Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 20 de 3.480
Filter
1.
Nano Lett ; 24(20): 6078-6083, 2024 May 22.
Article in English | MEDLINE | ID: mdl-38723608

ABSTRACT

Gamma-prefoldin (γPFD), a unique chaperone found in the extremely thermophilic methanogen Methanocaldococcus jannaschii, self-assembles into filaments in vitro, which so far have been observed using transmission electron microscopy and cryo-electron microscopy. Utilizing three-dimensional stochastic optical reconstruction microscopy (3D-STORM), here we achieve ∼20 nm resolution by precisely locating individual fluorescent molecules, hence resolving γPFD ultrastructure both in vitro and in vivo. Through CF647 NHS ester labeling, we first demonstrate the accurate visualization of filaments and bundles with purified γPFD. Next, by implementing immunofluorescence labeling after creating a 3xFLAG-tagged γPFD strain, we successfully visualize γPFD in M. jannaschii cells. Through 3D-STORM and two-color STORM imaging with DNA, we show the widespread distribution of filamentous γPFD structures within the cell. These findings provide valuable insights into the structure and localization of γPFD, opening up possibilities for studying intriguing nanoscale components not only in archaea but also in other microorganisms.


Subject(s)
Methanocaldococcus , Molecular Chaperones , Molecular Chaperones/chemistry , Archaeal Proteins/chemistry , Archaeal Proteins/ultrastructure , Microscopy, Fluorescence/methods , Imaging, Three-Dimensional/methods
2.
Proc Natl Acad Sci U S A ; 121(19): e2403049121, 2024 May 07.
Article in English | MEDLINE | ID: mdl-38691587

ABSTRACT

Molecular chaperones assist in protein refolding by selectively binding to proteins in their nonnative states. Despite progress in creating artificial chaperones, these designs often have a limited range of substrates they can work with. In this paper, we present molecularly imprinted flexible polymer nanoparticles (nanoMIPs) designed as customizable biomimetic chaperones. We used model proteins such as cytochrome c, laccase, and lipase to screen polymeric monomers and identify the most effective formulations, offering tunable charge and hydrophobic properties. Utilizing a dispersed phase imprinting approach, we employed magnetic beads modified with destabilized whole-protein as solid-phase templates. This process involves medium exchange facilitated by magnetic pulldowns, resulting in the synthesis of nanoMIPs featuring imprinted sites that effectively mimic chaperone cavities. These nanoMIPs were able to selectively refold denatured enzymes, achieving up to 86.7% recovery of their activity, significantly outperforming control samples. Mechanistic studies confirmed that nanoMIPs preferentially bind denatured rather than native enzymes, mimicking natural chaperone interactions. Multifaceted analyses support the functionality of nanoMIPs, which emulate the protective roles of chaperones by selectively engaging with denatured proteins to inhibit aggregation and facilitate refolding. This approach shows promise for widespread use in protein recovery within biocatalysis and biomedicine.


Subject(s)
Molecular Chaperones , Nanoparticles , Polymers , Protein Denaturation , Nanoparticles/chemistry , Molecular Chaperones/chemistry , Molecular Chaperones/metabolism , Polymers/chemistry , Protein Refolding , Protein Folding , Cytochromes c/chemistry , Cytochromes c/metabolism , Laccase/chemistry , Laccase/metabolism , Lipase/chemistry , Lipase/metabolism
3.
Sci Rep ; 14(1): 12324, 2024 05 29.
Article in English | MEDLINE | ID: mdl-38811604

ABSTRACT

In order to become bioactive, proteins must be translated and protected from aggregation during biosynthesis. The ribosome and molecular chaperones play a key role in this process. Ribosome-bound nascent chains (RNCs) of intrinsically disordered proteins and RNCs bearing a signal/arrest sequence are known to interact with ribosomal proteins. However, in the case of RNCs bearing foldable protein sequences, not much information is available on these interactions. Here, via a combination of chemical crosslinking and time-resolved fluorescence-anisotropy, we find that nascent chains of the foldable globin apoHmp1-140 interact with ribosomal protein L23 and have a freely-tumbling non-interacting N-terminal compact region comprising 63-94 residues. Longer RNCs (apoHmp1-189) also interact with an additional yet unidentified ribosomal protein, as well as with chaperones. Surprisingly, the apparent strength of RNC/r-protein interactions does not depend on nascent-chain sequence. Overall, foldable nascent chains establish and expand interactions with selected ribosomal proteins and chaperones, as they get longer. These data are significant because they reveal the interplay between independent conformational sampling and nascent-protein interactions with the ribosomal surface.


