4.2 Article

Influence of Lysine and TRITC Conjugation on the Size and Structure of Dextran Nanoconjugates with Potential for Biomolecule Delivery to Neurons

期刊

ACS APPLIED BIO MATERIALS
卷 4, 期 9, 页码 6832-6842

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsabm.1c00544

关键词

conjugated dextran; axonal transport; retrograde tracing; anterograde tracing; DLS; SANS

资金

  1. University of Oslo Life Science Program
  2. Norwegian ALS patient advocacy group ALS-Norge

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The study found that dextran conjugates with lysine and TRITC of different molecular weights exhibited variations in molecular volumes and mobility within axons. Surprisingly, lower molecular weight conjugated dextrans showed higher efficiency in translocation despite having larger molecular volumes compared to higher molecular weight dextrans.
As a potent nonviral system for biomolecular delivery to neurons via their axons, we have studied molecular characteristics of lysinated fluorescent dextran nanoconjugates with degrees of conjugation of 0.54-15.2 mol lysine and 0.25-7.27 mol tetramethyl rhodamine isothiocyanate (TRITC) per mol dextran. We studied the influence of conjugation with lysine and TRITC on the size and structure of different molecular weight dextrans and their mobility within axons. Dynamic light scattering (DLS) and small-angle neutron scattering (SANS) experiments revealed significant differences in the size and structure of unmodified and modified dextrans. Unexpectedly, lower-molecular-weight conjugated dextrans exhibited higher molecular volumes, which we propose is due to fewer intramolecular interactions than in higher-molecular-weight conjugated dextrans. Assessment of retrograde and anterograde movement of lysine- and TRITC-conjugated dextrans in axons in the lumbar spinal cord of chicken embryos showed that lower-molecular-weight dextrans translocate more efficiently than higher-molecular-weight dextrans, despite having larger molecular volumes. This comparative characterization of different molecular weight dextrans will help define optimal features for intracellular delivery.

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