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Program Scientific Program
POS1-0675

Synthetic Progress toward PBLG–PLA Alternating Rod–Coil Polymers Containing Discrete and Disperse α-Helical Rod Segments

When and Where

Nov 30, -0001
12:00am - 12:00am

Presenter(s)

Yeon Hee Cho (Synthetic Polymer Chemistry LAB , Seoul National University)

Co-Author(s)

Kyoung Taek Kim (Department of Chemistry, Seoul National University, Seoul 08826, Republic of Korea), Seung Hyun Baek (Department of Chemistry, Seoul National University, Seoul 08826, Republic of Korea)

Abstract

Poly(γ-benzyl-L-glutamate) (PBLG)-based rod–coil polymers are attractive platforms for self-assembly because PBLG adopts an α-helical conformation and behaves as a rigid polypeptide rod. However, conventional PBLG-containing assemblies often rely on amphiphilic contrast with hydrophilic blocks such as poly(ethylene glycol) (PEG), which can obscure the contribution of PBLG helix–helix association. In addition, PBLG segments prepared by N-carboxyanhydride ring-opening polymerization (NCA ROP) possess inherent rod-length dispersity, which may affect the packing and morphology of assembled structures.

To investigate helix-driven self-assembly in a non-PEG system, we designed PBLG–PLA alternating rod–coil polymers in which PBLG rods are periodically connected by lactide-based polyester coil spacers. PLA was selected as a biodegradable coil spacer that modulates PBLG rod spacing without introducing strong PEG-like amphiphilic micellization. To control the PBLG rod length precisely, we targeted a discrete BLG32 oligomer as a molecularly defined α-helical rod segment with uniform contour length. Two complementary synthetic approaches were explored: iterative exponential growth (IEG) for discrete BLG/PBLG rod segments and NCA ROP for disperse PBLG segments. Using the IEG strategy, BLG oligomer growth was demonstrated up to BLG64 from an AB-type BLG building block bearing allyl ester and Boc-protected amine groups.

This work establishes synthetic routes toward PBLG–PLA alternating rod–coil polymers containing either discrete or disperse α-helical rod segments. The resulting platform will enable future comparison of PBLG helix-driven self-assembly as a function of rod-length dispersity, providing insight into how molecular precision in secondary-structured rod segments influences morphology formation.

Supported by
Korea Tourism Organization BUSAN TOURISM ORGANIZATION
Sponsored by
Sejin CI DONGJIN SEMICHEM HAEDONG SCIENCE FOUNDATION COSMAX EcoProBM Young Eng. Sci. Doosan SAMSUNG SDI S-OIL 한국도레이과학진흥재단