1
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Dutoit R, Van Gompel T, Brandt N, Van Elder D, Van Dyck J, Sobott F, Droogmans L. How metal cofactors drive dimer-dodecamer transition of the M42 aminopeptidase TmPep1050 of Thermotoga maritima. J Biol Chem 2019; 294:17777-17789. [PMID: 31611236 DOI: 10.1074/jbc.ra119.009281] [Citation(s) in RCA: 7] [Impact Index Per Article: 1.2] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/09/2019] [Revised: 09/24/2019] [Indexed: 11/06/2022] Open
Abstract
The M42 aminopeptidases are dinuclear aminopeptidases displaying a peculiar tetrahedron-shaped structure with 12 subunits. Their quaternary structure results from the self-assembly of six dimers controlled by their divalent metal ion cofactors. The oligomeric-state transition remains debated despite the structural characterization of several archaeal M42 aminopeptidases. The main bottleneck is the lack of dimer structures, hindering the understanding of structural changes occurring during the oligomerization process. We present the first dimer structure of an M42 aminopeptidase, TmPep1050 of Thermotoga maritima, along with the dodecamer structure. The comparison of both structures has allowed us to describe how the metal ion cofactors modulate the active-site fold and, subsequently, affect the interaction interface between dimers. A mutational study shows that the M1 site strictly controls dodecamer formation. The dodecamer structure of TmPep1050 also reveals that a part of the dimerization domain delimits the catalytic pocket and could participate in substrate binding.
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Affiliation(s)
- Raphaël Dutoit
- Laboratory of Microbiology, Department of Molecular Biology, Université Libre de Bruxelles, rue des Professeurs Jeener et Brachet 12, B6041 Charleroi, Belgium .,Labiris Institut de Recherche, avenue Emile Gryzon 1, B1070 Brussels, Belgium
| | - Tom Van Gompel
- Biomolecular and Analytical Mass Spectrometry, Department of Chemistry, Universiteit van Antwerpen, Groenenborgerlaan 171, B2020 Antwerpen, Belgium
| | - Nathalie Brandt
- Labiris Institut de Recherche, avenue Emile Gryzon 1, B1070 Brussels, Belgium
| | - Dany Van Elder
- Laboratory of Microbiology, Department of Molecular Biology, Université Libre de Bruxelles, rue des Professeurs Jeener et Brachet 12, B6041 Charleroi, Belgium
| | - Jeroen Van Dyck
- Biomolecular and Analytical Mass Spectrometry, Department of Chemistry, Universiteit van Antwerpen, Groenenborgerlaan 171, B2020 Antwerpen, Belgium
| | - Frank Sobott
- Biomolecular and Analytical Mass Spectrometry, Department of Chemistry, Universiteit van Antwerpen, Groenenborgerlaan 171, B2020 Antwerpen, Belgium.,Astbury Centre for Structural and Molecular Biology, University of Leeds, LS2 9JT Leeds, United Kingdom
| | - Louis Droogmans
- Laboratory of Microbiology, Department of Molecular Biology, Université Libre de Bruxelles, rue des Professeurs Jeener et Brachet 12, B6041 Charleroi, Belgium
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2
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Proteolytic systems of archaea: slicing, dicing, and mincing in the extreme. Emerg Top Life Sci 2018; 2:561-580. [PMID: 32953999 DOI: 10.1042/etls20180025] [Citation(s) in RCA: 5] [Impact Index Per Article: 0.7] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/05/2023]
Abstract
Archaea are phylogenetically distinct from bacteria, and some of their proteolytic systems reflect this distinction. Here, the current knowledge of archaeal proteolysis is reviewed as it relates to protein metabolism, protein homeostasis, and cellular regulation including targeted proteolysis by proteasomes associated with AAA-ATPase networks and ubiquitin-like modification. Proteases and peptidases that facilitate the recycling of peptides to amino acids as well as membrane-associated and integral membrane proteases are also reviewed.
