TY - JOUR
T1 - Sound-driven dissipative self-assembly of aromatic biomolecules into functional nanoparticles
AU - Bhangu, Sukhvir Kaur
AU - Bocchinfuso, Gianfranco
AU - Ashokkumar, Muthupandian
AU - Cavalieri, Francesca
N1 - Publisher Copyright:
© 2020 The Royal Society of Chemistry.
PY - 2020/3/1
Y1 - 2020/3/1
N2 - Dissipative self-assembly processes were recently exploited to assemble synthetic materials into supramolecular structures. In most cases, chemical fuel or light driven self-assembly of synthetic molecules was reported. Herein, experimental and computational approaches were used to unveil the role of acoustic cavitation in the formation of supramolecular nanoaggregates by dissipative self-assembly. Acoustic cavitation bubbles were employed as an energy source and a transient interface to fuel and refuel the dissipative self-assembly of simple aromatic biomolecules into uniform nanoparticles. Molecular dynamics simulations were applied to predict the formation of metastable aggregates and the dynamic exchange of the interacting molecules in the nanoaggregates. The intracellular trafficking and dissipative dissolution of the nanoparticles were tracked by microscopy imaging.
AB - Dissipative self-assembly processes were recently exploited to assemble synthetic materials into supramolecular structures. In most cases, chemical fuel or light driven self-assembly of synthetic molecules was reported. Herein, experimental and computational approaches were used to unveil the role of acoustic cavitation in the formation of supramolecular nanoaggregates by dissipative self-assembly. Acoustic cavitation bubbles were employed as an energy source and a transient interface to fuel and refuel the dissipative self-assembly of simple aromatic biomolecules into uniform nanoparticles. Molecular dynamics simulations were applied to predict the formation of metastable aggregates and the dynamic exchange of the interacting molecules in the nanoaggregates. The intracellular trafficking and dissipative dissolution of the nanoparticles were tracked by microscopy imaging.
UR - https://www.scopus.com/pages/publications/85077987557
U2 - 10.1039/c9nh00611g
DO - 10.1039/c9nh00611g
M3 - Article
C2 - 32118232
AN - SCOPUS:85077987557
SN - 2055-6756
VL - 5
SP - 553
EP - 563
JO - Nanoscale Horizons
JF - Nanoscale Horizons
IS - 3
ER -