Subject(s)
Protein Folding , Ribosomal Proteins , Ribosomes , Ribosomes/metabolism , Ribosomal Proteins/metabolism , Ribosomal Proteins/chemistry , Protein Binding , Molecular Chaperones/metabolism , Molecular Chaperones/chemistry , Intrinsically Disordered Proteins/metabolism , Intrinsically Disordered Proteins/chemistry , Protein Biosynthesis , Models, Molecular , Protein Conformation , Humans
4.
J Am Chem Soc ; 146(19): 13046-13054, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38710657

ABSTRACT

Common in biomacromolecules, kinetically trapped misfolded intermediates are often detrimental to the structures, properties, or functions of proteins or nucleic acids. Nature employs chaperone proteins but not nucleic acids to escort intermediates to correct conformations. Herein, we constructed a Jablonski-like diagram of a mechanochemical cycle in which individual DNA hairpins were mechanically unfolded to high-energy states, misfolded into kinetically trapped states, and catalytically relaxed back to ground-state hairpins by a DNA chaperone. The capacity of catalytic relaxation was demonstrated in a 1D DNA hairpin array mimicking nanoassembled materials. At ≥1 µM, the diffusive (or self-walking) DNA chaperone converted the entire array of misfolded intermediates to correct conformation in less than 15 s, which is essential to rapidly prepare homogeneous nanoassemblies. Such an efficient self-walking amplification increases the signal-to-noise ratio, facilitating catalytic relaxation to recognize a 1 fM DNA chaperone in 10 min, a detection limit comparable to the best biosensing strategies.


Subject(s)
DNA , Molecular Chaperones , Nucleic Acid Conformation , DNA/chemistry , Kinetics , Molecular Chaperones/chemistry , Catalysis
5.
Int J Biol Macromol ; 266(Pt 2): 131371, 2024 May.
Article in English | MEDLINE | ID: mdl-38580013

ABSTRACT

Bacterial caseinolytic protease-chaperone complexes participate in the elimination of misfolded and aggregated protein substrates. The spirochete Leptospira interrogans possess a set of Clp-chaperones (ClpX, ClpA, and ClpC), which may associate functionally with two different isoforms of LinClpP (ClpP1 and ClpP2). The L. interrogans ClpC (LinClpC) belongs to class-I chaperone with two active ATPase domains separated by a middle domain. Using the size exclusion chromatography, ANS dye binding, and dynamic light scattering analysis, the LinClpC is suggested to undergo nucleotide-induced oligomerization. LinClpC associates with either pure LinClpP1 or LinClpP2 isoforms non-preferentially and with equal affinity. Regardless, pure LinClpP isoforms cannot constitute an active protease complex with LinClpC. Interestingly, the heterocomplex LinClpP1P2 in association with LinClpC forms a functional proteolytic machinery and degrade ß-casein or FITC-casein in an energy-independent manner. Adding either ATP or ATPγS further fosters the LinClpCP1P2 complex protease activity by nurturing the functional oligomerization of LinClpC. The antibiotic, acyldepsipeptides (ADEP1) display a higher activatory role on LinClpP1P2 protease activity than LinClpC. Altogether, this work illustrates an in-depth study of hetero-tetradecamer LinClpP1P2 association with its cognate ATPase and unveils a new insight into the structural reorganization of LinClpP1P2 in the presence of chaperone, LinClpC to gain protease activity.