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3
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Characterization of a Glycyl-Specific TET Aminopeptidase Complex from Pyrococcus horikoshii. J Bacteriol 2018; 200:JB.00059-18. [PMID: 29866801 DOI: 10.1128/jb.00059-18] [Citation(s) in RCA: 3] [Impact Index Per Article: 0.4] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 01/31/2018] [Accepted: 05/29/2018] [Indexed: 01/03/2023] Open
Abstract
The TET peptidases are large self-compartmentalized complexes that form dodecameric particles. These metallopeptidases, members of the M42 family, are widely distributed in prokaryotes. Three different versions of TET complexes, with different substrate specificities, were found to coexist in the cytosol of the hyperthermophilic archaeon Pyrococcus horikoshii In the present work, we identified a novel type of TET complex that we named PhTET4. The recombinant PhTET4 enzyme was found to self-assemble as a tetrahedral edifice similar to other TET complexes. We determined PhTET4 substrate specificity using a broad range of monoacyl chromogenic and fluorogenic compounds. High-performance liquid chromatographic peptide degradation assays were also performed. These experiments demonstrated that PhTET4 is a strict glycyl aminopeptidase, devoid of amidolytic activity toward other types of amino acids. The catalytic efficiency of PhTET4 was studied under various conditions. The protein was found to be a hyperthermophilic alkaline aminopeptidase. Interestingly, unlike other peptidases from the same family, it was activated only by nickel ions.IMPORTANCE We describe here the first known peptidase displaying exclusive activity toward N-terminal glycine residues. This work indicates a specific role for intracellular glycyl peptidases in deep sea hyperthermophilic archaeal metabolism. These observations also provide critical evidence for the use of these archaeal extremozymes for biotechnological applications.
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4
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Macek P, Kerfah R, Boeri Erba E, Crublet E, Moriscot C, Schoehn G, Amero C, Boisbouvier J. Unraveling self-assembly pathways of the 468-kDa proteolytic machine TET2. SCIENCE ADVANCES 2017; 3:e1601601. [PMID: 28435872 PMCID: PMC5384809 DOI: 10.1126/sciadv.1601601] [Citation(s) in RCA: 24] [Impact Index Per Article: 3.0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Subscribe] [Scholar Register] [Received: 07/12/2016] [Accepted: 02/10/2017] [Indexed: 05/03/2023]
Abstract
The spontaneous formation of biological higher-order structures from smaller building blocks, called self-assembly, is a fundamental attribute of life. Although the protein self-assembly is a time-dependent process that occurs at the molecular level, its current understanding originates either from static structures of trapped intermediates or from modeling. Nuclear magnetic resonance (NMR) spectroscopy has the unique ability to monitor structural changes in real time; however, its size limitation and time-resolution constraints remain a challenge when studying the self-assembly of large biological particles. We report the application of methyl-specific isotopic labeling combined with relaxation-optimized NMR spectroscopy to overcome both size- and time-scale limitations. We report for the first time the self-assembly process of a half-megadalton protein complex that was monitored at the structural level, including the characterization of intermediate states, using a mutagenesis-free strategy. NMR was used to obtain individual kinetics data on the different transient intermediates and the formation of final native particle. In addition, complementary time-resolved electron microscopy and native mass spectrometry were used to characterize the low-resolution structures of oligomerization intermediates.
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Affiliation(s)
- Pavel Macek
- Université Grenoble Alpes, Institut de
Biologie Structurale (IBS), Grenoble, France
- CEA, IBS, Grenoble, France
- CNRS, IBS, Grenoble, France
| | - Rime Kerfah
- Université Grenoble Alpes, Institut de
Biologie Structurale (IBS), Grenoble, France
- CEA, IBS, Grenoble, France
- CNRS, IBS, Grenoble, France
| | - Elisabetta Boeri Erba
- Université Grenoble Alpes, Institut de
Biologie Structurale (IBS), Grenoble, France
- CEA, IBS, Grenoble, France
- CNRS, IBS, Grenoble, France
| | - Elodie Crublet
- Université Grenoble Alpes, Institut de
Biologie Structurale (IBS), Grenoble, France
- CEA, IBS, Grenoble, France
- CNRS, IBS, Grenoble, France
| | - Christine Moriscot
- Université Grenoble Alpes, Institut de
Biologie Structurale (IBS), Grenoble, France
- CEA, IBS, Grenoble, France
- CNRS, IBS, Grenoble, France
| | - Guy Schoehn
- Université Grenoble Alpes, Institut de
Biologie Structurale (IBS), Grenoble, France
- CEA, IBS, Grenoble, France
- CNRS, IBS, Grenoble, France
| | - Carlos Amero
- Centro de Investigaciones Químicas, IICBA,
Universidad Autónoma del Estado de Morelos, México
- Corresponding author. (C.A.);
(J.B.)
