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1.
Structure ; 31(3): 329-342.e4, 2023 03 02.
Article En | MEDLINE | ID: mdl-36649708

The evolutionary role of conformational exchange in the emergence and preservation of function within structural homologs remains elusive. While protein engineering has revealed the importance of flexibility in function, productive modulation of atomic-scale dynamics has only been achieved on a finite number of distinct folds. Allosteric control of unique members within dynamically diverse structural families requires a better appreciation of exchange phenomena. Here, we examined the functional and structural role of conformational exchange within eosinophil-associated ribonucleases. Biological and catalytic activity of various EARs was performed in parallel to mapping their conformational behavior on multiple timescales using NMR and computational analyses. Despite functional conservation and conformational seclusion to a specific domain, we show that EARs can display similar or distinct motional profiles, implying divergence rather than conservation of flexibility. Comparing progressively more distant enzymes should unravel how this subfamily has evolved new functions and/or altered their behavior at the molecular level.


Eosinophil Cationic Protein , Ribonucleases , Humans , Protein Conformation , Eosinophils , Magnetic Resonance Spectroscopy , Nuclear Magnetic Resonance, Biomolecular
2.
Biochemistry ; 59(48): 4591-4600, 2020 12 08.
Article En | MEDLINE | ID: mdl-33231438

The selective targeting of protein-protein interactions remains a significant determinant for the proper modulation and regulation of cell apoptosis. Prototypic galectins such as human galectin-7 (GAL-7) are characterized by their ability to form homodimers that control the molecular fate of a cell by mediating subtle yet critical glycan-dependent interactions between pro- and anti-apoptotic molecular partners. Altering the structural architecture of GAL-7 can therefore result in resistance to apoptosis in various human cancer cells, further illustrating its importance in cell survival. In this study, we used a combination of biophysical and cellular assays to illustrate that binding of a water-soluble meso-tetraarylporphyrin molecule to GAL-7 induces protein oligomerization and modulation of GAL-7-induced apoptosis in human Jurkat T cells. Our results suggest that the integrity of the GAL-7 homodimer architecture is essential for its molecular function, in addition to providing an interesting porphyrin binding modulator for controlling apoptosis in mammalian cells.


Galectins/chemistry , Galectins/metabolism , Mesoporphyrins/chemistry , Mesoporphyrins/metabolism , Apoptosis/drug effects , Binding Sites/drug effects , Galectins/pharmacology , Humans , In Vitro Techniques , Jurkat Cells , Molecular Docking Simulation , Nuclear Magnetic Resonance, Biomolecular , Protein Binding , Protein Interaction Domains and Motifs/drug effects , Protein Multimerization/drug effects , Protein Structure, Quaternary/drug effects , Recombinant Proteins/chemistry , Recombinant Proteins/metabolism , Recombinant Proteins/pharmacology , Scattering, Small Angle , Solubility , X-Ray Diffraction
3.
Biochemistry ; 59(6): 755-765, 2020 02 18.
Article En | MEDLINE | ID: mdl-31909602

Ribonuclease 6 (RNase 6) is one of eight catalytically active human pancreatic-type RNases that belong to a superfamily of rapidly evolving enzymes. Like some of its human homologues, RNase 6 exhibits host defense properties such as antiviral and antibacterial activities. Recently solved crystal structures of this enzyme in its nucleotide-free form show the conservation of the prototypical kidney-shaped fold preserved among vertebrate RNases, in addition to revealing the presence of a unique secondary active site. In this study, we determine the structural and conformational properties experienced by RNase 6 upon binding to substrate and product analogues. We present the first crystal structures of RNase 6 bound to a nucleotide ligand (adenosine 5'-monophosphate), in addition to RNase 6 bound to phosphate ions. While the enzyme preserves B2 subsite ligand preferences, our results show a lack of typical B2 subsite interactions normally observed in homologous ligand-bound RNases. A comparison of the dynamical properties of RNase 6 in its apo-, substrate-, and product-bound states highlight the unique dynamical properties experienced on time scales ranging from nano- to milliseconds. Overall, our results confirm the specific evolutionary adaptation of RNase 6 relative to its unique catalytic and biological activities.


