Direct translocation as major cellular uptake for CADY self-assembling peptide-based nanoparticles.

Archive ouverte

Rydström, Anna | Deshayes, Sébastien | Konate, Karidia | Crombez, Laurence | Padari, Kärt | Boukhaddaoui, Hassan | Aldrian, Gudrun | Pooga, Margus | Divita, Gilles

Edité par CCSD ; Public Library of Science -

International audience. Cell penetrating peptides constitute a potent approach to overcome the limitations of in vivo siRNA delivery. We recently proposed a peptide-based nanoparticle system, CADY, for efficient delivery of siRNA into numerous cell lines. CADY is a secondary amphipathic peptide that forms stable complexes with siRNA thereby improving both their cellular uptake and biological response. With the aim of understanding the cellular uptake mechanism of CADY:siRNA complexes, we have combined biochemical, confocal and electron microscopy approaches. In the present work, we provide evidence that the major route for CADY:siRNA cellular uptake involves direct translocation through the membrane but not the endosomal pathway. We have demonstrated that CADY:siRNA complexes do not colocalize with most endosomal markers and remain fully active in the presence of inhibitors of the endosomal pathway. Moreover, neither electrostatic interactions with cell surface heparan sulphates nor membrane potential are essential for CADY:siRNA cell entry. In contrast, we have shown that CADY:siRNA complexes clearly induce a transient cell membrane permeabilization, which is rapidly restored by cell membrane fluidity. Therefore, we propose that direct translocation is the major gate for cell entry of CADY:siRNA complexes. Membrane perturbation and uptake are driven mainly by the ability of CADY to interact with phospholipids within the cell membrane, followed by rapid localization of the complex in the cytoplasm, without affecting cell integrity or viability.

Suggestions

Du même auteur

Self-assembling peptide-based nanoparticles for siRNA delivery in primary cell lines.

Archive ouverte | Deshayes, Sébastien | CCSD

International audience

Deciphering the internalization mechanism of WRAP:siRNA nanoparticles

Archive ouverte | Deshayes, Sébastien | CCSD

International audience. Gene silencing mediated by double-stranded small interfering RNA (siRNA) has been widely investigated as a potential therapeutic approach for a variety of diseases and, indeed, the first ther...

Structural polymorphism of non-covalent peptide-based delivery systems: Highway to cellular uptake.

Archive ouverte | Deshayes, Sébastien | CCSD

International audience. During the last two decades, delivery has become a major challenge for the development of new therapeutic molecules for the clinic. Although, several strategies either viral or non viral have...

Chargement des enrichissements...