Subject(s)
Bacterial Proteins , Heat-Shock Proteins , Leptospira , Protein Multimerization , Adenosine Triphosphate/metabolism , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Endopeptidase Clp/metabolism , Endopeptidase Clp/chemistry , Heat-Shock Proteins/chemistry , Heat-Shock Proteins/metabolism , Leptospira/metabolism , Leptospira/enzymology , Leptospira interrogans/enzymology , Leptospira interrogans/metabolism , Molecular Chaperones/metabolism , Molecular Chaperones/chemistry , Protein Binding , Protein Isoforms/metabolism , Protein Isoforms/chemistry , Proteolysis
6.
Int J Biol Macromol ; 268(Pt 2): 131763, 2024 May.
Article in English | MEDLINE | ID: mdl-38657928

ABSTRACT

Hsp16.3 plays a vital role in the slow growth of Mycobacterium tuberculosis via its chaperone function. Many secretory proteins, including Hsp16.3 undergo acetylation in vivo. Seven lysine (K) residues (K64, K78, K85, K114, K119, K132 and K136) in Hsp16.3 are acetylated inside pathogen. However, how lysine acetylation affects its structure, chaperone function and pathogen's growth is still elusive. We examined these aspects by executing in vitro chemical acetylation (acetic anhydride modification) and by utilizing a lysine acetylation mimic mutant (Hsp16.3-K64Q/K78Q/K85Q/K114Q/K119Q/K132Q/K136Q). Far- and near-UV CD measurements revealed that the chemically acetylated proteins(s) and acetylation mimic mutant has altered secondary and tertiary structure than unacetylated/wild-type protein. The chemical modification and acetylation mimic mutation also disrupted the oligomeric assembly, increased surface hydrophobicity and reduced stability of Hsp16.3, as revealed by GF-HPLC, 4,4'-dianilino-1,1'-binaphthyl-5,5'-disulfonic acid binding and urea denaturation experiments, respectively. These structural changes collectively led to an enhancement in chaperone function (aggregation and thermal inactivation prevention ability) of Hsp16.3. Moreover, when the H37Rv strain expressed the acetylation mimic mutant protein, its growth was slower in comparison to the strain expressing the wild-type/unacetylated Hsp16.3. Altogether, these findings indicated that lysine acetylation improves the chaperone function of Hsp16.3 which may influence pathogen's growth in host environment.


Subject(s)
Bacterial Proteins , Lysine , Molecular Chaperones , Mycobacterium tuberculosis , Lysine/metabolism , Lysine/chemistry , Mycobacterium tuberculosis/metabolism , Mycobacterium tuberculosis/growth & development , Mycobacterium tuberculosis/genetics , Acetylation , Bacterial Proteins/metabolism , Bacterial Proteins/chemistry , Bacterial Proteins/genetics , Molecular Chaperones/metabolism , Molecular Chaperones/chemistry , Hydrophobic and Hydrophilic Interactions , Mutation , Structure-Activity Relationship , Chaperonins
7.
IUCrJ ; 11(Pt 3): 287-298, 2024 May 01.
Article in English | MEDLINE | ID: mdl-38656309

ABSTRACT

This work focuses on molecules that are encoded by the major histocompatibility complex (MHC) and that bind self-, foreign- or tumor-derived peptides and display these at the cell surface for recognition by receptors on T lymphocytes (T cell receptors, TCR) and natural killer (NK) cells. The past few decades have accumulated a vast knowledge base of the structures of MHC molecules and the complexes of MHC/TCR with specificity for many different peptides. In recent years, the structures of MHC-I molecules complexed with chaperones that assist in peptide loading have been revealed by X-ray crystallography and cryogenic electron microscopy. These structures have been further studied using mutagenesis, molecular dynamics and NMR approaches. This review summarizes the current structures and dynamic principles that govern peptide exchange as these relate to the process of antigen presentation.


Subject(s)
Antigen Presentation , Histocompatibility Antigens Class I , Molecular Chaperones , Antigen Presentation/immunology , Histocompatibility Antigens Class I/immunology , Histocompatibility Antigens Class I/metabolism , Histocompatibility Antigens Class I/chemistry , Humans , Molecular Chaperones/metabolism , Molecular Chaperones/chemistry , Molecular Chaperones/immunology , Peptides/immunology , Peptides/chemistry , Peptides/metabolism , Receptors, Antigen, T-Cell/immunology , Receptors, Antigen, T-Cell/metabolism , Receptors, Antigen, T-Cell/chemistry , Crystallography, X-Ray
8.
Biochem Biophys Res Commun ; 714: 149964, 2024 Jun 25.
Article in English | MEDLINE | ID: mdl-38669753

