A highly conserved residue unlocks thermostability in β-glucuronidases.
A highly conserved residue unlocks thermostability in β-glucuronidases.
- Research Article
70
- 10.1021/jacs.8b08138
- Nov 7, 2018
- Journal of the American Chemical Society
Immobilization on solid supports provides an effective way to improve enzyme stability and simplify downstream processing for biotechnological applications, which has been widely used in research and in applications. However, surface immobilization may disrupt enzyme structure due to interactions between the enzyme and the supporting substrate, leading to a loss of the enzyme catalytic efficiency and stability. Here, we use a model enzyme, nitroreductase (NfsB), to demonstrate that engineered variants with two strategically positioned surface-tethering sites exhibit improved enzyme stability when covalently immobilized onto a surface. Tethering sites were designed based on molecular dynamics (MD) simulations, and enzyme variants containing cysteinyl residues at these positions were expressed, purified, and immobilized on maleimide-terminated self-assembled monolayer (SAM) surfaces. Sum frequency generation (SFG) vibrational spectroscopy and attenuated total reflection Fourier transform infrared (ATR-FTIR) spectroscopy were used to deduce the NfsB enzyme orientations, which were found to be consistent with those predicted from the MD simulations. Thermal stability analyses demonstrated that NfsB variants immobilized through two tethering sites exhibited generally improved thermal stability compared with enzymes tethered at only one position. For example, NfsB enzyme chemically immobilized via positions 423 and 111 exhibits at least 60% stability increase compared to chemically immobilized NfsB mutant via a single site. This research develops a generally applicable and systematic approach using a combination of simulation and experimental methods to rationally select protein immobilization sites for the optimization of surface-immobilized enzyme activity and stability.
- Research Article
21
- 10.1016/j.fochx.2025.102217
- Jan 1, 2025
- Food chemistry: X
Screening and evaluation of novel DPP-IV inhibitory peptides in goat milk based on molecular docking and molecular dynamics simulation.
- Research Article
11
- 10.1021/acs.jafc.4c05072
- Oct 9, 2024
- Journal of agricultural and food chemistry
Formate dehydrogenase can be utilized as a biocatalyst in the bioelectrocatalysis of converting CO2 into formic acid. However, its industrial application has been hindered by limited thermal stability. This study successfully obtained a mutant (D533S/E684I) with enhanced thermal stability and catalytic activity through the rational design of flexible regions. The mutant exhibited a half-life (t1/2) 1.5 times longer than the wild type (WT) at 35 °C, along with a specific enzyme activity 7.46 times higher than that of the WT. Additionally, the catalytic efficiency (kcat/Km value) of the mutant toward the substrate was 2.72 s-1·mM-1, representing a 19.4-fold increase compared to the WT (0.14 s-1·mM-1). Formic acid production reached 53.4 mM through bioelectrocatalysis after 10 h, utilizing the mutant as the biocatalyst. Molecular dynamics simulations and structural analysis were employed to investigate the molecular mechanisms behind the enhanced thermal stability and activity. The displacement of a highly flexible region in the mutant may counteract the stability-activity trade-off. This study proposed a method for improving both thermal stability and activity in enzyme evolution.
- Research Article
4
- 10.1080/07391102.2020.1864662
- Dec 28, 2020
- Journal of Biomolecular Structure and Dynamics
Serum paraoxonase1 (PON1) has special function in human body organism including the antioxidant and anti-atherogenic properties. In the present study, the effect of TiO2 nanoparticles on the activity and structure of the PON1 has been evaluated through in vivo and in silico methods. After treatments of the rats with different doses of TiO2 NPs, blood samples were collected and serum PON1 activity was measured by phenylacetate and paraoxon as substrate. In addition, the effects of TiO2 NP on enzyme structure were analyzed through Molecular dynamic (MD) simulation via Gromacs software package to obtain RMSD, RMSF, Rg, SASA, and secondary structures values. A significant reduction (p < 0.05) in arylesterase & paraoxonase activities of serum PON1 were monitored in Spectrometric assays when rats were treated with 150 and 200 mg/kg doses of TiO2 NPs. RMSD, RG, RMSF, and SASA values in the presence of TiO2 have been increased while RMSF values of the L1 and L2 loops (gate of the catalytic site) have been reduced. Moreover, Hydrogen bonds and secondary structure values of the enzyme decreased in the presence of TiO2 NP. All of these MD simulation results could indicate the instability of the PON1 structure bounded to TiO2 NP. TiO2 NP could cause a disturbance in the enzyme structure and function of PON1 based on the results. PON1 prevents oxidation of LDL and can delay atherosclerosis progression while in the presence of TiO2 NP these protective effects could be endangered. Communicated by Ramaswamy H. Sarma
- Research Article
1
- 10.1016/j.compbiolchem.2025.108678
- Feb 1, 2026
- Computational biology and chemistry
Design, synthesis, and computational evaluation of ester prodrugs of isoguvacine as potential antiseizure medications.
