Branched Amphipathic Peptide Capsules: Different Ratios of the Two Constituent Peptides Direct Distinct Bilayer Structures, Sizes, and DNA Transfection Efficiency.

@article{Barros2017BranchedAP,
  title={Branched Amphipathic Peptide Capsules: Different Ratios of the Two Constituent Peptides Direct Distinct Bilayer Structures, Sizes, and DNA Transfection Efficiency.},
  author={Sheila de M. Barros and L. Adriana Avila and Susan K. Whitaker and Kayla Wilkinson and Pinakin Sukthankar and Eduardo I C Beltr{\~a}o and John M. Tomich},
  journal={Langmuir : the ACS journal of surfaces and colloids},
  year={2017},
  volume={33 28},
  pages={
          7096-7104
        }
}
Branched amphipathic peptide capsules (BAPCs) are biologically derived, bilayer delimited, nanovesicles capable of being coated by or encapsulating a wide variety of solutes. The vesicles and their cargos are readily taken up by cells and become localized in the perinuclear region of cells. When BAPCs are mixed with DNA, the BAPCs act as cationic nucleation centers around which DNA winds. The BAPCs-DNA nanoparticles are capable of delivering plasmid DNA in vivo and in vitro yielding high… 

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References

SHOWING 1-10 OF 30 REFERENCES
Branched amphiphilic cationic oligopeptides form peptiplexes with DNA: a study of their biophysical properties and transfection efficiency.
TLDR
It is reported that, in the presence of double stranded plasmid DNA, BAPCs are unable to form and, depending of the peptide/DNA ratios, the peptides either coat the plasmids surface forming nanofibers or condense the plasmsid into nanometer-sized compacted structures (at low peptide to DNA ratios).
Branched oligopeptides form nanocapsules with lipid vesicle characteristics.
TLDR
The lipidlike properties of this mixed branched peptide assembly including initial assembly; solute encapsulation and washing; fusion and resizing by membrane extrusion through polycarbonate filters with defined pore sizes are examined.
Organization and Structure of Branched Amphipathic Oligopeptide Bilayers.
TLDR
At atomistic simulations were performed to characterize the structure and organization of bilayers formed by three branched amphiphilic peptides, revealing that the BAPC bilayers are highly permeable to water and suggest that leaflet interdigitation likely occurs at early stages of BAPCs.
Self-assembly of recombinant amphiphilic oligopeptides into vesicles.
TLDR
It was demonstrated that water-soluble molecules can be entrapped inside these peptide vesicles, and these amphiphilic peptides may find applications as biodegradable drug delivery systems with a pH-dependent release profile.
Thermally induced conformational transitions in nascent branched amphiphilic peptide capsules.
TLDR
Revised assembly protocols for preparing BAPCs with discrete sizes and solvent-induced extravasation properties are presented and it is revealed that BAPC undergo thermosensitive conformational transitions as a function of both time and temperature.
Gene delivery and immunomodulatory effects of plasmid DNA associated with Branched Amphiphilic Peptide Capsules.
  • L. Avila, L. R. Aps, +10 authors J. Tomich
  • Biology, Chemistry
    Journal of controlled release : official journal of the Controlled Release Society
  • 2016
Self-assembling dipeptide-based nontoxic vesicles as carriers for drugs and other biologically important molecules.
TLDR
The formation of multivesicular structures from self-assembling water-soluble synthetic amphiphilic dipeptides containing a glutamic acid residue at the C-terminus are reported, which have the potential to carry biologically important molecules within the cells keeping their biological functions intact.
Nanovesicles based on self-assembly of conformationally constrained aromatic residue containing amphiphilic dipeptides.
TLDR
The self-assembly of amphiphilic dipeptides containing conformation-constraining alpha,beta-dehydrophenylalanine into nanovesicles is reported, which can encapsulate small drug molecules such as riboflavin and vitamin B(12), bioactive peptides, and small protein molecules.
Charged polypeptide vesicles with controllable diameter.
TLDR
The vesicular assemblies show dynamic properties, indicating a high degree of membrane fluidity, and provides stimuli-responsive properties to the vesicles and allows fine adjustment of vesicle size using liposome-based extrusion techniques, making theVesicles promising biomimetic encapsulants.
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