ABSTRACT

Human DDX3X, an important member of the DEAD-box family RNA helicases, plays a crucial role in RNA metabolism and is involved in cancer development, viral infection, and neurodegenerative disease. Although there have been many studies on the physiological functions of human DDX3X, issues regarding its exact targets and mechanisms of action remain unclear. In this study, we systematically characterized the biochemical activities and substrate specificity of DDX3X. The results demonstrate that DDX3X is a bidirectional RNA helicase to unwind RNA duplex and RNA-DNA hybrid driven by ATP. DDX3X also has nucleic acid annealing activity, especially for DNA. More importantly, it can function as a typical nucleic acid chaperone which destabilizes highly structured DNA and RNA in an ATP-independent manner and promotes their annealing to form a more stable structure. Further truncation mutations confirmed that the highly disordered N-tail and C-tail are critical for the biochemical activities of DDX3X. They are functionally complementary, with the N-tail being crucial. These results will shed new light on our understanding of the molecular mechanism of DDX3X in RNA metabolism and DNA repair, and have potential significance for the development of antiviral/anticancer drugs targeting DDX3X.


Subject(s)
Adenosine Triphosphate , DEAD-box RNA Helicases , Molecular Chaperones , Humans , Adenosine Triphosphate/metabolism , DEAD-box RNA Helicases/metabolism , DEAD-box RNA Helicases/genetics , DNA/metabolism , DNA/chemistry , Molecular Chaperones/metabolism , Molecular Chaperones/chemistry , Molecular Chaperones/genetics , RNA/metabolism , RNA/chemistry , RNA/genetics , Substrate Specificity
9.
Biomolecules ; 14(4)2024 Apr 11.
Article in English | MEDLINE | ID: mdl-38672487

ABSTRACT

Tuberculosis (TB) is the leading global cause of death f rom an infectious bacterial agent. Therefore, limiting its epidemic spread is a pressing global health priority. The chaperone-like protein HtpG of M. tuberculosis (Mtb) is a large dimeric and multi-domain protein with a key role in Mtb pathogenesis and promising antigenic properties. This dual role, likely associated with the ability of Heat Shock proteins to act both intra- and extra-cellularly, makes HtpG highly exploitable both for drug and vaccine development. This review aims to gather the latest updates in HtpG structure and biological function, with HtpG operating in conjunction with a large number of chaperone molecules of Mtb. Altogether, these molecules help Mtb recovery after exposure to host-like stress by assisting the whole path of protein folding rescue, from the solubilisation of aggregated proteins to their refolding. Also, we highlight the role of structural biology in the development of safer and more effective subunit antigens. The larger availability of structural information on Mtb antigens and a better understanding of the host immune response to TB infection will aid the acceleration of TB vaccine development.


Subject(s)
Antigens, Bacterial , Bacterial Proteins , Mycobacterium tuberculosis , Tuberculosis Vaccines , Virulence Factors , Mycobacterium tuberculosis/immunology , Antigens, Bacterial/immunology , Antigens, Bacterial/chemistry , Virulence Factors/immunology , Virulence Factors/chemistry , Humans , Tuberculosis Vaccines/immunology , Bacterial Proteins/immunology , Bacterial Proteins/chemistry , Tuberculosis/immunology , Tuberculosis/prevention & control , Tuberculosis/microbiology , Animals , Molecular Chaperones/immunology , Molecular Chaperones/chemistry , Molecular Chaperones/metabolism
10.
Biochemistry ; 63(9): 1147-1161, 2024 May 07.
Article in English | MEDLINE | ID: mdl-38640496

ABSTRACT

HdeA and HdeB are dimeric ATP-independent acid-stress chaperones, which protect the periplasmic proteins of enteric bacteria at pH 2.0 and 4.0, respectively, during their passage through the acidic environment of the mammalian stomach. Despite being structurally similar, they exhibit distinct functional pH optima and conformational prerequisite for their chaperone action. HdeA undergoes a dimer-to-monomer transition at pH 2.0, whereas HdeB remains dimeric at pH 4.0. The monomerization of HdeA exposes its hydrophobic motifs, which facilitates its interaction with the partially folded substrates. How HdeB functions despite maintaining its dimeric conformation has been poorly elucidated in the literature. Herein, we characterized the conformational states and stability of HdeB at its physiologically relevant pH and compared the data with those of HdeA. At pH 4.0, HdeB exhibited distinct spectroscopic signatures and higher stability against heat and guanidine-HCl-induced denaturation than at pH 7.5. We affirm that the pH 4.0 conformer of HdeB was distinct from that at pH 7.5 and that these two conformational states were hierarchically unrelated. Salt-bridge mutations that perturbed HdeB's intersubunit interactions resulted in the loss of its stability and function at pH 4.0. In contrast, mutations affecting intrasubunit interactions enhanced its function, albeit with a reduction in stability. These findings suggest that, unlike HdeA, HdeB acts as a noncanonical chaperone, where pH-dependent stability and conformational rearrangement at pH 4.0 play a core role in its chaperone function rather than its surface hydrophobicity. Such rearrangement establishes a stability-function trade-off that allows HdeB to function while maintaining its stable dimeric state.


