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April 18, 2026Biomacromolecules0 citations

Polymerization Mechanism of N -Phenyloxycarbonyl Amino Acids: Polycondensation or Cyclization to NCA?

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JGJiayu GuSWS WangWCWanli Chen

Key Points

  • To clarify the polymerization mechanism of N-phenyloxycarbonyl-amino acids and distinguish between possible pathways.
  • Monitored polymerization of 15N-labeled leucine-NPC using 15N NMR.
  • Captured isocyanate acid as an intermediate in the polymerization process.
  • Established a kinetic model validated by Monte Carlo simulation.
  • Conducted density functional theory calculations to explore polymerization pathways.
  • Disproved the polycondensation pathway for NPCs.
  • Identified isocyanate acid as a key intermediate in the polymerization.
  • Determined that the ICA-mediated NCA ring-closing pathway has lower Gibbs energy barriers.
  • Explained the low polymerization reactivity of Sar-NPC through a feasible direct ring-closing pathway.

Abstract

N-Phenyloxycarbonyl-amino acids (NPCs) are promising monomers to synthesize both polypeptides and polypeptoids exhibiting great tolerance for nucleophiles. However, the polymerization mechanism of NPCs remains unclear since it is hard to distinguish intermediates including N-carboxyanhydrides (NCA) from byproducts of direct polycondensation. In this contribution, the polycondensation pathway is disproved by the impossible polymerization of alanine dimer NPC. Isocyanate acid (ICA) has been captured as an intermediate of NPC polymerization. In an attempt to monitor the polymerization of 15N-labeled leucine-NPC by 15N NMR for the first time, reactive species including ICA are identified and traced. A kinetic model is established based on the 15N NMR data and validated by Monte Carlo simulation. Two possible polymerization pathways are evidenced by a density functional theory (DFT) calculation. The ICA-meditated NCA ring-closing pathway is preferred over the direct NCA ring-closing pathway for lower Gibbs energy barriers. A direct ring-closing path is feasible only for Sar-NPC, which explains its low polymerization reactivity.

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Cite This Study

Gu et al. (2026) studied this question.

synapsesocial.com/papers/69e31f7340886becb653eabahttps://doi.org/10.1021/acs.biomac.6c00196
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