Micro- to Nanoscale Bio-Hybrid Hydrogels Engineered by Ionizing Radiation
Bio-hybrid hydrogels consist of a water-swollen hydrophilic polymer network encapsulating or conjugating single biomolecules, or larger and more complex biological constructs like whole cells. By modulating at least one dimension of the hydrogel system at the micro- or nanoscale, the activity of the...
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doaj-28221d5327ad42bd81bdea960367a74a2021-01-01T00:04:00ZengMDPI AGBiomolecules2218-273X2021-12-0111474710.3390/biom11010047Micro- to Nanoscale Bio-Hybrid Hydrogels Engineered by Ionizing RadiationClelia Dispenza0Daniela Giacomazza1Mats Jonsson2Dipartimento di Ingegneria, Università degli Studi di Palermo, Viale delle Scienze 6, 90128 Palermo, ItalyIstituto di BioFisica, Consiglio Nazionale delle Ricerche, Via U. La Malfa 153, 90146 Palermo, ItalyDepartment of Chemistry, School of Engineering Sciences in Chemistry, Biotechnology and Health, KTH Royal Institute of Technology, SE-100 44 Stockholm, SwedenBio-hybrid hydrogels consist of a water-swollen hydrophilic polymer network encapsulating or conjugating single biomolecules, or larger and more complex biological constructs like whole cells. By modulating at least one dimension of the hydrogel system at the micro- or nanoscale, the activity of the biological component can be extremely upgraded with clear advantages for the development of therapeutic or diagnostic micro- and nano-devices. Gamma or e-beam irradiation of polymers allow a good control of the chemistry at the micro-/nanoscale with minimal recourse to toxic reactants and solvents. Another potential advantage is to obtain simultaneous sterilization when the absorbed doses are within the sterilization dose range. This short review will highlight opportunities and challenges of the radiation technologies to produce bio-hybrid nanogels as delivery devices of therapeutic biomolecules to the target cells, tissues, and organs, and to create hydrogel patterns at the nano-length and micro-length scales on surfaces.https://www.mdpi.com/2218-273X/11/1/47radiation chemistrymicro-/nano-gel patternsnanogelsbio-hybrid hydrogelsdrug deliverytissue engineering |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Clelia Dispenza Daniela Giacomazza Mats Jonsson |
spellingShingle |
Clelia Dispenza Daniela Giacomazza Mats Jonsson Micro- to Nanoscale Bio-Hybrid Hydrogels Engineered by Ionizing Radiation Biomolecules radiation chemistry micro-/nano-gel patterns nanogels bio-hybrid hydrogels drug delivery tissue engineering |
author_facet |
Clelia Dispenza Daniela Giacomazza Mats Jonsson |
author_sort |
Clelia Dispenza |
title |
Micro- to Nanoscale Bio-Hybrid Hydrogels Engineered by Ionizing Radiation |
title_short |
Micro- to Nanoscale Bio-Hybrid Hydrogels Engineered by Ionizing Radiation |
title_full |
Micro- to Nanoscale Bio-Hybrid Hydrogels Engineered by Ionizing Radiation |
title_fullStr |
Micro- to Nanoscale Bio-Hybrid Hydrogels Engineered by Ionizing Radiation |
title_full_unstemmed |
Micro- to Nanoscale Bio-Hybrid Hydrogels Engineered by Ionizing Radiation |
title_sort |
micro- to nanoscale bio-hybrid hydrogels engineered by ionizing radiation |
publisher |
MDPI AG |
series |
Biomolecules |
issn |
2218-273X |
publishDate |
2021-12-01 |
description |
Bio-hybrid hydrogels consist of a water-swollen hydrophilic polymer network encapsulating or conjugating single biomolecules, or larger and more complex biological constructs like whole cells. By modulating at least one dimension of the hydrogel system at the micro- or nanoscale, the activity of the biological component can be extremely upgraded with clear advantages for the development of therapeutic or diagnostic micro- and nano-devices. Gamma or e-beam irradiation of polymers allow a good control of the chemistry at the micro-/nanoscale with minimal recourse to toxic reactants and solvents. Another potential advantage is to obtain simultaneous sterilization when the absorbed doses are within the sterilization dose range. This short review will highlight opportunities and challenges of the radiation technologies to produce bio-hybrid nanogels as delivery devices of therapeutic biomolecules to the target cells, tissues, and organs, and to create hydrogel patterns at the nano-length and micro-length scales on surfaces. |
topic |
radiation chemistry micro-/nano-gel patterns nanogels bio-hybrid hydrogels drug delivery tissue engineering |
url |
https://www.mdpi.com/2218-273X/11/1/47 |
work_keys_str_mv |
AT cleliadispenza microtonanoscalebiohybridhydrogelsengineeredbyionizingradiation AT danielagiacomazza microtonanoscalebiohybridhydrogelsengineeredbyionizingradiation AT matsjonsson microtonanoscalebiohybridhydrogelsengineeredbyionizingradiation |
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