed by both subunits. Leucine (L) 124 of one subunit packs against the adenine ring of cAMP bound to the opposing subunit. We have undertaken a study designed to evaluate the role of L124 in CRP allostery. Wild-type (WT) apo-CRP is a 47 kDa protease-resistant dimer composed of identical subunits that exhibits a biphasic isotherm in cAMP titration studies. The WT CRP-cAMP complex is a protease-sensitive dimer degraded by protease to a dimer core that ranges between 26.5 and 30.5 kDa. Substitution of L124 with isoleucine (I), valine (V), cysteine (C), or alanine (A) generated a series of CRP variants that exhibited unique differences in apo-CRP resistance to protease, the mass of the core fragments generated in protease digestion reactions, cAMP-mediated allostery, and CRP-cAMP complex functionality. Differences in the affinity of the position 124 CRP variants for cAMP were observed. The binding constants that drive the formation of the WT and L124I CRP-cAMP complexes deviated by not more than a factor of 1.5. In contrast, the L124V, L124A, and L124C forms of CRP exhibited both a decreased K(cAMP1)(app) and an increased K(cAMP2)(app) to produce 2.4-, 55-, and 204-fold reductions, respectively, in the difference between these two parameters compared to that observed for WT CRP. The data indicate that the van der Waals volume and/or the hyrophobicity of the L124 side chain are important determinants of CRP cAMP binding properties and affect, either directly or indirectly, cAMP-mediated conformation changes in CRP.

Allosteric Site↗