- Research Article
7
- 10.1016/j.ijbiomac.2024.138372
- Jan 1, 2025
- International Journal of Biological Macromolecules
The development of modular virus-like particle (VLP) vaccine platforms with genetically inserted antigens in viral structural proteins shows great promise for advancing vaccine technology. However, the instability of many constructs leads to trial-and-error approaches, and the challenge of predicting stability based solely on amino acid sequences remains unresolved, yet highly appealing. This study evaluates the stability of wild-type murine polyomavirus (MPV) VP1 capsomeres and three engineered chimeric variants using molecular dynamics (MD) simulations and laboratory experiments. MD simulations, based on AlphaFold2 predictions and up-to-date all-atom force fields, accurately predicted the thermal stability and hydrophobicity of VP1-based capsomeres. Thermodynamic analysis revealed that binding energies from simulations reliably indicate thermal stability. Experiments and simulation results showed that inserts influence the stability of capsomeres differently, with larger insertions generally having a greater impact on the structures of capsomeres. This leads to increased intra-subunit distances and a higher proportion of flexible regions in the capsomere chassis. Capsomeres with less compact structures were found to have lower thermal stability. Specifically, the thermal transitional temperature (Tm) of the wild-type capsomeres was 46.9 °C, while the Tm values of the three chimeric derivatives were 42.0 °C, 38.8 °C, and 37.7 °C, reflecting a correlation between decreased thermal stability and reduced structural compactness. This research presents a robust approach for predicting the stability of novel VLP constructs based on amino acid sequences, potentially enhancing vaccine design by reducing failures, and suggests a shift towards minimal epitope insertions for improved stability.
- Research Article
- 10.1016/j.enmf.2025.08.002
- Aug 1, 2025
- Energetic Materials Frontiers
Internal standard-assisted ab initio MD simulation for comparative thermal stability and decomposition mechanisms of energetic materials
- Research Article
2
- 10.1016/j.mcat.2024.114651
- Oct 30, 2024
- Molecular Catalysis
Competitive inhibition of family GH11 Aspergillus fumigatus endo-xylanase A by Oryza sativa xylanase inhibitor protein: Investigating key interface residues and non-covalent interactions
- Research Article
114
- 10.1016/j.ijbiomac.2004.05.004
- Jun 19, 2004
- International Journal of Biological Macromolecules
Interaction of aldehydes with collagen: effect on thermal, enzymatic and conformational stability
- Research Article
33
- 10.1021/jp200330z
- May 27, 2011
- The Journal of Physical Chemistry B
Glycosyl hydrolases are enzymes capable of breaking the glycosidic linkage of polysaccharides and have considerable industrial and biotechnological applications. Driven by the later applications, it is frequently desirable that glycosyl hydrolases display stability and activity under extreme environment conditions, such as high temperatures and extreme pHs. Here, we present X-ray structure of the hyperthermophilic laminarinase from Rhodothermus marinus (RmLamR) determined at 1.95 Å resolution and molecular dynamics simulation studies aimed to comprehend the molecular basis for the thermal stability of this class of enzymes. As most thermostable proteins, RmLamR contains a relatively large number of salt bridges, which are not randomly distributed on the structure. On the contrary, they form clusters interconnecting β-sheets of the catalytic domain. Not all salt bridges, however, are beneficial for the protein thermostability: the existence of charge-charge interactions permeating the hydrophobic core of the enzymes actually contributes to destabilize the structure by facilitating water penetration into hydrophobic cavities, as can be seen in the case of mesophilic enzymes. Furthermore, we demonstrate that the mobility of the side-chains is perturbed differently in each class of enzymes. The side-chains of loop residues surrounding the catalytic cleft in the mesophilic laminarinase gain mobility and obstruct the active site at high temperature. By contrast, thermophilic laminarinases preserve their active site flexibility, and the active-site cleft remains accessible for recognition of polysaccharide substrates even at high temperatures. The present results provide structural insights into the role played by salt-bridges and active site flexibility on protein thermal stability and may be relevant for other classes of proteins, particularly glycosyl hydrolases.
- Peer Review Report
- 10.7554/elife.82447.sa1
- Nov 1, 2022
Benzene mapping simulations of envelope protein rafts from six different flaviviruses reveal a conserved cryptic site whose cluster of ionisable residues is likely responsible for orchestrating pH-dependent conformational changes during fusion, thereby representing an attractive target for antiviral development.