Nuclear Magnetic Resonance, Biomolecular/methods , Ribonucleases/chemistry , Ribonucleases/metabolism , Tumor Suppressor Proteins/chemistry , Tumor Suppressor Proteins/metabolism , Binding Sites/physiology , Humans , Ligands , Protein Structure, Secondary
4.
ChemCatChem ; 12(19): 4704-4720, 2020 Oct 06.
Article En | MEDLINE | ID: mdl-33897908

Conventional understanding of how enzymes function strongly emphasizes the role of structure. However, increasing evidence clearly indicates that enzymes do not remain fixed or operate exclusively in or close to their native structure. Different parts of the enzyme (from individual residues to full domains) undergo concerted motions on a wide range of time-scales, including that of the catalyzed reaction. Information obtained on these internal motions and conformational fluctuations has so far uncovered and explained many aspects of enzyme mechanisms, which could not have been understood from a single structure alone. Although there is wide interest in understanding enzyme dynamics and its role in catalysis, several challenges remain. In addition to technical difficulties, the vast majority of investigations are performed in dilute aqueous solutions, where conditions are significantly different than the cellular milieu where a large number of enzymes operate. In this review, we discuss recent developments, several challenges as well as opportunities related to this topic. The benefits of considering dynamics as an integral part of the enzyme function can also enable new means of biocatalysis, engineering enzymes for industrial and medicinal applications.

5.
Mol Cell ; 70(6): 995-1007.e11, 2018 06 21.
Article En | MEDLINE | ID: mdl-29910111

Phosphotyrosine (pTyr) signaling has evolved into a key cell-to-cell communication system. Activated receptor tyrosine kinases (RTKs) initiate several pTyr-dependent signaling networks by creating the docking sites required for the assembly of protein complexes. However, the mechanisms leading to network disassembly and its consequence on signal transduction remain essentially unknown. We show that activated RTKs terminate downstream signaling via the direct phosphorylation of an evolutionarily conserved Tyr present in most SRC homology (SH) 3 domains, which are often part of key hub proteins for RTK-dependent signaling. We demonstrate that the direct EPHA4 RTK phosphorylation of adaptor protein NCK SH3s at these sites results in the collapse of signaling networks and abrogates their function. We also reveal that this negative regulation mechanism is shared by other RTKs. Our findings uncover a conserved mechanism through which RTKs rapidly and reversibly terminate downstream signaling while remaining in a catalytically active state on the plasma membrane.


Receptor Protein-Tyrosine Kinases/physiology , Receptor, EphA4/metabolism , src Homology Domains/physiology , Adaptor Proteins, Signal Transducing/metabolism , Amino Acid Sequence , Animals , Cell Communication , Drosophila/metabolism , HEK293 Cells , HeLa Cells , Humans , Ligands , Oncogene Proteins/metabolism , Phosphorylation , Phosphotyrosine/metabolism , Protein Binding , Receptor Protein-Tyrosine Kinases/metabolism , Signal Transduction/physiology , Tyrosine/metabolism
6.
Front Mol Biosci ; 5: 54, 2018.
Article En | MEDLINE | ID: mdl-29946547

Enzyme catalysis is a complex process involving several steps along the reaction coordinates, including substrate recognition and binding, chemical transformation, and product release. Evidence continues to emerge linking the functional and evolutionary role of conformational exchange processes in optimal catalytic activity. Ligand binding changes the conformational landscape of enzymes, inducing long-range conformational rearrangements. Using functionally distinct members of the pancreatic ribonuclease superfamily as a model system, we characterized the structural and conformational changes associated with the binding of two mononucleotide ligands. By combining NMR chemical shift titration experiments with the chemical shift projection analysis (CHESPA) and relaxation dispersion experiments, we show that biologically distinct members of the RNase superfamily display discrete chemical shift perturbations upon ligand binding that are not conserved even in structurally related members. Amino acid networks exhibiting coordinated chemical shift displacements upon binding of the two ligands are unique to each of the RNases analyzed. Our results reveal the contribution of conformational rearrangements to the observed chemical shift perturbations. These observations provide important insights into the contribution of the different ligand binding specificities and effects of conformational exchange on the observed perturbations associated with ligand binding for functionally diverse members of the pancreatic RNase superfamily.

