Dextran Macroinitiator for Synthesis of Polysaccharide-b-Polypeptide Block Copolymers via NCA Ring-Opening Polymerization

被引:3
作者
Wang, Shuo [1 ]
Tang, Ying [1 ]
Kou, Xinhui [2 ]
Chen, Junyi [1 ]
Edgar, Kevin J. [3 ,4 ]
机构
[1] Qingdao Univ Sci & Technol, Coll Polymer Sci & Engn, Qingdao 266042, Peoples R China
[2] Qingdao Univ Sci & Technol, Anal & Testing Ctr, Shandong Prov Educ Dept, Key Lab Biobased Polymer Mat, Qingdao 266042, Peoples R China
[3] Virginia Tech, Macromol Innovat Inst, Blacksburg, VA 24061 USA
[4] Virginia Tech, Dept Sustainable Biomat, Blacksburg, VA 24061 USA
基金
中国国家自然科学基金;
关键词
EMULSION POLYMERIZATION; N-CARBOXYANHYDRIDES; CELLULOSE; DELIVERY; MORPHOLOGIES; POLYSTYRENE; SCATTERING; PARTICLES; CHEMISTRY; VESICLES;
D O I
10.1021/acs.biomac.4c00225
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Synthesis of polysaccharide-b-polypeptide block copolymers represents an attractive goal because of their promising potential in delivery applications. Inspired by recent breakthroughs in N-carboxyanhydride (NCA) ring-opening polymerization (ROP), we present an efficient approach for preparation of a dextran-based macroinitiator and the subsequent synthesis of dextran-b-polypeptides via NCA ROP. This is an original approach to creating and employing a native polysaccharide macroinitiator for block copolymer synthesis. In this strategy, regioselective (2,2,6,6-tetramethylpiperidin-1-yl)oxyl (TEMPO) oxidation of the sole primary alcohol located at the C-6 position of the monosaccharide at the nonreducing end of linear dextran results in a carboxylic acid. This motif is then transformed into a tetraalkylammonium carboxylate, thereby generating the dextran macroinitiator. This macroinitiator initiates a wide range of NCA monomers and produces dextran-b-polypeptides with a degree of polymerization (DP) of the polypeptide up to 70 in a controlled manner (& Dstrok; < 1.3). This strategy offers several distinct advantages, including preservation of the original dextran backbone structure, relatively rapid polymerization, and moisture tolerance. The dextran-b-polypeptides exhibit interesting self-assembly behavior. Their nanostructures have been investigated by dynamic light scattering (DLS) and transmission electron microscopy (TEM), and adjustment of the structure of block copolymers allows self-assembly of spherical micelles and worm-like micelles with varied diameters and aspect ratios, revealing a range of diameters from 60 to 160 nm. Moreover, these nanostructures exhibit diverse morphologies, including spherical micelles and worm-like micelles, enabling delivery applications.
引用
收藏
页码:3122 / 3130
页数:9
相关论文
共 46 条
  • [1] Toughening Cellulose: Compatibilizing Polybutadiene and Cellulose Triacetate Blends
    Arrington, Kyle J.
    Haag, James V.
    French, Eric V.
    Murayama, Mitsuhiro
    Edgar, Kevin J.
    Matson, John B.
    [J]. ACS MACRO LETTERS, 2019, 8 (04) : 447 - 453
  • [2] Preparation of a xanthate-terminated dextran by click chemistry:: Application to the synthesis of polysaccharide-coated nanopartides via surfactant-free ab initio emulsion polymerization of vinyl acetate
    Bernard, Julien
    Save, Maud
    Arathoon, Benoit
    Charleux, Bernadette
    [J]. JOURNAL OF POLYMER SCIENCE PART A-POLYMER CHEMISTRY, 2008, 46 (08) : 2845 - 2857
  • [3] Mechanistic Insights for Block Copolymer Morphologies: How Do Worms Form Vesicles?
    Blanazs, Adam
    Madsen, Jeppe
    Battaglia, Giuseppe
    Ryan, Anthony J.
    Armes, Steven P.
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2011, 133 (41) : 16581 - 16587
  • [4] Synthetic Glycopolypeptides as Biomimetic Analogues of Natural Glycoproteins
    Bonduelle, Colin
    Lecommandoux, Sebastien
    [J]. BIOMACROMOLECULES, 2013, 14 (09) : 2973 - 2983
  • [5] Amphiphilic Polysaccharide Block Copolymers for pH-Responsive Micellar Nanoparticles
    Breitenbach, Benjamin B.
    Schmid, Ira
    Wich, Peter R.
    [J]. BIOMACROMOLECULES, 2017, 18 (09) : 2839 - 2848
  • [6] Regioselective Bromination of the Dextran Nonreducing End Creates a Pathway to Dextran-Based Block Copolymers
    Chen, Junyi
    Spiering, Glenn A.
    Mosquera-Giraldo, Laura, I
    Moore, Robert B.
    Edgar, Kevin J.
    [J]. BIOMACROMOLECULES, 2020, 21 (05) : 1729 - 1738
  • [7] In Situ Monitoring of Block Copolymer Self-Assembly via Solvent Exchange through Controlled Dialysis with Light and Neutron Scattering Detection
    Fauquignon, Martin
    Porcar, Lionel
    Brulet, Annie
    Le Meins, Jean-Francois
    Sandre, Olivier
    Chapel, Jean-Paul
    Schmutz, Marc
    Schatz, Christophe
    [J]. ACS MACRO LETTERS, 2023, 12 (09) : 1272 - 1279
  • [8] In situ glyco-nanostructure formulation via photopolymerization induced self-assembly
    Ferji, Khalid
    Venturini, Pierre
    Cleymand, Franck
    Chassenieux, Christophe
    Six, Jean-Luc
    [J]. POLYMER CHEMISTRY, 2018, 9 (21) : 2868 - 2872
  • [9] Shape effects of filaments versus spherical particles in flow and drug delivery
    Geng, Yan
    Dalhaimer, Paul
    Cai, Shenshen
    Tsai, Richard
    Tewari, Manorama
    Minko, Tamara
    Discher, Dennis E.
    [J]. NATURE NANOTECHNOLOGY, 2007, 2 (04) : 249 - 255
  • [10] Ring-Opening Polymerization of N-Carboxyanhydrides Initiated by a Hydroxyl Group
    Gradisar, Spela
    Zagar, Ema
    Pahovnik, David
    [J]. ACS MACRO LETTERS, 2017, 6 (06): : 637 - 640