| | - Jerome Boisbouvier
- Université Grenoble Alpes, Institut de
Biologie Structurale (IBS), Grenoble, France
- CEA, IBS, Grenoble, France
- CNRS, IBS, Grenoble, France
- Corresponding author. (C.A.);
(J.B.)
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5
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Colombo M, Girard E, Franzetti B. Tuned by metals: the TET peptidase activity is controlled by 3 metal binding sites. Sci Rep 2016; 6:20876. [PMID: 26853450 PMCID: PMC4745047 DOI: 10.1038/srep20876] [Citation(s) in RCA: 8] [Impact Index Per Article: 0.9] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 07/22/2015] [Accepted: 01/11/2016] [Indexed: 11/09/2022] Open
Abstract
TET aminopeptidases are dodecameric particles shared in the three life domains involved in various biological processes, from carbon source provider in archaea to eye-pressure regulation in humans. Each subunit contains a dinuclear metal site (M1 and M2) responsible for the enzyme catalytic activity. However, the role of each metal ion is still uncharacterized. Noteworthy, while mesophilic TETs are activated by Mn(2+), hyperthermophilic TETs prefers Co(2+). Here, by means of anomalous x-ray crystallography and enzyme kinetics measurements of the TET3 aminopeptidase from the hyperthermophilic organism Pyrococcus furiosus (PfTET3), we show that M2 hosts the catalytic activity of the enzyme, while M1 stabilizes the TET3 quaternary structure and controls the active site flexibility in a temperature dependent manner. A new third metal site (M3) was found in the substrate binding pocket, modulating the PfTET3 substrate preferences. These data show that TET activity is tuned by the molecular interplay among three metal sites.
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Affiliation(s)
- Matteo Colombo
- CNRS, IBS, F-38027 Grenoble, France.,CEA, DSV, IBS, F-38027 Grenoble, France.,Univ. Grenoble Alpes, Institut de Biologie Structurale (IBS), F-38027 Grenoble, France
| | - Eric Girard
- CNRS, IBS, F-38027 Grenoble, France.,CEA, DSV, IBS, F-38027 Grenoble, France.,Univ. Grenoble Alpes, Institut de Biologie Structurale (IBS), F-38027 Grenoble, France
| | - Bruno Franzetti
- CNRS, IBS, F-38027 Grenoble, France.,CEA, DSV, IBS, F-38027 Grenoble, France.,Univ. Grenoble Alpes, Institut de Biologie Structurale (IBS), F-38027 Grenoble, France
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6
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Appolaire A, Colombo M, Basbous H, Gabel F, Girard E, Franzetti B. TET peptidases: A family of tetrahedral complexes conserved in prokaryotes. Biochimie 2015; 122:188-96. [PMID: 26546839 DOI: 10.1016/j.biochi.2015.11.001] [Citation(s) in RCA: 9] [Impact Index Per Article: 0.9] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 07/01/2015] [Accepted: 11/02/2015] [Indexed: 11/26/2022]
Abstract
The TET peptidases are large polypeptide destruction machines present among prokaryotes. They form 12-subunits hollow tetrahedral particles, and belong to the family of M42 metallo-peptidases. Structural characterization of various archaeal and bacterial complexes has revealed a unique mechanism of internal compartmentalization and peptide trafficking that distinguishes them from the other oligomeric peptidases. Different versions of the TET complex often co-exist in the cytosol of microorganisms. In depth enzymatic studies have revealed that they are non-processive cobalt-activated aminopeptidases and display contrasting substrate specificities based on the properties of the catalytic chambers. Recent studies have shed light on the assembly mechanism of homo and hetero-dodecameric TET complexes and shown that the activity of TET aminopeptidase towards polypeptides is coupled with its assembly process. These findings suggested a functional regulation based on oligomerization control in vivo. This review describes a current knowledge on M42 TET peptidases biochemistry and discuss their possible physiological roles. This article is a part of the Special Issue entitled: «A potpourri of proteases and inhibitors: from molecular toolboxes to signalling scissors».
