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Design of Aromatic‐Containing Cell‐Penetrating Peptide Mimics with Structurally Modified π Electronics
Author(s) -
deRonde Brittany M.,
Birke Alexander,
Tew Gregory N.
Publication year - 2015
Publication title -
chemistry – a european journal
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.687
H-Index - 242
eISSN - 1521-3765
pISSN - 0947-6539
DOI - 10.1002/chem.201405381
Subject(s) - polymer , chemistry , aromaticity , monomer , polymerization , molecule , intracellular , biophysics , polymer chemistry , combinatorial chemistry , organic chemistry , biochemistry , biology
Cell‐penetrating peptides (CPPs) and their synthetic mimics (CPPMs) represent a class of molecules that facilitate the intracellular delivery of various cargo. Previous studies indicated that the presence of aromatic functionalities improved CPPM activity. Given that aromatic functionalities play prominent roles in membrane biology and participate in various π interactions, we explored whether these interactions could be optimized for improved CPPM activity. CPPMs were synthesized by ring‐opening metathesis polymerization by using monomers that contained aromatic rings substituted with electron‐donating and electron‐withdrawing groups and covered an electrostatic potential range from −29.69 to +15.57 kcal mol −1 . These groups altered the quadrupole moments of the aromatic systems and were used to test if such structural modifications changed CPPM activity. CPPMs were added to dye‐loaded vesicles and the release of carboxyfluorescein was monitored as a function of polymer concentration. Changes in the effective polymer concentration to release 50 % of the dye (effective concentration, EC 50 ) were monitored. Results from this assay showed that the strength of the electron‐donating and electron‐withdrawing groups incorporated in the CPPMs did not alter polymer EC 50 values or activity. This suggests that other design parameters may have a stronger impact on CPPM activity. In addition, these results indicate that a wide range of aromatic groups can be incorporated without negatively impacting polymer activity.

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