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      KCI등재 SCOPUS SCIE

      Rescue of Deleterious Mutations by the Compensatory Y30F Mutation in Ketosteroid Isomerase

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      https://www.riss.kr/link?id=A104831458

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      다국어 초록 (Multilingual Abstract)

      Proteins have evolved to compensate for detrimental mu-tations. However, compensatory mechanisms for protein defects are not well understood. Using ketosteroid isome-rase (KSI), we investigated how second-site mutations could recover defective mutant ...

      Proteins have evolved to compensate for detrimental mu-tations. However, compensatory mechanisms for protein defects are not well understood. Using ketosteroid isome-rase (KSI), we investigated how second-site mutations could recover defective mutant function and stability. Pre-vious results revealed that the Y30F mutation rescued the Y14F, Y55F and Y14F/Y55F mutants by increasing the catalytic activity by 23-, 3- and 1.3-fold, respectively, and the Y55F mutant by increasing the stability by 3.3 kcal/mol. To better understand these observations, we systematically investigated detailed structural and thermodynamic effects of the Y30F mutation on these mutants. Crystal structures of the Y14F/Y30F and Y14F/Y55F mutants were solved at 2.0 and 1.8 Å resolution, respectively, and compared with previoulsy solved structures of wild-type and other mutant KSIs. Structural analyses revealed that the Y30F mutation partially restored the active-site cleft of these mutant KSIs. The Y30F mutation also increased Y14F and Y14F/Y55F mutant stability by 3.2 and 4.3 kcal/mol, respectively, and the melting temperatures of the Y14F, Y55F and Y14F/Y55F mutants by 6.4°C, 5.1°C and 10.0°C, respectively. Compensatory effects of the Y30F mutation on stability might be due to improved hydrophobic interactions because removal of a hydroxyl group from Tyr30 induced local compaction by neighboring residue movement and enhanced interactions with surrounding hydrophobic residues in the active site. Taken together, our results suggest that perturbed active-site geometry recovery and favorable hydrophobic interactions mediate the role of Y30F as a second-site suppressor.

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      참고문헌 (Reference)

      1 Poon, A, "The rate of compensatory mutation in the DNA bacteriophage phiX174" 170 : 989-999, 2005

      2 Nagata, S, "The alpha subunit of tryptophan synthase. Evidence that aspartic acid 60 is a catalytic residue and that the double alteration of residues 175 and 211 in a second-site revertant restores the proper geometry of the substrate binding site" 264 : 6288-6296, 1989

      3 Blance, S.J, "Temperature-sensitive suppressor mutations of the Escherichia coli DNA gyrase B protein" 9 : 1035-1037, 2000

      4 Ha, N.C, "Structure and enzymology of Delta5-3-ketosteroid isomerase" 11 : 674-678, 2001

      5 Jang, D.S, "Structural doublemutant cycle analysis of a hydrogen bond network in ketosteroid isomerase from Pseudomonas putida biotype B" 382 : 967-973, 2004

      6 Suad, O, "Structural basis of restoring sequence-specific DNA binding and transactivation to mutant p53 by suppressor mutations" 385 : 249-265, 2009

      7 Joerger, A., "Structural basis for understanding oncogenic p53 mutations and designing rescue drugs" 103 : 15056-15061, 2006

      8 Wilson, K.P, "Structural and thermodynamic analysis of compensating mutations within the core of chicken egg white lysozyme" 267 : 10842-10849, 1992

      9 Golovanov, A.P, "Stabilization of proteins by enhancement of inter-residue hydrophobic contacts: lessons of T4 lysozyme and barnase" 18 : 477-491, 2000

      10 Wu, Z.R, "Solution structure of 3-oxo-delta5-steroid isomerase" 276 : 415-418, 1997

      1 Poon, A, "The rate of compensatory mutation in the DNA bacteriophage phiX174" 170 : 989-999, 2005

      2 Nagata, S, "The alpha subunit of tryptophan synthase. Evidence that aspartic acid 60 is a catalytic residue and that the double alteration of residues 175 and 211 in a second-site revertant restores the proper geometry of the substrate binding site" 264 : 6288-6296, 1989

      3 Blance, S.J, "Temperature-sensitive suppressor mutations of the Escherichia coli DNA gyrase B protein" 9 : 1035-1037, 2000

      4 Ha, N.C, "Structure and enzymology of Delta5-3-ketosteroid isomerase" 11 : 674-678, 2001

      5 Jang, D.S, "Structural doublemutant cycle analysis of a hydrogen bond network in ketosteroid isomerase from Pseudomonas putida biotype B" 382 : 967-973, 2004

      6 Suad, O, "Structural basis of restoring sequence-specific DNA binding and transactivation to mutant p53 by suppressor mutations" 385 : 249-265, 2009