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Affiliation(s)
- Alexandre Appolaire
- CNRS, IBS, F-38027 Grenoble, France; CEA, DSV, IBS, F-38027 Grenoble, France; Univ. Grenoble Alpes, Institut de Biologie Structurale (IBS), F-38027 Grenoble, France
| | - Matteo Colombo
- CNRS, IBS, F-38027 Grenoble, France; CEA, DSV, IBS, F-38027 Grenoble, France; Univ. Grenoble Alpes, Institut de Biologie Structurale (IBS), F-38027 Grenoble, France
| | - Hind Basbous
- CNRS, IBS, F-38027 Grenoble, France; CEA, DSV, IBS, F-38027 Grenoble, France; Univ. Grenoble Alpes, Institut de Biologie Structurale (IBS), F-38027 Grenoble, France
| | - Frank Gabel
- CNRS, IBS, F-38027 Grenoble, France; CEA, DSV, IBS, F-38027 Grenoble, France; Univ. Grenoble Alpes, Institut de Biologie Structurale (IBS), F-38027 Grenoble, France
| | - E Girard
- CNRS, IBS, F-38027 Grenoble, France; CEA, DSV, IBS, F-38027 Grenoble, France; Univ. Grenoble Alpes, Institut de Biologie Structurale (IBS), F-38027 Grenoble, France
| | - Bruno Franzetti
- CNRS, IBS, F-38027 Grenoble, France; CEA, DSV, IBS, F-38027 Grenoble, France; Univ. Grenoble Alpes, Institut de Biologie Structurale (IBS), F-38027 Grenoble, France.
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7
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Slutskaya E, Artemova N, Kleymenov S, Petrova T, Popov V. Heat-induced conformational changes of TET peptidase from crenarchaeon Desulfurococcus kamchatkensis. EUROPEAN BIOPHYSICS JOURNAL: EBJ 2015. [PMID: 26219412 DOI: 10.1007/s00249-015-1064-3] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.1] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 10/23/2022]
Abstract
The effects of heating on the structure and stability of multimeric TET aminopeptidase (APDkam589) were studied by differential scanning calorimetry, tryptophan fluorescence quenching, and dynamic light scattering. Thermally induced structural changes in APDkam589 were found to occur in two phases: local conformational changes, which occur below 70 °C and are not associated with thermal denaturation of the protein, and global structural changes (above 70 °C) induced by irreversible thermal unfolding of the protein accompanied by its spontaneous aggregation. These results may explain the bell-shaped temperature dependence with a maximum at ~70 °C previously observed for enzymatic activity of APDkam589. Interestingly, the thermal unfolding of APDkam589 at about 81.2 °C is accompanied by a so-called blue-shift of about 10 nm-a shift of the Trp fluorescence spectrum toward shorter wavelength. From this point of view, APDkam589 is quite different from most proteins, which are characterized by a long wavelength shift of the spectrum ("red-shift") upon denaturation. The blue-shift of the Trp fluorescence spectrum reflects the changes in the environment of Trp residues, which becomes more hydrophobic upon denaturation. The molecular structure of APDkam589 was determined by X-ray diffraction. The monomer of APDkam589 has six Trp residues, five of which are on the external surface of the dodecamer. Therefore, the blue-shift of the Trp fluorescence spectrum can be explained, at least partly, by aggregation of APDkam589, which occurs simultaneously with its thermal denaturation and probably makes the environment of these Trp residues more hydrophobic.
