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Dynamics of single cell femtosecond laser printing.
Zhang, Jun; Frank, Christine; Byers, Patrick; Djordjevic, Sasa; Docheva, Denitsa; Clausen-Schaumann, Hauke; Sudhop, Stefanie; Huber, Heinz P.
Afiliación
  • Zhang J; Lasercenter, Munich University of Applied Sciences, Lothstrasse 34, 80335 Munich, Germany.
  • Frank C; Center for Applied Tissue Engineering and Regenerative Medicine CANTER, Munich University of Applied Sciences, Lothstrasse 34, 80335 Munich, Germany.
  • Byers P; Center for NanoScience, University of Munich, 80799 Munich, Germany.
  • Djordjevic S; Department of Musculoskeletal Tissue Regeneration, Orthopaedic Hospital König-Ludwig-Haus, University of Wuerzburg, 97076 Wuerzburg, Germany.
  • Docheva D; Lasercenter, Munich University of Applied Sciences, Lothstrasse 34, 80335 Munich, Germany.
  • Clausen-Schaumann H; Lasercenter, Munich University of Applied Sciences, Lothstrasse 34, 80335 Munich, Germany.
  • Sudhop S; Lasercenter, Munich University of Applied Sciences, Lothstrasse 34, 80335 Munich, Germany.
  • Huber HP; Department of Musculoskeletal Tissue Regeneration, Orthopaedic Hospital König-Ludwig-Haus, University of Wuerzburg, 97076 Wuerzburg, Germany.
Biomed Opt Express ; 14(5): 2276-2292, 2023 May 01.
Article en En | MEDLINE | ID: mdl-37206114
ABSTRACT
In the present study, we investigated the dynamics of a femtosecond (fs) laser induced bio-printing with cell-free and cell-laden jets under the variation of laser pulse energy and focus depth, by using time-resolved imaging. By increasing the laser pulse energy or decreasing the focus depth thresholds for a first and second jet are exceeded and more laser pulse energy is converted to kinetic jet energy. With increasing jet velocity, the jet behavior changes from a well-defined laminar jet, to a curved jet and further to an undesired splashing jet. We quantified the observed jet forms with the dimensionless hydrodynamic Weber and Rayleigh numbers and identified the Rayleigh breakup regime as the preferred process window for single cell bioprinting. Herein, the best spatial printing resolution of 42 ± 3 µm and single cell positioning precision of 12.4 µm are reached, which is less than one single cell diameter about 15 µm.

Texto completo: 1 Bases de datos: MEDLINE Idioma: En Revista: Biomed Opt Express Año: 2023 Tipo del documento: Article País de afiliación: Alemania

Texto completo: 1 Bases de datos: MEDLINE Idioma: En Revista: Biomed Opt Express Año: 2023 Tipo del documento: Article País de afiliación: Alemania