Scaling Up Magnetic Nanobead Synthesis with Improved Stability for Biomedical Applications

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Autoren

  • Nadja C. Bigall
  • Marina Rodio
  • Sahitya Avugadda
  • Manuel Pernia Leal
  • Riccardo Di Corato
  • John S. Conteh
  • Romuald Intartaglia
  • Teresa Pellegrino

Externe Organisationen

  • Istituto Italiano di Tecnologia (IIT)
  • Universidad de Sevilla
  • Consiglio Nazionale delle Ricerche (CNR)
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Details

OriginalspracheEnglisch
Seiten (von - bis)9605-9617
Seitenumfang13
FachzeitschriftThe Journal of Physical Chemistry A
Jahrgang126
Ausgabenummer51
Frühes Online-Datum16 Dez. 2022
PublikationsstatusVeröffentlicht - 29 Dez. 2022

Abstract

The growing interest in multifunctional nano-objects based on polymers and magnetic nanoparticles for biomedical applications motivated us to develop a scale-up protocol to increase the yield of polymeric magnetic nanobeads while aiming at keeping the structural features at optimal conditions. The protocol was applied to two different types of magnetic ferrite nanoparticles: the Mn-ferrite selected for their properties as contrast agents in magnetic resonance imaging and iron oxide nanostar shaped nanoparticles chosen for their heat performance in magnetic hyperthermia. At the same time, some experiments on surface functionalization of nanobeads with amino modified polyethyelene glycol (PEG) molecules have provided further insight into the formation mechanism of magnetic nanobeads and the need to cross-link the polymer shell to improve the stability of the beads, making them more suitable for further manipulation and use. The present work summarizes the most important parameters required to be controlled for the upscaling of nanobead synthesis in a bench protocol and proposes an alternative cross-linking strategy based on prefunctionalization of the polymer prior to the nanobead formation as a key parameter to improve the nanobead structural stability in solutions at different pHs and during surface functionalization.

ASJC Scopus Sachgebiete

Zitieren

Scaling Up Magnetic Nanobead Synthesis with Improved Stability for Biomedical Applications. / Bigall, Nadja C.; Rodio, Marina; Avugadda, Sahitya et al.
in: The Journal of Physical Chemistry A, Jahrgang 126, Nr. 51, 29.12.2022, S. 9605-9617.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Bigall, NC, Rodio, M, Avugadda, S, Leal, MP, Di Corato, R, Conteh, JS, Intartaglia, R & Pellegrino, T 2022, 'Scaling Up Magnetic Nanobead Synthesis with Improved Stability for Biomedical Applications', The Journal of Physical Chemistry A, Jg. 126, Nr. 51, S. 9605-9617. https://doi.org/10.1021/acs.jpca.2c05902
Bigall, N. C., Rodio, M., Avugadda, S., Leal, M. P., Di Corato, R., Conteh, J. S., Intartaglia, R., & Pellegrino, T. (2022). Scaling Up Magnetic Nanobead Synthesis with Improved Stability for Biomedical Applications. The Journal of Physical Chemistry A, 126(51), 9605-9617. https://doi.org/10.1021/acs.jpca.2c05902
Bigall NC, Rodio M, Avugadda S, Leal MP, Di Corato R, Conteh JS et al. Scaling Up Magnetic Nanobead Synthesis with Improved Stability for Biomedical Applications. The Journal of Physical Chemistry A. 2022 Dez 29;126(51):9605-9617. Epub 2022 Dez 16. doi: 10.1021/acs.jpca.2c05902
Bigall, Nadja C. ; Rodio, Marina ; Avugadda, Sahitya et al. / Scaling Up Magnetic Nanobead Synthesis with Improved Stability for Biomedical Applications. in: The Journal of Physical Chemistry A. 2022 ; Jahrgang 126, Nr. 51. S. 9605-9617.
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AU - Intartaglia, Romuald

AU - Pellegrino, Teresa

N1 - Funding Information: N.C.B. is grateful for financial support from the German Federal Ministry of Education and Research (BMBF) within the framework of the program NanoMatFutur, support code 03 × 5525. T.P. acknowledges the AIRC Foundation (AIRC IG-14527) and the Marie SkłodowskaCurie Innovative training network MSCA-ITN-ETN (HeatNMof project, GA 860942).

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