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Ianos, A.

Publications and source records attributed to Ianos, A..

2 recordsLinked to original sources

How Phosphorylation of How Phosphorylation of alpha/beta-Tubulin Perturbs Microtubule Structure: A Computational Study

Microtubules are cytoskeletal structures composed of polymers of /{beta}-tubulin heterodimers that enable cell division and motility by a process of alternating episodes of polymerization and depolymerization (dynamic instability). Transition from a polymerizing to a depolymerizing microtubule is triggered at the interdimer interface by Glu254 in -tubulin (:Glu254), which hydrolyzes GTP bound to {beta}-tubulin ({beta}:GTP). The process is regulated by phosphorylation of -tubulin (Ser165) or {beta}-tubulin (Ser172) via signaling protein kinases (PKC, CDK1). All-atom molecular dynamics simulations of /{beta}-tubulin 6-mer systems are used to screen the cryo-EM structure of a microtubule (PDB 3J6E) for structural responses to phosphorylation of each tubulin subunit. In terms of global structure, microtubules with phosphorylated -tubulin have a straight conformation attributed to a growing microtubule, whereas MTs with phosphorylated {beta}-tubulin are curved, characteristic of a disassembling MT. Phospho--tubulin initiates displacement of key secondary structures (helix H8, loop T5) at the inter-dimer interface, shifts the {beta}:GTP nucleotide by 5 [A], and immobilizes the {gamma}-phosphate of {beta}:GTP through increased H-bonding with {beta}-tubulin. Phospho-{beta}-tubulin produces fewer structural effects and has a more flexible {beta}:GTP. For {beta}:GTP hydrolysis, the phospho-{beta}-tubulin system displays an extensive network of water molecules between :Glu254 and the {gamma}-phosphate of {beta}:GTP, facilitating its hydrolysis. In contrast, phospho--tubulin displays a discontinuous network of water molecules that predicts a diminished capacity for {beta}:GTP hydrolysis. These findings provide a detailed framework for understanding how phosphorylation of each tubulin subunit restructures the inter-dimer interface to modulate {beta}:GTP hydrolysis, global structure, and dynamic instability in response to key signaling protein kinases.

biochemistry↗

Nanoplastics Penetration Across the Blood-Brain Barrier

Microplastics and nanoplastics (MNPs), originating from plastic degradation, have arisen to be a threat to ecology and human health. Alarmingly, the penetration of MNPs across the highly selective blood-brain barrier (BBB) poses an emerging and urgent risk, yet its molecular mechanism remains unexplored. In this work, using long-time-scale (over 27 s) all-atom explicit solvent steered molecular dynamics, we examine the free energy of the passive permeation of four polymer nanoparticles: polyethylene, polypropylene, polystyrene, and polyethylene terephthalate. Polyethylene and polypropylene nanoparticles exhibited a remarkable preference for entering the BBB, attributed to their high hydrophobicity. Our study reveals that polymers can enter the BBB as polymerized nanoplastics and exit as dispersed polymer chains as the nanoparticles dissolve within the BBB. Further, the crystalline structure of polyethylene nanoparticles is found to adopt varying orientations. Our work advances the knowledge about the mechanism of nanoplastic penetration across the BBB, which could aid in the rational design of therapeutics for nanoplastic penetration inhibitors. TOC Graphics O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=151 SRC="FIGDIR/small/675462v1_ufig1.gif" ALT="Figure 1"> View larger version (71K): org.highwire.dtl.DTLVardef@1b20796org.highwire.dtl.DTLVardef@1102985org.highwire.dtl.DTLVardef@15fc22org.highwire.dtl.DTLVardef@15c2260_HPS_FORMAT_FIGEXP M_FIG C_FIG

biophysics↗