7.
Structure ; 26(3): 426-436.e3, 2018 03 06.
Article En | MEDLINE | ID: mdl-29478822

Enzyme superfamily members that share common chemical and/or biological functions also share common features. While the role of structure is well characterized, the link between enzyme function and dynamics is not well understood. We present a systematic characterization of intrinsic dynamics of over 20 members of the pancreatic-type RNase superfamily, which share a common structural fold. This study is motivated by the fact that the range of chemical activity as well as molecular motions of RNase homologs spans over 105 folds. Dynamics was characterized using a combination of nuclear magnetic resonance experiments and computer simulations. Phylogenetic clustering led to the grouping of sequences into functionally distinct subfamilies. Detailed characterization of the diverse RNases showed conserved dynamical traits for enzymes within subfamilies. These results suggest that selective pressure for the conservation of dynamical behavior, among other factors, may be linked to the distinct chemical and biological functions in an enzyme superfamily.


Ribonuclease, Pancreatic/chemistry , Ribonuclease, Pancreatic/genetics , Amino Acid Sequence , Animals , Conserved Sequence , Humans , Magnetic Resonance Spectroscopy , Models, Molecular , Molecular Dynamics Simulation , Multigene Family , Phylogeny , Protein Conformation , Ribonuclease, Pancreatic/metabolism
8.
Biochemistry ; 55(30): 4184-96, 2016 08 02.
Article En | MEDLINE | ID: mdl-27387012

Xylanases catalyze the hydrolysis of xylan, an abundant carbon and energy source with important commercial ramifications. Despite tremendous efforts devoted to the catalytic improvement of xylanases, success remains limited because of our relatively poor understanding of their molecular properties. Previous reports suggested the potential role of atomic-scale residue dynamics in modulating the catalytic activity of GH11 xylanases; however, dynamics in these studies was probed on time scales orders of magnitude faster than the catalytic time frame. Here, we used nuclear magnetic resonance titration and relaxation dispersion experiments ((15)N-CPMG) in combination with X-ray crystallography and computational simulations to probe conformational motions occurring on the catalytically relevant millisecond time frame in xylanase B2 (XlnB2) and its catalytically impaired mutant E87A from Streptomyces lividans 66. Our results show distinct dynamical properties for the apo and ligand-bound states of the enzymes. The apo form of XlnB2 experiences conformational exchange for residues in the fingers and palm regions of the catalytic cleft, while the catalytically impaired E87A variant displays millisecond dynamics only in the fingers, demonstrating the long-range effect of the mutation on flexibility. Ligand binding induces enhanced conformational exchange of residues interacting with the ligand in the fingers and thumb loop regions, emphasizing the potential role of residue motions in the fingers and thumb loop regions for recognition, positioning, processivity, and/or stabilization of ligands in XlnB2. To the best of our knowledge, this work represents the first experimental characterization of millisecond dynamics in a GH11 xylanase family member. These results offer new insights into the potential role of conformational exchange in GH11 enzymes, providing essential dynamic information to help improve protein engineering and design applications.


Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Endo-1,4-beta Xylanases/chemistry , Endo-1,4-beta Xylanases/metabolism , Streptomyces lividans/enzymology , Amino Acid Substitution , Apoenzymes/chemistry , Apoenzymes/genetics , Apoenzymes/metabolism , Bacterial Proteins/genetics , Biocatalysis , Catalytic Domain/genetics , Crystallography, X-Ray , Endo-1,4-beta Xylanases/genetics , Genes, Bacterial , Ligands , Models, Molecular , Molecular Dynamics Simulation , Mutagenesis, Site-Directed , Nuclear Magnetic Resonance, Biomolecular , Protein Conformation , Recombinant Proteins/chemistry , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , Streptomyces lividans/genetics
9.
Catalysts ; 6(6)2016 Jun.
Article En | MEDLINE | ID: mdl-28367322

It is now common knowledge that enzymes are mobile entities relying on complex atomic-scale dynamics and coordinated conformational events for proper ligand recognition and catalysis. However, the exact role of protein dynamics in enzyme function remains either poorly understood or difficult to interpret. This mini-review intends to reconcile biophysical observations and biological significance by first describing a number of common experimental and computational methodologies employed to characterize atomic-scale residue motions on various timescales in enzymes, and second by illustrating how the knowledge of these motions can be used to describe the functional behavior of enzymes and even act upon it. Two biologically relevant examples will be highlighted, namely the HIV-1 protease and DNA polymerase ß enzyme systems.

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