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Unraveling Entropic Rate Acceleration Induced by Solvent Dynamics in Membrane Enzymes
Published on: January 16, 2016
Peptaibol antiamoebin I: spatial structure, backbone dynamics, interaction with bicelles and lipid-protein nanodiscs,
Zakhar O Shenkarev1, Alexander S Paramonov, Ekaterina N Lyukmanova
1Shemyakin & Ovchinnikov Institute of Bioorganic Chemistry, Russian Academy of Sciences, Miklukho-Maklaya str., 16/10, 117997 Moscow, Russia. zh@nmr.ru
Abstract:
Antiamoebin I (Aam-I) is a membrane-active peptaibol antibiotic isolated from fungal species belonging to the genera Cephalosporium, Emericellopsis, Gliocladium, and Stilbella. In comparison with other 16-amino acid-residue peptaibols, e.g., zervamicin IIB (Zrv-IIB), Aam-I possesses relatively weak biological and channel-forming activities. In MeOH solution, Aam-I demonstrates fast cooperative transitions between right-handed and left-handed helical conformation of the N-terminal (1-8) region. We studied Aam-I spatial structure and backbone dynamics in the membrane-mimicking environment (DMPC/DHPC bicelles)(1) ) by heteronuclear (1) H,(13) C,(15) N-NMR spectroscopy. Interaction with the bicelles stabilizes the Aam-I right-handed helical conformation retaining significant intramolecular mobility on the ms-μs time scale. Extensive ms-μs dynamics were also detected in the DPC and DHPC micelles and DOPG nanodiscs. In contrast, Zrv-IIB in the DPC micelles demonstrates appreciably lesser mobility on the μs-ms time scale. Titration with Mn(2+) and 16-doxylstearate paramagnetic probes revealed Aam-I binding to the bicelle surface with the N-terminus slightly immersed into hydrocarbon region. Fluctuations of the Aam-I helix between surface-bound and transmembrane (TM) state were observed in the nanodisc membranes formed from the short-chain (diC12 : 0) DLPC/DLPG lipids. All the obtained experimental data are in agreement with the barrel-stave model of TM pore formation, similarly to the mechanism proposed for Zrv-IIB and other peptaibols. The observed extensive intramolecular dynamics explains the relatively low activity of Aam-I.
Insights
Antiamoebin I (Aam-I), a fungal antibiotic, exhibits weak activity due to extensive internal dynamics. NMR studies in membrane environments reveal its helical structure and dynamic transitions, explaining its reduced channel-forming capacity.
Area of Science:
- Biophysics
- Structural Biology
- Antimicrobial Peptides
Background:
- Antiamoebin I (Aam-I) is a membrane-active peptaibol antibiotic with lower activity than related peptides like zervamicin IIB (Zrv-IIB).
- Aam-I exhibits conformational flexibility in solution, transitioning between helical states.
Purpose of the Study:
- To investigate the spatial structure and backbone dynamics of Antiamoebin I (Aam-I) in membrane-mimicking environments.
- To elucidate the relationship between Aam-I's dynamics and its biological activity.
Main Methods:
- Heteronuclear (1)H,(13)C,(15)N-NMR spectroscopy in DMPC/DHPC bicelles, DPC and DHPC micelles, and DOPG nanodiscs.
- Paramagnetic probe titration using Mn(2+) and 16-doxylstearate to determine binding interactions.
Main Results:
- Membrane environments stabilize Aam-I's right-handed helical conformation, but significant ms-μs timescale dynamics persist.
- Aam-I binds to bicelle surfaces with its N-terminus partially inserted.
- Fluctuations between surface-bound and transmembrane states were observed in nanodisc membranes.
- Compared to Zrv-IIB, Aam-I shows greater mobility on the μs-ms timescale.
Conclusions:
- The extensive intramolecular dynamics of Aam-I in membrane environments correlate with its relatively weak biological and channel-forming activities.
- Aam-I likely forms transmembrane pores via a barrel-stave mechanism, consistent with other peptaibols.
- Understanding Aam-I's dynamics provides insights into peptaibol structure-activity relationships.
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