| Literature DB >> 30653917 |
Azis Adharis1, Thomas Ketelaar1, Amalina G Komarudin2, Katja Loos1.
Abstract
In this report, we present double-hydrophilic block glycopolymers of poly(2-hydroxyethyl methacrylate)- b-poly(2-(β-glucosyloxy)ethyl methacrylate) (PHEMA- b-PGEMA) and amphiphilic block glycopolymers of poly(ethyl methacrylate)- b-PGEMA (PEMA- b-PGEMA) synthesized via reversible addition-fragmentation chain transfer (RAFT) polymerization. The block glycopolymers were prepared in two compositions of P(H)EMA macro-chain transfer agents (CTAs) and similar molecular weights of PGEMA. Structural analysis of the resulting polymers as well as the conversion of (H)EMA and GEMA monomers were determined by 1H NMR spectroscopy. Size exclusion chromatography measurements confirmed both P(H)EMA macro-CTAs and block glycopolymers had a low dispersity ( Đ ≤ 1.5). The synthesized block glycopolymers had a degree of polymerization and a molecular weight up to 222 and 45.3 kg mol-1, respectively. Both block glycopolymers self-assembled into micellar structures in aqueous solutions as characterized by fluorescence spectroscopy, ultraviolet-visible spectroscopy, and dynamic light scattering experiments.Entities:
Mesh:
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Year: 2019 PMID: 30653917 PMCID: PMC6415355 DOI: 10.1021/acs.biomac.8b01713
Source DB: PubMed Journal: Biomacromolecules ISSN: 1525-7797 Impact factor: 6.988
Figure 11H NMR spectra of (a) PHEMA76 and PEMA64 macro-CTAs as well as (b) PHEMA76-b-PGEMA97 and PEMA64-b-PGEMA98.
Scheme 1Synthesis of (a) PHEMA (R = OH) and PEMA (R = H) Macro-CTAs as well as (b) P(H)EMA-b-PGEMA Using RAFT Polymerization
Overview of the Synthesized P(H)EMA Macro-CTAs
| macro-CTAs | [monomer] | [RAFT agent] | [AIBN] | conv. (%) | ||||
|---|---|---|---|---|---|---|---|---|
| PHEMA76 | 2.7 | 27.0 | 5.4 | 58 | 8.1 | 10.2 | 22.5 | 1.12 |
| PHEMA125 | 2.7 | 13.5 | 2.7 | 54 | 14.7 | 16.6 | 32.6 | 1.20 |
| PEMA64 | 2.7 | 27.0 | 5.4 | 58 | 6.9 | 7.6 | 2.5 | 1.30 |
| PEMA107 | 2.7 | 13.5 | 2.7 | 53 | 12.4 | 12.4 | 5.7 | 1.21 |
[Monomer] in M.
[RAFT agent] and [AIBN] in mM.
Molecular weights in kg mol–1.
Figure 2SEC measurements (RI signals) of the synthesized (a) PHEMA macro-CTAs and PHEMA-b-PGEMA as well as (b) PEMA macro-CTAs and PEMA-b-PGEMA.
Overview of the Synthesized P(H)EMA-b-GEMA
| diblock glycopolymers | conv. (%) | ||||
|---|---|---|---|---|---|
| PHEMA76- | 98 | 29.0 | 28.7 | 38.9 | 1.37 |
| PHEMA125- | 99 | 29.3 | 28.7 | 45.3 | 1.51 |
| PEMA64- | 99 | 29.3 | 29.0 | 36.6 | 1.36 |
| PEMA107- | 99 | 29.3 | 29.0 | 41.4 | 1.34 |
[GEMA]:[P(H)EMA]:[AIBN] = 100:1:0.2.
Mn,theory and
Mn,NMR of PGEMA in kg mol–1.
Mn of diblock glycopolymers by combining the Mn,NMR of both block.
Figure 3(a) Plot of the intensity ratio (I1/I3) of pyrene as the fluorescent probe vs the log concentrations of PHEMA125-b-PGEMA97. (b) Fluorescence emission spectra of pyrene at various PHEMA125-b-PGEMA97 concentrations.
CMC and Hydrodynamic Diameter (Dh) of the Synthesized DHBGs and ABGs
| diblock glycopolymers | CMC | CMC | |
|---|---|---|---|
| PHEMA76- | 0.29 | n/a | 8.5 |
| PHEMA125- | 0.30 | n/a | 9.9 |
| PEMA64- | 0.25 | 0.31 | 15.1 |
| PEMA107- | 0.27 | 0.31 | 20.9 |
Determined by fluorescence spectroscopy (in mg mL–1).
Determined by UV–vis spectroscopy (in mg mL–1).
Hydrodynamic diameter in nm. n/a = not applicable.
Figure 4Absorption spectra of BZA in (a) ABGs and (b) DHBGs.
Figure 5(a)Linear regression of the decay rate (Γ) with the square of scattering vectors (q2) for the PHEMA125-b-PGEMA97 (●) and PEMA64-b-PGEMA98 (▲). (b) Normalized distribution functions of PHEMA125-b-PGEMA97 at different scattering angles.