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Affiliation(s)
- Elvira Slutskaya
- A.N. Bakh Institute of Biochemistry, Russian Academy of Sciences, Leninsky pr. 33, Moscow, 119071, Russian Federation.
| | - Natalia Artemova
- A.N. Bakh Institute of Biochemistry, Russian Academy of Sciences, Leninsky pr. 33, Moscow, 119071, Russian Federation
| | - Sergey Kleymenov
- A.N. Bakh Institute of Biochemistry, Russian Academy of Sciences, Leninsky pr. 33, Moscow, 119071, Russian Federation.,N.K. Koltsov Institute of Developmental Biology, Russian Academy of Sciences, Vavilova str. 26, Moscow, 119334, Russian Federation
| | - Tatiana Petrova
- Institute of Mathematical Problems of Biology, RAS, Institutskaja str., 4, Pushchino, 142290, Russian Federation
| | - Vladimir Popov
- A.N. Bakh Institute of Biochemistry, Russian Academy of Sciences, Leninsky pr. 33, Moscow, 119071, Russian Federation.,Russian National Research Centre "Kurchatov Institute", Akademika Kurchatova sq. 1, Moscow, 123182, Russian Federation
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8
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Petrova TE, Slutskaya ES, Boyko KM, Sokolova OS, Rakitina TV, Korzhenevskiy DA, Gorbacheva MA, Bezsudnova EY, Popov VO. Structure of the dodecamer of the aminopeptidase APDkam598 from the archaeon Desulfurococcus kamchatkensis. Acta Crystallogr F Struct Biol Commun 2015; 71:277-85. [PMID: 25760701 PMCID: PMC4356302 DOI: 10.1107/s2053230x15000783] [Citation(s) in RCA: 8] [Impact Index Per Article: 0.8] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 11/28/2014] [Accepted: 01/14/2015] [Indexed: 11/10/2022] Open
Abstract
The crystal structure of the aminopeptidase APDkam589 from the thermophilic crenarchaeon Desulfurococcus kamchatkensis was determined at a resolution of 3.0 Å. In the crystal, the monomer of APDkam589 and its symmetry-related monomers are densely packed to form a 12-subunit complex. Single-particle electron-microscopy analysis confirms that APDkam589 is present as a compact dodecamer in solution. The APDkam589 molecule is built similarly to the molecules of the PhTET peptidases, which have the highest sequence identity to APDkam589 among known structures and were isolated from the more thermostable archaeon Pyrococcus horikoshii. A comparison of the interactions of the subunits in APDkam589 with those in PhTET1, PhTET2 and PhTET3 reveals that APDkam589 has a much lower total number of salt bridges, which correlates with the lower thermostability of APDkam589. The monomer of APDkam589 has six Trp residues, five of which are on the external surface of the dodecamer. A superposition of the structure of APDkam589 with those having a high sequence similarity to APDkam589 reveals that, although the positions of Trp45, Trp252 and Trp358 are not conserved in the sequences, the spatial locations of the Trp residues in these models are similar.
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Affiliation(s)
- T. E. Petrova
- A. N. Bach Institute of Biochemistry, RAS, Leninsky pr. 33, Moscow 119071, Russian Federation
- Institute of Mathematical Problems of Biology, RAS, Institutskaja str. 4, Pushchino 142290, Russian Federation
| | - E. S. Slutskaya
- A. N. Bach Institute of Biochemistry, RAS, Leninsky pr. 33, Moscow 119071, Russian Federation
| | - K. M. Boyko
- A. N. Bach Institute of Biochemistry, RAS, Leninsky pr. 33, Moscow 119071, Russian Federation
- NRC ‘Kurchatov Institute’, Acad. Kurchatov sq. 1, Moscow 123182, Russian Federation
| | - O. S. Sokolova
- Department of Bioengineering, Faculty of Biology, Lomonosov Moscow State University, Leninskie Gory 1/73, Moscow 119991, Russian Federation
| | - T. V. Rakitina
- NRC ‘Kurchatov Institute’, Acad. Kurchatov sq. 1, Moscow 123182, Russian Federation
- Institute of Bioorganic Chemistry, RAS, Miklukho-Maklaya 16/10, Moscow 117997, Russian Federation
| | - D. A. Korzhenevskiy
- NRC ‘Kurchatov Institute’, Acad. Kurchatov sq. 1, Moscow 123182, Russian Federation
| | - M. A. Gorbacheva
- NRC ‘Kurchatov Institute’, Acad. Kurchatov sq. 1, Moscow 123182, Russian Federation
| | - E. Y. Bezsudnova
- A. N. Bach Institute of Biochemistry, RAS, Leninsky pr. 33, Moscow 119071, Russian Federation
| | - V. O. Popov
- A. N. Bach Institute of Biochemistry, RAS, Leninsky pr. 33, Moscow 119071, Russian Federation
- NRC ‘Kurchatov Institute’, Acad. Kurchatov sq. 1, Moscow 123182, Russian Federation
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9
