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Carrier design: Synthesis and conformational studies of poly (L-lysine) based branched polypeptides with hydroxyl groups in the side chains

✍ Scribed by G. Mezö; J. Kajtár; I. Nagy; M. Szekerke; F. Hudecz


Publisher
Wiley (John Wiley & Sons)
Year
1997
Tongue
English
Weight
143 KB
Volume
42
Category
Article
ISSN
0006-3525

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✦ Synopsis


In the present study the development of a new series of branched polypeptides that contain hydroxyl groups in side chains is reported. Serine or threonine were attached by 1hydroxy-benzotriazole catalyzed active ester method to the N-terminals of oligo(DL-alanine) chains grafted to a polylysine backbone resulted in poly[Lys-(Ser i -DL-Ala m )] (SAK) and poly-[Lys-(Thr i -DL-Ala m )] (TAK). Ser was coupled also directly to the 1-amino groups of polylysine followed by polymerization of N-carboxy-DL-alanine anhydride resulting oligo (DL-Ala) DL-Ser residues resulted in a slightly decreased ability of the polypeptide backbone to adopt an ordered conformation. Comparison of the CD properties of the SAK-ASK pair demonstrates that these compounds are similar, showing an increased tendency to form an ordered spatial arrangement in solution at elevated pH or ionic strength; however, differences in their CD spectra suggest that SAK has higher capability to form regular conformation under comparable conditions. The replacement of Ser by the Thr residue in poly[Lys-(X i -DL-Ala m )] induced a conformational transition and TAK exhibited a more helical structure. These results might indicate that not

chain terminals. In this way a reverse sequence was built up in the side chain corresponding to the poly[Lys-(DL-Ala m -Ser i )] (ASK). The number of hydroxyl groups in the polymer was increased by the synthesis of a branched polypeptide with oligo( DL-serine ) branches instead of oligo(DLalanine) ones-poly[Lys-(DL-Ser m )] (SK). Classification of solution conformations of branched polypeptides was carried out by CD spectroscopy performed in water solution of various pH values and ionic strengths. Incorporation of single Ser residues in poly[Lys-(X i )]type polypeptides markedly promotes the formation of ordered structure without resulting precipitation even in high salt concentration. The presence of branches with multiple