      7 Joerger, A., "Structural basis for understanding oncogenic p53 mutations and designing rescue drugs" 103 : 15056-15061, 2006

      8 Wilson, K.P, "Structural and thermodynamic analysis of compensating mutations within the core of chicken egg white lysozyme" 267 : 10842-10849, 1992

      9 Golovanov, A.P, "Stabilization of proteins by enhancement of inter-residue hydrophobic contacts: lessons of T4 lysozyme and barnase" 18 : 477-491, 2000

      10 Wu, Z.R, "Solution structure of 3-oxo-delta5-steroid isomerase" 276 : 415-418, 1997

      11 Poteete, A.R, "Second-site revertants of an inactive T4 lysozyme mutant restore activity by restructuring the active site cleft" 30 : 1425-1432, 1991

      12 Noviello, C.M, "Second-site compensatory mutations of HIV-1 capsid mutations" 85 : 4730-4738, 2011

      13 Choi, G., "Pseudoreversion of the catalytic activity of Y14F by the additional substitution(s) of tyrosine with phenylalanine in the hydrogen bond network of Delta(5)-3-ketosteroid isomerase from Pseudomonas put" AMER CHEMICAL SOC 40 (40): 6828-6835, 2001

      14 Otwinowski, Z, "Processing of X-ray diffraction data collected in oscillation mode. Methods in Enzymology Vo. 276, In Macromolecular Crystallography, part A" Academic Press 307-326, 1997

      15 Merabet, A, "Mutants of the tumour suppressor p53 L1 loop as second-site suppressors for restoring DNA binding to oncogenic p53 mutations: structural and biochemical insights" 427 : 225-236, 2010

      16 Ramilo, C.A, "Interrupting the hydrogen bond network at the active site of human manganese superoxide dis-mutase" 274 : 27711-27716, 1999

      17 Sigala, P.A, "Hydrogen bond coupling in the ketosteroid isomerase active site" 48 : 6932-6939, 2009

      18 Kim, S.W, "High-resolution crystal structures of delta5-3-ketosteroid isomerase with and without a reaction intermediate analogue" 36 : 14030-14036, 1997

      19 Brachmann, R.K, "Genetic selection of intragenic suppressor mutations that reverse the effect of common p53 cancer mutations" 17 : 1847-1859, 1998

      20 Pollack, R.M., "Enzymatic mechanisms for catalysis of enolization: ketosteroid isomerase" 32 : 341-353, 2004

      21 Li, Y.K, "Environments and mechanistic roles of the tyrosine residues of delta 5-3-ketosteroid isomerase" 32 : 1816-1824, 1993

      22 Kraut, D.A, "Dissecting the paradoxical effects of hydrogen bond mutations in the ketosteroid isomerase oxyanion hole" 107 : 1960-1965, 2010

      23 Mateo, R, "Deterministic, compensatory mutational events in the capsid of foot-and-mouth disease virus in response to the introduction of mutations found in viruses from persistent infections" 81 : 1879-1887, 2007

      24 Brunger, A.T, "Crystallography & NMR system: a new software suite for macromolecular structure determination" 54 : 905-921, 1998

      25 Sekharudu, C, "Crystal structure of the Y52F/Y73F double mutant of phospholipase A2: increased hydrophobic interactions of the phenyl groups compensate for the disrupted hydrogen bonds of the tyrosines" 1 : 1585-1594, 1992

      26 Cho, H.S, "Crystal structure of delta(5)-3-ketosteroid isomerase from Pseudomonas testosteroni in complex with equilenin settles the correct hydrogen bonding scheme for transition state stabilization" 274 : 32863-32868, 1999

      27 Kim, D.H, "Contribution of the hydrogen-bond network involving a tyrosine triad in the active site to the structure and function of a highly proficient ketosteroid isomerase from Pseudomonas putida biotype B" 39 : 4581-4589, 2000

      28 Choi, G., "Asp-99 donates a hydrogen bond not to Tyr- 14 but to the steroid directly in the catalytic mechanism of Delta 5-3-ketosteroid isomerase from Pseudomonas putida biotype B" 39 : 903-909, 2000

      29 Richards, F.M., "Areas, volumes, packing and protein structure" 6 : 151-176, 1977

      30 Poteete, A.R, "Alteration of T4 lysozyme structure by second-site reversion of deleterious mutations" 6 : 2418-2425, 1997

      31 Polander, B.C, "A hydrogen-bonding network plays a catalytic role in photosynthetic oxygen evolution" 109 : 6112-6117, 2012

      32 Lee, H.J, "15N NMR relaxation studies of Y14F mutant of ketosteroid isomerase: the influence of mutation on backbone mobility" 144 : 159-166, 2008

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