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Kim HS, Gabel F. Uniqueness of models from small-angle scattering data: the impact of a hydration shell and complementary NMR restraints. ACTA CRYSTALLOGRAPHICA. SECTION D, BIOLOGICAL CRYSTALLOGRAPHY 2015; 71:57-66. [PMID: 25615860 PMCID: PMC4304686 DOI: 10.1107/s1399004714013923] [Citation(s) in RCA: 19] [Impact Index Per Article: 1.9] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Download PDF] [Figures] [Subscribe] [Scholar Register] [Received: 01/24/2014] [Accepted: 06/13/2014] [Indexed: 01/04/2023]
Abstract
Small-angle scattering (SAS) has witnessed a breathtaking renaissance and expansion over the past 15 years regarding the determination of biomacromolecular structures in solution. While important issues such as sample quality, good experimental practice and guidelines for data analysis, interpretation, presentation, publication and deposition are increasingly being recognized, crucial topics such as the uniqueness, precision and accuracy of the structural models obtained by SAS are still only poorly understood and addressed. The present article provides an overview of recent developments in these fields with a focus on the influence of complementary NMR restraints and of a hydration shell on the uniqueness of biomacromolecular models. As a first topic, the impact of incorporating NMR orientational restraints in addition to SAS distance restraints is discussed using a quantitative visual representation that illustrates how the possible conformational space of a two-body system is reduced as a function of the available data. As a second topic, the impact of a hydration shell on modelling parameters of a two-body system is illustrated, in particular on its inter-body distance. Finally, practical recommendations are provided to take both effects into account and promising future perspectives of SAS approaches are discussed.
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Affiliation(s)
- Henry S. Kim
- Université Grenoble Alpes, IBS, 71 avenue des Martyrs, 38044 Grenoble, France
- CNRS, IBS, 71 avenue des Martyrs, 38044 Grenoble, France
- CEA, IBS, 71 avenue des Martyrs, 38044 Grenoble, France
| | - Frank Gabel
- Université Grenoble Alpes, IBS, 71 avenue des Martyrs, 38044 Grenoble, France
- CNRS, IBS, 71 avenue des Martyrs, 38044 Grenoble, France
- CEA, IBS, 71 avenue des Martyrs, 38044 Grenoble, France
- Institut Laue–Langevin, 38042 Grenoble CEDEX 9, France
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10
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Appolaire A, Girard E, Colombo M, Durá MA, Moulin M, Härtlein M, Franzetti B, Gabel F. Small-angle neutron scattering reveals the assembly mode and oligomeric architecture of TET, a large, dodecameric aminopeptidase. ACTA CRYSTALLOGRAPHICA. SECTION D, BIOLOGICAL CRYSTALLOGRAPHY 2014; 70:2983-93. [PMID: 25372688 PMCID: PMC4220976 DOI: 10.1107/s1399004714018446] [Citation(s) in RCA: 19] [Impact Index Per Article: 1.7] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Download PDF] [Figures] [Subscribe] [Scholar Register] [Received: 04/22/2014] [Accepted: 08/13/2014] [Indexed: 01/10/2023]
Abstract
The specific self-association of proteins into oligomeric complexes is a common phenomenon in biological systems to optimize and regulate their function. However, de novo structure determination of these important complexes is often very challenging for atomic-resolution techniques. Furthermore, in the case of homo-oligomeric complexes, or complexes with very similar building blocks, the respective positions of subunits and their assembly pathways are difficult to determine using many structural biology techniques. Here, an elegant and powerful approach based on small-angle neutron scattering is applied, in combination with deuterium labelling and contrast variation, to elucidate the oligomeric organization of the quaternary structure and the assembly pathways of 468 kDa, hetero-oligomeric and symmetric Pyrococcus horikoshii TET2-TET3 aminopeptidase complexes. The results reveal that the topology of the PhTET2 and PhTET3 dimeric building blocks within the complexes is not casual but rather suggests that their quaternary arrangement optimizes the catalytic efficiency towards peptide substrates. This approach bears important potential for the determination of quaternary structures and assembly pathways of large oligomeric and symmetric complexes in biological systems.