Subject(s)
Escherichia coli Proteins , Hydrophobic and Hydrophilic Interactions , Molecular Chaperones , Protein Stability , Escherichia coli/metabolism , Escherichia coli/genetics , Escherichia coli Proteins/chemistry , Escherichia coli Proteins/metabolism , Escherichia coli Proteins/genetics , Hydrogen-Ion Concentration , Molecular Chaperones/metabolism , Molecular Chaperones/chemistry , Molecular Chaperones/genetics , Protein Conformation , Protein Denaturation , Protein Multimerization
11.
Nat Struct Mol Biol ; 31(5): 747-751, 2024 May.
Article in English | MEDLINE | ID: mdl-38467876

ABSTRACT

Pre-mRNA splicing by the spliceosome requires the biogenesis and recycling of its small nuclear ribonucleoprotein (snRNP) complexes, which are consumed in each round of splicing. The human U5 snRNP is the ~1 MDa 'heart' of the spliceosome and is recycled through an unknown mechanism involving major architectural rearrangements and the dedicated chaperones CD2BP2 and TSSC4. Late steps in U5 snRNP biogenesis similarly involve these chaperones. Here we report cryo-electron microscopy structures of four human U5 snRNP-CD2BP2-TSSC4 complexes, revealing how a series of molecular events primes the U5 snRNP to generate the ~2 MDa U4/U6.U5 tri-snRNP, the largest building block of the spliceosome.


Subject(s)
Cryoelectron Microscopy , Models, Molecular , Ribonucleoprotein, U5 Small Nuclear , Spliceosomes , Humans , Ribonucleoprotein, U5 Small Nuclear/metabolism , Ribonucleoprotein, U5 Small Nuclear/chemistry , Ribonucleoprotein, U5 Small Nuclear/genetics , Spliceosomes/metabolism , Spliceosomes/chemistry , Spliceosomes/ultrastructure , Molecular Chaperones/metabolism , Molecular Chaperones/chemistry , Protein Conformation , RNA Splicing , RNA-Binding Proteins/metabolism , RNA-Binding Proteins/chemistry , RNA-Binding Proteins/genetics
12.
Nat Struct Mol Biol ; 31(5): 752-756, 2024 May.
Article in English | MEDLINE | ID: mdl-38467877

ABSTRACT

The 20S U5 small nuclear ribonucleoprotein particle (snRNP) is a 17-subunit RNA-protein complex and a precursor of the U4/U6.U5 tri-snRNP, the major building block of the precatalytic spliceosome. CD2BP2 is a hallmark protein of the 20S U5 snRNP, absent from the mature tri-snRNP. Here we report a high-resolution cryogenic electron microscopy structure of the 20S U5 snRNP, shedding light on the mutually exclusive interfaces utilized during tri-snRNP assembly and the role of the CD2BP2 in facilitating this process.


Subject(s)
Cryoelectron Microscopy , Models, Molecular , Ribonucleoprotein, U5 Small Nuclear , Humans , Ribonucleoprotein, U5 Small Nuclear/chemistry , Ribonucleoprotein, U5 Small Nuclear/metabolism , Spliceosomes/metabolism , Spliceosomes/chemistry , Spliceosomes/ultrastructure , Protein Conformation , Molecular Chaperones/metabolism , Molecular Chaperones/chemistry
13.
Curr Opin Struct Biol ; 86: 102790, 2024 06.
Article in English | MEDLINE | ID: mdl-38432063

ABSTRACT

Proteome complexity has expanded tremendously over evolutionary time, enabling biological diversification. Much of this complexity is achieved by combining a limited set of structural units into long polypeptides. This widely used evolutionary strategy poses challenges for folding of the resulting multi-domain proteins. As a consequence, their folding differs from that of small single-domain proteins, which generally fold quickly and reversibly. Co-translational processes and chaperone interactions are important aspects of multi-domain protein folding. In this review, we discuss some of the recent experimental progress toward understanding these processes.


