Laser Bioprinting with Cell Spheroids: Accurate and Gentle

Author:

Minaeva Ekaterina D.12ORCID,Antoshin Artem A.13,Kosheleva Nastasia V.45,Koteneva Polina I.4,Gonchukov Sergey A.2,Tsypina Svetlana I.1,Yusupov Vladimir I.1ORCID,Timashev Peter S.34,Minaev Nikita V.1ORCID

Affiliation:

1. Institute of Photon Technologies of FSRC «Crystallography and Photonics» RAS, Troitsk, 108840 Moscow, Russia

2. National Research Nuclear University MEPhI (Moscow Engineering Physics Institute), 115409 Moscow, Russia

3. World-Class Research Center “Digital Biodesign and Personalized Healthcare”, Sechenov University, 8-2 Trubetskaya St., 119991 Moscow, Russia

4. Institute for Regenerative Medicine, Sechenov University, 8-2 Trubetskaya St., 119991 Moscow, Russia

5. FSBSI Institute of General Pathology and Pathophysiology, 8 Baltiyskaya, 125315 Moscow, Russia

Abstract

Laser printing with cell spheroids can become a promising approach in tissue engineering and regenerative medicine. However, the use of standard laser bioprinters for this purpose is not optimal as they are optimized for transferring smaller objects, such as cells and microorganisms. The use of standard laser systems and protocols for the transfer of cell spheroids leads either to their destruction or to a significant deterioration in the quality of bioprinting. The possibilities of cell spheroids printing by laser-induced forward transfer in a gentle mode, which ensures good cell survival ~80% without damage and burns, were demonstrated. The proposed method showed a high spatial resolution of laser printing of cell spheroid geometric structures at the level of 62 ± 33 µm, which is significantly less than the size of the cell spheroid itself. The experiments were performed on a laboratory laser bioprinter with a sterile zone, which was supplemented with a new optical part based on the Pi-Shaper element, which allows for forming laser spots with different non-Gaussian intensity distributions. It is shown that laser spots with an intensity distribution profile of the “Two rings” type (close to Π-shaped) and a size comparable to a spheroid are optimal. To select the operating parameters of laser exposure, spheroid phantoms made of a photocurable resin and spheroids made from human umbilical cord mesenchymal stromal cells were used.

Funder

Russian Science Foundation

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Mechanical Engineering,Control and Systems Engineering

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1. Laser-assisted bioprinting of targeted cartilaginous spheroids for high density bottom-up tissue engineering;Biofabrication;2024-08-22

2. Bioprinting Using Organ Building Blocks: Spheroids, Organoids, and Assembloids;Tissue Engineering Part A;2024-01-25

3. A review on critical challenges in additive manufacturing via laser-induced forward transfer;Optics & Laser Technology;2024-01

4. Using Tumor-Like Spheroids to Study the Effect of Anti-Cancer Drugs in vitro;Technologies in Cell Culture - A Journey From Basics to Advanced Applications [Working Title];2023-11-27

5. Exploring the Potential of NIR Reflective and NIR Absorptive Materials in the Manufacture of Attack Tools for Biometric Systems;2023 7th International Conference on Information, Control, and Communication Technologies (ICCT);2023-10-02

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