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Affiliation(s)
- Alexandre Appolaire
- Université Grenoble Alpes, IBS, 38044 Grenoble, France
- CNRS, IBS, 38044 Grenoble, France
- CEA, IBS, 38044 Grenoble, France
| | - Eric Girard
- Université Grenoble Alpes, IBS, 38044 Grenoble, France
- CNRS, IBS, 38044 Grenoble, France
- CEA, IBS, 38044 Grenoble, France
| | - Matteo Colombo
- Université Grenoble Alpes, IBS, 38044 Grenoble, France
- CNRS, IBS, 38044 Grenoble, France
- CEA, IBS, 38044 Grenoble, France
| | - M. Asunción Durá
- Université Grenoble Alpes, IBS, 38044 Grenoble, France
- CNRS, IBS, 38044 Grenoble, France
- CEA, IBS, 38044 Grenoble, France
| | - Martine Moulin
- Life Sciences Group, Institut Laue–Langevin, 38042 Grenoble CEDEX 9, France
| | - Michael Härtlein
- Life Sciences Group, Institut Laue–Langevin, 38042 Grenoble CEDEX 9, France
| | - Bruno Franzetti
- Université Grenoble Alpes, IBS, 38044 Grenoble, France
- CNRS, IBS, 38044 Grenoble, France
- CEA, IBS, 38044 Grenoble, France
| | - Frank Gabel
- Université Grenoble Alpes, IBS, 38044 Grenoble, France
- CNRS, IBS, 38044 Grenoble, France
- CEA, IBS, 38044 Grenoble, France
- Large Scale Structures Group, Institut Laue–Langevin, 38042 Grenoble CEDEX 9, France
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11
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Appolaire A, Durá MA, Ferruit M, Andrieu JP, Godfroy A, Gribaldo S, Franzetti B. The TET2 and TET3 aminopeptidases fromPyrococcus horikoshiiform a hetero-subunit peptidasome with enhanced peptide destruction properties. Mol Microbiol 2014; 94:803-14. [DOI: 10.1111/mmi.12775] [Citation(s) in RCA: 8] [Impact Index Per Article: 0.7] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Accepted: 08/25/2014] [Indexed: 11/28/2022]
Affiliation(s)
- Alexandre Appolaire
- Univ. Grenoble Alpes; Institut de Biologie Structurale (IBS); F-38027 Grenoble France
- CNRS, IBS; F-38027 Grenoble France
- CEA, DSV, IBS; F-38027 Grenoble France
| | - M. Asunción Durá
- Univ. Grenoble Alpes; Institut de Biologie Structurale (IBS); F-38027 Grenoble France
- CNRS, IBS; F-38027 Grenoble France
- CEA, DSV, IBS; F-38027 Grenoble France
| | - Mylène Ferruit
- Univ. Grenoble Alpes; Institut de Biologie Structurale (IBS); F-38027 Grenoble France
- CNRS, IBS; F-38027 Grenoble France
- CEA, DSV, IBS; F-38027 Grenoble France
| | - Jean-Pierre Andrieu
- Univ. Grenoble Alpes; Institut de Biologie Structurale (IBS); F-38027 Grenoble France
- CNRS, IBS; F-38027 Grenoble France
- CEA, DSV, IBS; F-38027 Grenoble France
| | - Anne Godfroy
- Ifremer, UMR6197; Laboratoire de Microbiologie des Environnements Extrêmes; 29280 Plouzané France
| | - Simonetta Gribaldo
- Institut Pasteur; Unité Biologie Moléculaire du Gène chez les Extremophiles; Département de Microbiologie; 75724 Paris Cedex 15 France
| | - Bruno Franzetti
- Univ. Grenoble Alpes; Institut de Biologie Structurale (IBS); F-38027 Grenoble France
- CNRS, IBS; F-38027 Grenoble France
- CEA, DSV, IBS; F-38027 Grenoble France
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