Subject(s)
Protein Domains , Protein Folding , Proteins/chemistry , Proteins/metabolism , Molecular Chaperones/metabolism , Molecular Chaperones/chemistry , Humans , Models, Molecular , Animals
14.
Adv Mater ; 36(19): e2308837, 2024 May.
Article in English | MEDLINE | ID: mdl-38351715

ABSTRACT

As large molecular tertiary structures, some proteins can act as small robots that find, bind, and chaperone target protein clients, showing the potential to serve as smart building blocks in self-assembly fields. Instead of using such intrinsic functions, most self-assembly methodologies for proteins aim for de novo-designed structures with accurate geometric assemblies, which can limit procedural flexibility. Here, a strategy enabling polymorphic clustering of quaternary proteins, exhibiting simplicity and flexibility of self-assembling paths for proteins in forming monodisperse quaternary cage particles is presented. It is proposed that the enzyme protomer DegQ, previously solved at low resolution, may potentially be usable as a threefold symmetric building block, which can form polyhedral cages incorporated by the chaperone action of DegQ in the presence of protein clients. To obtain highly monodisperse cage particles, soft, and hence, less resistive client proteins, which can program the inherent chaperone activity of DegQ to efficient formations of polymorphic cages, depending on the size of clients are utilized. By reconstructing the atomic resolution cryogenic electron microscopy DegQ structures using obtained 12- and 24-meric clusters, the polymorphic clustering of DegQ enzymes is validated in terms of soft and rigid domains, which will provide effective routes for protein self-assemblies with procedural flexibility.


Subject(s)
Protein Structure, Quaternary , Models, Molecular , Cryoelectron Microscopy , Molecular Chaperones/chemistry , Molecular Chaperones/metabolism
15.
FEBS J ; 291(9): 1925-1943, 2024 May.
Article in English | MEDLINE | ID: mdl-38349812

ABSTRACT

Functional bacterial amyloids play a crucial role in the formation of biofilms, which mediate chronic infections and contribute to antimicrobial resistance. This study focuses on the FapC amyloid fibrillar protein from Pseudomonas, a major contributor to biofilm formation. We investigate the initial steps of FapC amyloid formation and the impact of the chaperone-like protein FapA on this process. Using solution nuclear magnetic resonance (NMR), we recently showed that both FapC and FapA are intrinsically disordered proteins (IDPs). Here, the secondary structure propensities (SSPs) are compared to alphafold (DeepMind, protein structure prediction tool/algorithm: https://alphafold.ebi.ac.uk/) models. We further demonstrate that the FapA chaperone interacts with FapC and significantly slows down the formation of FapC fibrils. Our NMR titrations reveal ~ 18% of the resonances show FapA-induced chemical shift perturbations (CSPs), which has not been previously observed, the largest being for A82, N201, C237, C240, A241, and G245. These sites may suggest a specific interaction site and/or hotspots of fibrillation inhibition/control interface at the repeat-1 (R1)/loop-2 (L2) and L2/R3 transition areas and at the C-terminus of FapC. Remarkably, ~ 90% of FapA NMR signals exhibit substantial CSPs upon titration with FapC, the largest being for S63, A69, A80, and I92. A temperature-dependent effect of FapA was observed on FapC by thioflavin T (ThT) and NMR experiments. This study provides a detailed understanding of the interaction between the FapA and FapC, shedding light on the regulation and slowing down of amyloid formation, and has important implications for the development of therapeutic strategies targeting biofilms and associated infections.


