A Contiguous Stretch of Methionine Residues Mediates the Energy-Dependent Internalization Mechanism of a Cell-Penetrating Peptide
Young Soo Kim, Antonietta M. Lillo, Jason A. Moss, Kim D. Janda
Abstract
Young Soo Kim, Antonietta M. Lillo, Jason A. Moss, Kim D. Janda
Abstract
Recently we characterized an unusual switch in the internalization mechanism of the monomeric and dimeric forms of the cell-penetrating peptide RDLWEMMMVSLACQY. Here, we observed both energy-dependent and energy-independent modes of peptide uptake by the target B-lymphocytes WI-L2-729HF2, suggesting that higher-order structure might modulate the action of this novel cell-penetrating peptide. In the present work, we propose a possible internalization mechanism for the dimeric peptide which involves an initial interaction with the cell membrane, followed by an energy-dependent internalization process which requires the contiguous Met(6-8) sequence.
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Recently we characterized an unusual switch in the internalization mechanism of the monomeric and dimeric forms of the cell-penetrating peptide RDLWEMMMVSLACQY. Here, we observed both energy-dependent and energy-independent modes of peptide uptake by the target B-lymphocytes WI-L2-729HF2, suggesting that higher-order structure might modulate the action of this novel cell-penetrating peptide. In the present work, we propose a possible internalization mechanism for the dimeric peptide which involves an initial interaction with the cell membrane, followed by an energy-dependent internalization process which requires the contiguous Met(6-8) sequence.
Key concepts: Internalization, Peptide, Cell-penetrating peptide, Biophysics, Chemistry, Cell membrane, Cell biology, Mechanism (biology)