- Research Article
13
- 10.1016/j.heliyon.2024.e37538
- Sep 1, 2024
- Heliyon
Insights into bacterial interactions: Comparing fluorine-containing 1,2,4-triazoles to antibiotics using molecular docking and molecular dynamics approaches
- Research Article
23
- 10.1016/j.jscs.2022.101554
- Sep 19, 2022
- Journal of Saudi Chemical Society
Multiple sclerosis (MS) is an autoimmune and inflammatory demyelinating disease of the central nervous system (CNS) that affects approximately 2.8 million people worldwide. Although numerous studies have been conducted to investigate novel therapeutic targets and lead compounds, few drug choices are available to treat MS patients. The etiology of this disease is still poorly understood. However, oxidative stress is proposed as one of the underlining pathology. The neuronal antioxidant enzyme glutathione peroxidase 4 (GPx4) is responsible for scaffolding toxic peroxide phospholipids and reducing neuronal death within the CNS. Therefore, screening for lead compounds able to activate this essential enzyme might protect neuronal cells from damage and slow the disease progression. This study aimed to identify potential activators of GPx4, an essential inhibitor to ferroptosis, as a novel neuroprotective strategy in MS treatment. For understanding the binding of the four selected compounds to GPX4 protein showing the mechanism of the interaction, molecular docking analysis and molecular dynamic (MD) simulation were used. The study was carried out through various computational methods using Autodock Vina for docking of the protein and ligand and Desmond for MD simulation. The four tested compounds used to activate GPx4 are as follows: ferrostatin, lapatinib, liproxstatin-1, and PKUMDL-LDL-102. Results showed that the lapatinib had greater log P value (6.17) which indicates higher permeability through blood brain barrio (BBB) to exirt the proposed neurological effect. In the molecular docking analysis, the best docking scores was displayed by Lapatinib (−7.6 kcal/mol). Ferrostatin, Lapatinib, and Liproxstatin-1 almost bind in the similar sites of the target protein, while PKUMDL-LC-102 binds at a different site. Furthermore, MD simulation study showed a stable system for lapatinib and liproxstatin-1 as confirmed by RMSD and RMSF values during 100 ns trajectories. Additionally, the most negative ΔG Bind score (the lowest) which considered the best was exhibited by lapatinib (−47.52 Kcal/mol). The test compounds were further inspected for their intersction with GPx4 in terms of hydrophobic, hydrogen and other bonding types beside the stability of these bonds by observing the protein–ligand contact within 100 ns trajectories. Interestingly, the receptor–ligand complex showed deep continuous bands for Lapatinib with Lys127 and Gly128. In conclusion, among the four studied compounds Lapatinib could be a promising scaffold for developing effective leads capable of activating GPx4 and assist in the treatment of MS.
- Research Article
- 10.1016/j.compbiolchem.2025.108759
- Feb 1, 2026
- Computational biology and chemistry
Conformational dynamics and energetic perturbations in human β-spectrin-II mediated by calpain cleavage-related mutations: Insights from enhanced sampling simulations.
- Research Article
- 10.2174/0126667975280881240102111455
- Feb 1, 2025
- Coronaviruses
Background: The spike glycoprotein of SARS-CoV-2, via its S1-subunit, binds with host angiotensin-converting enzyme 2 (ACE-2) receptors, and its S2-subunit mediates the fusion of the virus to the host cell. The entry of SARS-CoV-2 inside the host cell can be prevented by inhibition of the receptor binding domain (RBD) of S1-subunit of the spike. Anacyclus pyrethrum, a native herb of Algeria, Spain and Morocco has antidepressant, analgesic, antimicrobial, anesthetic, antioxidant, anti-inflammatory, aphrodisiac, antidiabetic and immunostimulant effects. Still, its antiviral effect has not been established yet. Methodology: The present study deals with ADMET (Absorption, Distribution, Metabolism, Excretion and Toxicity), molecular docking and molecular dynamic simulation based investigation to evaluate the potential of Anacyclus pyrethrum constituents for effective spike RBD inhibition. Results: ADMET analysis revealed that 10 out of 12 significant constituents belongs to toxicity class 4 to 6 proving least toxicity of the plant extract with high LD50 values. Molecular docking analysis of 10 considered compounds revealed that morphinan-6-one, 4,5.alpha.-epoxy-3-hydroxy-17-methyl, a derivative of morphine (well-known analgesic and anti-inflammatory compound) gave the maximum negative binding energy of -6.9Kcal/mol in best-docked conformation with spike RBD having 2 hydrogen bonds. Molecular dynamic simulation disclosed effective RMSD, RMSF, and Rg values over the simulation trajectory with significant hydrogen bonding proving stable interaction of the compound with that of the spike RBD. Conclusion: Hence, all these outcomes revealed the outstanding potential of the Anacyclus pyrethrum extract to inhibit the spike RBD of SARS-CoV-2. Therefore, further in-vitro investigation can develop natural and effective treatments against COVID-19 disease.