Subject(s)
Amyloid , Bacterial Proteins , Biofilms , Molecular Chaperones , Biofilms/drug effects , Biofilms/growth & development , Amyloid/metabolism , Amyloid/chemistry , Molecular Chaperones/metabolism , Molecular Chaperones/chemistry , Molecular Chaperones/genetics , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Intrinsically Disordered Proteins/chemistry , Intrinsically Disordered Proteins/metabolism , Pseudomonas/metabolism , Protein Structure, Secondary , Nuclear Magnetic Resonance, Biomolecular
16.
Nanoscale ; 16(10): 5123-5129, 2024 Mar 07.
Article in English | MEDLINE | ID: mdl-38349359

ABSTRACT

We report a method of enzyme stabilisation exploiting the artificial protein chaperone properties of ß-cyclodextrin (ß-CD) covalently embedded in an ultrathin organosilica layer. Putative interaction points of this artificial chaperone system with the surface of the selected enzyme were studied in silico using a protein energy landscape exploration simulation algorithm. We show that this enzyme shielding method allows for drastic enhancement of enzyme stability under thermal and chemical stress conditions, along with broadening the optimal temperature range of the biocatalyst. The presence of the ß-CD macrocycle within the protective layer supports protein refolding after treatment with a surfactant.


Subject(s)
Cyclodextrins , Cyclodextrins/chemistry , Protein Folding , Molecular Chaperones/chemistry , Surface-Active Agents
17.
Protein Sci ; 33(2): e4895, 2024 Feb.
Article in English | MEDLINE | ID: mdl-38284490

ABSTRACT

Chaperones are a large family of proteins crucial for maintaining cellular protein homeostasis. One such chaperone is the 70 kDa heat shock protein (Hsp70), which plays a crucial role in protein (re)folding, stability, functionality, and translocation. While the key events in the Hsp70 chaperone cycle are well established, a relatively small number of distinct substrates were repetitively investigated. This is despite Hsp70 engaging with a plethora of cellular proteins of various structural properties and folding pathways. Here we analyzed novel Hsp70 substrates, based on tandem repeats of NanoLuc (Nluc), a small and highly bioluminescent protein with unique structural characteristics. In previous mechanical unfolding and refolding studies, we have identified interesting misfolding propensities of these Nluc-based tandem repeats. In this study, we further investigate these properties through in vitro bulk experiments. Similar to monomeric Nluc, engineered Nluc dyads and triads proved to be highly bioluminescent. Using the bioluminescence signal as the proxy for their structural integrity, we determined that heat-denatured Nluc dyads and triads can be efficiently refolded by the E. coli Hsp70 chaperone system, which comprises DnaK, DnaJ, and GrpE. In contrast to previous studies with other substrates, we observed that Nluc repeats can be efficiently refolded by DnaK and DnaJ, even in the absence of GrpE co-chaperone. Taken together, our study offers a new powerful substrate for chaperone research and raises intriguing questions about the Hsp70 mechanisms, particularly in the context of structurally diverse proteins.


Subject(s)
Escherichia coli Proteins , Heat-Shock Proteins , Luciferases , Heat-Shock Proteins/chemistry , Escherichia coli/metabolism , Protein Folding , HSP40 Heat-Shock Proteins/metabolism , Escherichia coli Proteins/chemistry , Bacterial Proteins/chemistry , HSP70 Heat-Shock Proteins/chemistry , Molecular Chaperones/chemistry
18.
Expert Opin Drug Discov ; 19(1): 57-71, 2024.
Article in English | MEDLINE | ID: mdl-37840283

ABSTRACT

INTRODUCTION: The PAQosome is a 12-subunit complex that acts as a co-factor of the molecular chaperones HSP90 and HSP70. This co-chaperone has been shown to participate in assembly and maturation of several protein complexes, including nuclear RNA polymerases, RNA processing factors, the ribosome, PIKKs, and others. Subunits of the PAQosome, adaptors, and clients have been reported to be involved in various diseases, making them interesting targets for drug discovery. AREA COVERED: In this review, the authors cover the detailed mechanisms of PAQosome and chaperone function. Specifically, the authors summarize the status of the PAQosome and some related chaperones and co-chaperones as candidate targets for drug discovery. Indeed, a number of compounds are currently being tested for the development of treatments against diseases, such as cancers and neurodegenerative conditions. EXPERT OPINION: Searching for new drugs targeting the PAQosome requires a better understanding of PAQosome subunit interactions and the discovery of new interaction partners. Thus, PAQosome subunit crystallization is an important experiment to initiate virtual screening against new target and the development of in silico tools such as AlphaFold-multimer could accelerate the search for new interaction partner and determine more rapidly the interaction pocket needed for virtual drug screening.


