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Structural and Biophysical Analyses of Aspartyl-tRNA Synthetase from Homo sapiens and Triosephosphate Isomerase from Thermoplasma acidophilum

DC Field Value Language
dc.contributor.advisor한병우-
dc.contributor.author박상호-
dc.date.accessioned2017-07-13T16:37:29Z-
dc.date.available2017-07-13T16:37:29Z-
dc.date.issued2016-02-
dc.identifier.other000000132334-
dc.identifier.urihttps://hdl.handle.net/10371/120119-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 약학대학 약학과 의약생명과학전공, 2016. 2. 한병우.-
dc.description.abstractHuman cytosolic aspartyl-tRNA synthetase (DRS) catalyzes the attachment of the aspartic acid to its specific tRNA. DRS is a component of the multi-tRNA synthetase complex (MSC) which has been known to be involved in unanticipated signaling pathways. The crystal structure of DRS has been determined at 2.25 Å resolution containing the anticodon binding domain, hinge region, and catalytic domain. The structure also reveals the C-terminal end of the N-helix which is considered as a unique additional domain of DRS, and its conformation further supports the switching model of the N-helix for the transfer of tRNAAsp to elongation factor 1α. From the analyses of the crystal structure and post-translational modification of DRS, I suggest that the phosphorylation of Ser146 could initiate a conformational change of the DRS dimer and provokes the separation of DRS from the MSC. This structural study provides the binding site for an interaction partner with unforeseen functions.
Thermoplasma acidophilum is one of the most acidophilic organisms that utilize not only non-phosphorylative Entner-Doudoroff (ED) pathway but also Embden-Meyerhof-Parnas (EMP) pathway for glucose degradation. Triosephosphate isomerase (TPI) is structurally and functionally well-known glycolytic enzyme that plays an important role in glycolytic and gluconeogenic metabolism. Crystal structures of apo- and glycerol-3-phosphate-bound TPI from T. acidophilum (TaTPI) have been determined at 1.94 and 2.17 Å resolution. TaTPI adopts the canonical TIM-barrel fold with eight α-helices and parallel eight β-strands. Although TaTPI shares ~30% sequence identity to other TPIs from thermophilic species that adopt tetrameric conformation for enzymatic activity in their harsh physiological environments, TaTPI exists as a dimer in solution. Dimeric conformation of TaTPI was further confirmed by analytical ultracentrifugation and size-exclusion chromatography. Helix 5 and helix 4 regions of thermostable tetrameric TPIs are key important tetrameric interface, forming a hydrophobic effects. However, TaTPI contains unique charged-amino acid residues in the helix 5 and adopts dimer conformation. TaTPI exhibits the apparent Td value of 74.6 ℃ and maintains its overall structure with slight changes in the secondary structure contents under extremely acidic conditions. Based on the structural and biophysical analyses of TaTPI, more compact structure of the protomer with reduced length of loops and certain patches on the surface could account for the robust nature of Thermoplasma acidophilum TPI.
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dc.description.tableofcontentsChapter 1 Crystal structure of human cytosolic aspartyl-tRNA synthetase
1. Introduction 1
2. Material and methods 8
2.1 Cloning, protein expression, and purification 8
2.2 Crystallization 10
2.3 X-ray data collection and structure determination 12
2.4 Post-translational modification analysis 15
2.5 Data deposition 16
3. Results and discussion 17
3.1 Overall structure and oligomeric state of DRS 17
3.2 Structural comparison of DRSs 22
3.3 Flexible N-terminal extension of DRS 25
3.4 Post-translational modification of DRS 29
3.5 Implication on the MSC assembly 34

Chapter 2 Structure and stability of the dimeric triosephosphate isomerase from Thermoplasma acidophilum
1. Introduction 37
2. Material and methods 43
2.1 Cloning, expression, and purification of TPIs 43
2.2 Crystallization 45
2.3 X-ray data collection and structure determination 47
2.4 Analytical ultracentrifugation (AUC) 53
2.5 Circular dichroism (CD) 55
2.6 Analytical size-exclusion chromatography 56
2.7 Differential scanning calorimetry (DSC) 57
2.8 Data deposition 58
3. Results and discussion 59
3.1 Overall structures of apo- and G3P-bound TaTPI 59
3.2 Unique dimeric conformation of TaTPI 65
3.3 Analytic ultracentrifugation analysis of TaTPI 69
3.4 Structural stability of TaTPI under extreme acidic condition 73
3.5 Structural stability of TaTPI at the high temperature 75
3.6 Proposal of TPI stabilization patches 80

References 83

Abstract (in Korean) 94

Appendix: Printouts of first author publications 97
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dc.formatapplication/pdf-
dc.format.extent11978071 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectaspartyl-tRNA synthetase-
dc.subjectmulti-tRNA synthetase complex-
dc.subjecttriosephosphate isomerase-
dc.subjectglycolysis-
dc.subjectcrystal structure-
dc.subject.ddc615-
dc.titleStructural and Biophysical Analyses of Aspartyl-tRNA Synthetase from Homo sapiens and Triosephosphate Isomerase from Thermoplasma acidophilum-
dc.typeThesis-
dc.description.degreeDoctor-
dc.citation.pagesx, 98-
dc.contributor.affiliation약학대학 약학과-
dc.date.awarded2016-02-
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