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Biology subjects

Elgeti, M.

Publications and source records attributed to Elgeti, M..

3 recordsLinked to original sources

Exploring the bistable equilibrium of methylated CpG DNA recognition by the MBD2 protein

Methyl-CpG binding domain 2 (MBD2) is a critical epigenetic regulator that selectively binds methylated CpG dinucleotides, key marks controlling gene regulation and chromatin organization. Understanding the interactions and conformational dynamics underlying this high selectivity is essential to elucidate MBD2s regulatory role. Here, using extensive classical MD simulations totaling over 277 {micro}s, we explored the formation of the MBD2-mCpG recognition complex. By initially positioning MBD2 one base pair downstream of its target, we observed its transition to the target site within microseconds. Notably, upon binding, MBD2 adopts two distinct stable conformations: a primary state closely resembling the X-ray crystal structure, and a secondary state of reduced affinity that nevertheless retains comparable selectivity for mCpG. Our results establish S189 as a key macro-switch; loss of its interaction with the methylcytosine backbone shifts the equilibrium toward the secondary state. This is corroborated by MD simulations of the S189A mutant, which preferentially adopts the secondary state-like conformation. Complementary NMR experiments confirm that S189A mutation does not alter mCpG selectivity, while fluorescence polarization measurements reveals a reduced binding affinity, consistent with our MD simulations results. Together, these findings indicate that MBD2 binding to methylated CpG involves a bistable equilibrium, providing new insights into how high affinity and adaptability are balanced in epigenetic recognition. In a broader context, our findings suggest that such alternative bound-state equilibria may represent an inherent feature of specific protein-DNA complexes.

molecular biology↗

Angiotensin receptor conformations stabilized by biased ligands differentially modulate β-arrestin interactions

"Biased" ligands of the angiotensin II type 1 receptor (AT1R) preferentially activate G protein or {beta}-arrestin pathways by stabilizing distinct receptor conformations. Here we show that {beta}-arrestin-biased AT1R ligands further vary in their ability to stabilize different modes of {beta}-arrestin interaction, specifically interactions with the AT1R seven-transmembrane core versus the phosphorylated C-terminus. By combining biochemical assays with double electron-electron resonance (DEER) spectroscopy and integrative modeling, we show that ligands less effective at stabilizing the core complex promote an AT1R conformation with an intermediate transmembrane helix 6 position that is incompatible with {beta}-arrestin core binding. Since the core and phosphosite interactions differentially activate the signaling, internalization, and desensitization functions of {beta}-arrestin, our data demonstrate that the allosteric effects of GPCR ligands could directly modulate {beta}-arrestin activities. This "intra-transducer bias," or bias toward various functions of the same transducer, could enable finer control of GPCR drugs pharmacology than previously thought possible.

biochemistry↗

Conformational dynamics of the μ-opioid receptor determine ligand intrinsic efficacy

The -opioid receptor (OR) is an important target for pain management and the molecular understanding of drug action will facilitate the development of better therapeutics. Here we show, using double electron-electron resonance (DEER) and single-molecule fluorescence resonance energy transfer (smFRET), how ligand-specific conformational changes of the OR translate into a broad range of intrinsic efficacies at the transducer level. We identify several cytoplasmic receptor conformations interconverting on different timescales, including a pre-activated receptor conformation which is capable of G protein binding, and a fully activated conformation which dramatically lowers GDP affinity within the ternary complex. Interaction of {beta}-arrestin-1 with the OR core binding site appears less specific and occurs with much lower affinity than binding of G protein Gi. One-Sentence SummaryLigand-dependent conformational dynamics of the -opioid receptor determine downstream signaling efficacy.

biochemistry↗