Subject(s)
Molecular Chaperones , Neurodegenerative Diseases , Humans , Molecular Chaperones/chemistry , Molecular Chaperones/metabolism , HSP90 Heat-Shock Proteins/chemistry , HSP90 Heat-Shock Proteins/genetics , HSP90 Heat-Shock Proteins/metabolism , Protein Binding
19.
FEBS J ; 291(1): 158-176, 2024 01.
Article in English | MEDLINE | ID: mdl-37786925

ABSTRACT

Protein aggregation is a biological phenomenon caused by the accumulation of misfolded proteins. Amyloid beta (Aß) peptides are derived from the cleavage of a larger membrane protein molecule and accumulate to form plaques extracellularly. According to the amyloid hypothesis, accumulation of Aß aggregates in the brain is primarily responsible for the pathogenesis of Alzheimer's disease (AD). Therefore, the disassembly of Aß aggregates may provide opportunities for alleviating or treating AD. Here, we show that the novel protein targeting machinery from chloroplast, chloroplast signal recognition particle 43 (cpSRP43), is an ATP-independent membrane protein chaperone that can both prevent and reverse Aß aggregation effectively. Using of thioflavin T dye, we obtained the aggregation kinetics of Aß aggregation and determined that the chaperone prevents Aß aggregation in a concentration-dependent manner. Size exclusion chromatography and sedimentation assays showed that 10-fold excess of cpSRP43 can keep Aß in the soluble monomeric form. Electron microscopy showed that the fibril structure was disrupted in the presence of this chaperone. Importantly, cpSRP43 utilizes the binding energy to actively remodel the preformed Aß aggregates without assistance by a co-chaperone and ATP, emphasizing its unique function among protein chaperones. Moreover, when sodium chloride concentration is higher than 25 mm, the Aß aggregation rate increases drastically to form tightly associated aggregates and generate more oligomers. Our results demonstrate that the presence of cpSRP43 and low NaCl levels inhibit or retard Aß peptide aggregation, potentially opening new avenues to strategically develop an effective treatment for AD.


Subject(s)
Amyloid beta-Peptides , Chloroplast Proteins , Membrane Proteins , Molecular Chaperones , Protein Aggregates , Signal Recognition Particle , Molecular Chaperones/chemistry , Membrane Proteins/chemistry , Amyloid beta-Peptides/chemistry , Sodium Chloride/chemistry , Signal Recognition Particle/chemistry , Chloroplast Proteins/chemistry , Microscopy, Electron , Kinetics , Humans
20.
Protein J ; 43(1): 39-47, 2024 Feb.
Article in English | MEDLINE | ID: mdl-38017314

ABSTRACT

Therapeutic proteins are potent, fast-acting drugs that are highly effective in treating various conditions. Medicinal protein usage has increased in the past 10 years, and it will evolve further as we better understand disease molecular pathways. However, it is associated with high processing costs, limited stability, difficulty in being administered as an oral medication, and the inability of large proteins to penetrate tissue and reach their target locations. Many methods have been developed to overcome the problems with the stability and chaperone activity of therapeutic proteins, viz., the addition of external agents (changing the properties of the surrounding solvent by using stabilizing excipients, e.g., amino acids, sugars, polyols) and internal agents (chemical modifications that influence its structural properties, e.g., mutations, glycosylation). However, these methods must completely clear protein instability and chaperone issues. There is still much work to be done on finetuning chaperone proteins to increase their biological efficacy and stability. Methylglyoxal (MGO), a potent dicarbonyl compound, reacts with proteins and forms covalent cross-links. Much research on MGO scavengers has been conducted since they are known to alter protein structure, which may result in alterations in biological activity and stability. MGO is naturally produced within our body, however, its impact on chaperones and protein stability needs to be better understood and seems to vary based on concentration. This review highlights the efforts of several research groups on the effect of MGO on various proteins. It also addresses the impact of MGO on a client protein, α-crystallin, to understand the potential solutions to the protein's chaperone and stability problems.


Subject(s)
Pyruvaldehyde , alpha-Crystallins , Humans , Pyruvaldehyde/chemistry , Pyruvaldehyde/pharmacology , Magnesium Oxide , alpha-Crystallins/chemistry , alpha-Crystallins/metabolism , Molecular Chaperones/chemistry , Protein Folding
SELECTION OF CITATIONS
SEARCH DETAIL
...