Influence of Aza-Glycine Substitution on the Internalization of Penetratin

Author:

Tarchoun Karima12,Soltész Dóra12,Farkas Viktor3ORCID,Lee Ho-Jin45ORCID,Szabó Ildikó6,Bánóczi Zoltán1ORCID

Affiliation:

1. Institute of Chemistry, Faculty of Science, ELTE Eötvös Loránd University, Pázmány Péter sétány 1/A, 1117 Budapest, Hungary

2. Hevesy György PhD School of Chemistry, Institute of Chemistry, ELTE Eötvös Loránd University, Pázmány Péter sétány 1/A, 1117 Budapest, Hungary

3. HUN-REN-ELTE Protein Modeling Research Group, Institute of Chemistry, ELTE Eötvös Loránd University, Pázmány Péter sétány 1/A, 1117 Budapest, Hungary

4. Department of Natural Sciences, Southwest Tennessee Community College, Memphis, TN 38015, USA

5. Division of Natural and Mathematics Sciences, LeMoyne-Own College, Memphis, TN 38126, USA

6. HUN-REN-ELTE Research Group of Peptide Chemistry, 1117 Budapest, Hungary

Abstract

The cell-penetrating peptide (CPP) penetratin has gained much attention over many years due to its potential role as a transporter for a broad range of cargo into cells. The modification of penetratin has been extensively investigated too. Aza-peptides are peptide analogs in which one or more of the amino residues are replaced by a semicarbazide. This substitution results in conformational restrictions and modifications in hydrogen bonding properties, which affect the structure and may lead to enhanced activity and selectivity of the modified peptide. In this work, the Trp residues of penetratin were substituted by aza-glycine or glycine residues to examine the effect of these modifications on the cellular uptake and the internalization mechanism. The substitution of Trp48 or Trp48,56 dramatically reduced the internalization, showing the importance of Trp48 in cellular uptake. Interestingly, while aza-glycine in the position of Trp56 increased the cellular uptake, Gly reduced it. The two Trp-modified derivatives showed altered internalization pathways, too. Based on our knowledge, this is the first study about the effect of aza-amino acid substitution on the cell entry of CPPs. Our results suggest that aza-amino acid insertion is a useful modification to change the internalization of a CPP.

Funder

Hevesy György Ph.D. School of Chemistry, Eötvös Loránd University

Hungarian Ministry for Innovation and Technology

National Research Foundation of Korea

Publisher

MDPI AG

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