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Lesovoy, D.

Publications and source records attributed to Lesovoy, D..

4 recordsLinked to original sources

Insight into Malt1 activation mechanism through synergetic approach of AlphaFold, MD Simulation and NMR dynamic analyses

Mucosa-associated lymphoid tissue lymphoma translocation protein 1 (MALT1) is a central regulator of immune signalling, yet the conformational dynamics governing its activation remain poorly defined. Building on our earlier solution-state analysis of apo MALT1(PCASP-Ig3)339-719, which revealed domain flexibility, dynamic autoinhibition, and sensitivity to physiological ionic conditions, we combine NMR relaxation, molecular dynamics simulations, and ensemble modelling to delineate how solution environment reshapes its conformational landscape. Because most structural information derives from dimeric or inhibitor-bound states, the behaviour of monomeric, ligand-free MALT1 in physiological solution has remained unclear. Here, MD simulations show that low-salt conditions drive all trajectories toward a unified inactive-like ensemble, marked by inward rotation of W580 and coordinated rearrangements of Loop 2 and Loop 3, indicating that the inactive state is energetically favoured and its reactivation kinetically suppressed. Physiological ionic strength partially restores access to active-like loop motions, aligning with NMR evidence that sodium modulates catalytic readiness. In contrast, high-salt conditions rigidify the PCASP-Ig3 module, suppressing loop fluctuations and preventing active-inactive transitions, thereby strongly enriching the active-state population. Importantly, the combined MD-NMR analysis demonstrates that the NMR-initiated ensembles provide the most faithful representation of backbone and loop dynamics under low-salt conditions, capturing substrate-independent loop rearrangements, stable hydrophobic-core behaviour, and the intrinsic transitions that shape MALT1s conformational equilibrium. Together, these findings identify ionic strength as a key regulator of MALT1 conformational equilibria,, highlighting how loop dynamics and domain flexibility tune its proteolytic competence and providing a dynamic framework for future structure-based modulation of MALT1 activity.

molecular biology↗

Accurate Protein Dynamic Conformational Ensembles: Combining AlphaFold, MD and Amide 15N(1H) NMR Relaxation.

Conformational heterogeneity is critical for protein function, but the validation of dynamic ensembles remains a challenge. In this study, we introduced an approach that integrates free MD simulations, using an AlphaFold-generated structure as the starting point, with experimental relaxation data to identify biologically relevant conformational ensembles. For the extracellular region of Streptococcus pneumoniae PsrSp, we found that only certain segments of the MD long trajectory aligned well with experimental data. The defined ensembles revealed two regions with increased flexibility that play important functional roles.

molecular biology↗

Crystallographic and NMR studies of Streptococcus pneumonia LCP protein PsrSp indicate the importance of dynamics in four long loops for ligand specificity

The crystal structure of the extracellular region of the second pneumococcal LCP, a polyisoprenyl-teichoic acid-peptidoglycan teichoic acid transferase PsrSp, was determined and refined to 2.15[A] resolution. Despite the low sequence homology with other LCP proteins, the PsrSp maintains the fold of the LCP domain and the positions of the 15 residues suggested to participate in the transferase function are conserved. The empty tunnel found in the PsrSp between the central {beta}-sheet and three -helices is wide enough to accommodate polyisoprenyl-teichoic acid. Comparison of the crystallographic temperature factors of LCP from distinct bacteria demonstrated that the four long loops located close to the teichoic acid and peptidoglycan binding sites have different relative mobility. To compare the dynamics of the PsrSp in crystalline state and in solution, NMR spectra were recorded, and 88% of the residues were assigned in the 1H-15N TROSY HSQC spectra. Comparison of the secondary structure of the crystal structure of PsrSp with NMR data demonstrated a perfect concordance between the results using these two methods. Moreover, the relative mobility of the essential loops estimated from the crystallographic B-factor is in good agreement with order parameter S2, predicted from chemical shift. We hypothesize that the dynamics of these loops are important for the substrate promiscuity of LCP proteins.

microbiology↗

Towards understanding of allostery in MALT1: a possible role of interdomain motions as revealed by NMR and AlphaFold

Mucosa-associated lymphoid tissue lymphoma-translocation protein 1 (MALT1) has emerged as an attractive target for the development of modulatory compounds, particularly in the treatment of lymphoma and other cancers. While the three-dimensional structure of MALT1(PCASP-Ig3)339-719 has been previously determined through X-ray analysis, its dynamic behaviour in solution has remained largely unexplored. We present here inaugural dynamic analyses of the apo MALT1(PCASP-Ig3)339-719 form along with its mutated variant, E549A. This investigation harnessed an array of NMR relaxation techniques, including longitudinal and transverse 15N auto-relaxation, heteronuclear NOE, transverse cross-correlated relaxation and NOE measurements between side-chain methyl groups. Our findings unequivocally confirm that MALT1(PCASP-Ig3)339-719 exists solely as a monomer in solution, and demonstrate that the two domains display semi-independent movements in relation to each other. Our extensive dynamic study, covering a range of time scales, along with the assessment of diverse conformational populations for MALT1(PCASP-Ig3)339-719, by Molecular Dynamic simulations, Alpha Fold modelling and PCA analysis, shed light at potential mechanisms underlying the allosteric regulation of this enzyme, and the specific importance of interdomain motions.

molecular biology↗