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Visualization of nanofibrillar cellulose in biological tissues using a biotinylated carbohydrate binding module of beta-1,4-glycanase

  • Kristina Bram Knudsen
  • , C. Kofoed
  • , R. Espersen
  • , C. Højgaard
  • , J.R. Winther
  • , M. Willemoes
  • , I. Wedin
  • , M. Nuopponen
  • , S. Vilske
  • , K. Aimonen
  • , I.E. Weydahl
  • , H. Alenius
  • , H. Norppa
  • , H. Wolff
  • , Erik Håkan Richard Wallin
  • , Ulla Birgitte Vogel

Research output: Contribution to journalJournal articleResearchpeer-review

Abstract

Nanofibrillar cellulose is a very promising innovation with diverse potential applications including high quality paper, coatings, and drug delivery carriers. The production of nanofibrillar cellulose on an industrial scale may lead to increased exposure to nanofibrillar cellulose both in the working environment and the general environment. Assessment of the potential health effects following exposure to nanofibrillar cellulose is therefore required. However, as nanofibrillar cellulose primarily consists of glucose moieties, detection of nanofibrillar cellulose in biological tissues is difficult. We have developed a simple and robust method for specific and sensitive detection of cellulose fibers, including nanofibrillar cellulose, in biological tissue, using a biotinylated carbohydrate binding module (CBM) of beta-1,4-glycanase (EXG:CBM) from the bacterium Cellulomonas fimi. EXG:CBM was expressed in Eschericia coli, purified, and biotinylated. EXG:CBM was shown to bind quantitatively to five different cellulose fibers including four different nanofibrillar celluloses. Biotinylated EXG:CBM was used to visualize cellulose fibers by either fluorescence- or horse radish peroxidase (HRP)-tagged avidin labeling. The HRP-EXG:CBM complex was used to visualize cellulose fibers in both cryopreserved and paraffin embedded lung tissue from mice dosed by pharyngeal aspiration with 10-200 mug/mouse. Detection was shown to be highly specific, and the assay appeared very robust. The present method represents a novel concept for the design of simple, robust, and highly specific detection methods for the detection of nanomaterials, which are otherwise difficult to visualize
Original languageEnglish
JournalChemical Research in Toxicology
Volume28
Issue number8
Pages (from-to)1627-1635
Number of pages9
ISSN0893-228X
DOIs
Publication statusPublished - 2015

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  • Danish NanoSafety Centre

    Vogel, U. B. (Project Manager), Hougaard, K. S. (Project Participant), Frederiksen, M. (Project Participant), Clausen, P. A. (Project Participant), Saber, A. T. (Project Participant), Berthing, T. (Project Participant), Jacobsen, N. R. (Project Participant), Jensen, K. A. (Project Participant), Mortensen, A. (Project Participant), Poulsen, S. S. (Project Participant), Koivisto, A. J. (Project Participant), Jensen, A. C. Ø. (Project Participant), Brostrøm, A. (Project Participant), Skovmand, A. (Project Participant), Andersen, M. H. G. (Project Participant) & Koivisto, J. M. (Project Participant)

    01/05/201631/08/2019

    Project: Research

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