Unraveling the Conformational Determinants of Peptide
Dendrimers Using Molecular Dynamics Simulations
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Abstract
Peptide dendrimers are synthetic
tree-like molecules composed of amino acids. There are at least two
kinds of preferential structural behaviors exhibited by these molecules,
which acquire either compact or noncompact shapes. However, the key
structural determinants of such behaviors remained, until now, unstudied.
Herein, we conduct a comprehensive investigation of the structural
determinants of peptide dendrimers by employing long molecular dynamics
simulations to characterize an extended set of third generation dendrimers.
Our results clearly show that a trade-off between electrostatic effects
and hydrogen bond formation controls structure acquisition in these
systems. Moreover, by selectively changing the dendrimers charge we
are able to manipulate the exhibited compactness. In contrast, the
length of branching residues does not seem to be a major structural
determinant. Our results are in accordance with the most recent experimental
evidence and shed some light on the key molecular level interactions
controlling structure acquisition in these systems. Thus, the results
presented constitute valuable insights that can contribute to the
development of truly tailor-made dendritic systems