Thermodynamic and structural characterization of the cyclic peptide G4CP2 binding to DOPC liposomes: an integrated experimental/computational study
Academic Article
Publication Date:
2027
Citation:
Thermodynamic and structural characterization of the cyclic peptide G4CP2 binding to DOPC liposomes: an integrated experimental/computational study / G. Cavalieri, D.M.. - In: FLUID PHASE EQUILIBRIA. - ISSN 0378-3812. - 612:(2027 Jan), pp. 114843.1-114843.11. [10.1016/j.fluid.2026.114843]
abstract:
The interaction of the cyclic peptide G4CP2 (βA-RYFFDMWY) with zwitterionic DOPC liposomes was investigated
as a minimal membrane model by combining spectroscopy, calorimetry, and enhanced-sampling molecular
dynamics. G4CP2 was originally reported as a functional inhibitor of the transcription factor GAL4 and was
selected here to provide a physicochemical, membrane-focused characterization of this biologically validated
cyclic scaffold. UV-Vis titrations showed hypochromic effects upon lipid addition, while steady-state fluorescence
quenching (including synchronous fluorescence) confirmed membrane association without large spectral shifts,
suggesting predominantly interfacial binding environments for the Trp reporter. Circular dichroism indicated no
major change in spectral shape, with a progressive increase in signal magnitude with lipid concentration
consistent with an increasing membrane-associated fraction. Isothermal titration calorimetry revealed micromolar
binding with an endothermic enthalpy compensated by a strongly favorable entropy contribution, indicating
an entropy-driven association regime. DLS and TEM showed no major vesicle disruption under the tested
conditions. To provide a molecular interpretation, reweighted free-energy surfaces were reconstructed from
OPES simulations along peptide insertion depth and tilt, and the resulting ensemble was projected onto hydration,
aromatic insertion, headgroup contacts, and conformational descriptors. The simulations indicated a
broad low-free-energy basin consistent with multiple interconverting membrane-associated microstates and
supported an ensemble shifted toward deeper interfacial association characterized by stronger dehydration and
aromatic engagement. Overall, the combined experimental-computational data provide a coherent thermodynamic
and structural picture of how an aromatic-rich cyclic peptide associates with a zwitterionic bilayer
through heterogeneous interfacial states.
as a minimal membrane model by combining spectroscopy, calorimetry, and enhanced-sampling molecular
dynamics. G4CP2 was originally reported as a functional inhibitor of the transcription factor GAL4 and was
selected here to provide a physicochemical, membrane-focused characterization of this biologically validated
cyclic scaffold. UV-Vis titrations showed hypochromic effects upon lipid addition, while steady-state fluorescence
quenching (including synchronous fluorescence) confirmed membrane association without large spectral shifts,
suggesting predominantly interfacial binding environments for the Trp reporter. Circular dichroism indicated no
major change in spectral shape, with a progressive increase in signal magnitude with lipid concentration
consistent with an increasing membrane-associated fraction. Isothermal titration calorimetry revealed micromolar
binding with an endothermic enthalpy compensated by a strongly favorable entropy contribution, indicating
an entropy-driven association regime. DLS and TEM showed no major vesicle disruption under the tested
conditions. To provide a molecular interpretation, reweighted free-energy surfaces were reconstructed from
OPES simulations along peptide insertion depth and tilt, and the resulting ensemble was projected onto hydration,
aromatic insertion, headgroup contacts, and conformational descriptors. The simulations indicated a
broad low-free-energy basin consistent with multiple interconverting membrane-associated microstates and
supported an ensemble shifted toward deeper interfacial association characterized by stronger dehydration and
aromatic engagement. Overall, the combined experimental-computational data provide a coherent thermodynamic
and structural picture of how an aromatic-rich cyclic peptide associates with a zwitterionic bilayer
through heterogeneous interfacial states.
IRIS type:
01 - Articolo su periodico
Keywords:
Cyclic peptide; Enhanced-sampling molecular dynamics; Isothermal titration calorimetry; Membrane interaction; Vesicle binding
List of contributors:
G. Cavalieri, D. Marson, A. Celano, A. Laura La Monaca, A. Mio, S. Masiero, P. Pesaresi, E. Laurini, S. Pricl
Link to information sheet:
Full Text: