Literature DB >> 34240729

Pulsed laser assisted high-throughput intracellular delivery in hanging drop based three dimensional cancer spheroids.

Pallavi Gupta1, Srabani Kar2, Ashish Kumar3, Fan-Gang Tseng3, Shantanu Pradhan4, Pallab Sinha Mahapatra5, Tuhin Subhra Santra1.   

Abstract

Targeted intracellular delivery of biomolecules and therapeutic cargo enables the controlled manipulation of cellular processes. Laser-based optoporation has emerged as a versatile, non-invasive technique that employs light-based transient physical disruption of the cell membrane and achieves high transfection efficiency with low cell damage. Testing of the delivery efficiency of optoporation-based techniques has been conducted on single cells in monolayers, but its applicability in three-dimensional (3D) cell clusters/spheroids has not been explored. Cancer cells grown as 3D tumor spheroids are widely used in anti-cancer drug screening and can be potentially employed for testing delivery efficiency. Towards this goal, we demonstrated the optoporation-based high-throughput intracellular delivery of a model fluorescent cargo (propidium iodide, PI) within 3D SiHa human cervical cancer spheroids. To enable this technique, nano-spiked core-shell gold-coated polystyrene nanoparticles (ns-AuNPs) with a high surface-to-volume ratio were fabricated. ns-AuNPs exhibited high electric field enhancement and highly localized heating at an excitation wavelength of 680 nm. ns-AuNPs were co-incubated with cancer cells within hanging droplets to enable the rapid aggregation and assembly of spheroids. Nanosecond pulsed-laser excitation at the optimized values of laser fluence (45 mJ cm-2), pulse frequency (10 Hz), laser exposure time (30 s), and ns-AuNP concentration (5 × 1010 particles per ml) resulted in the successful delivery of PI dye into cancer cells. This technique ensured high delivery efficiency (89.6 ± 2.8%) while maintaining high cellular viability (97.4 ± 0.4%), thereby validating the applicability of this technique for intracellular delivery. The optoporation-based strategy can enable high-throughput single cell manipulation, is scalable towards larger 3D tissue constructs, and may provide translational benefits for the delivery of anti-cancer therapeutics to tumors.

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Year:  2021        PMID: 34240729      PMCID: PMC7611397          DOI: 10.1039/d0an02432e

Source DB:  PubMed          Journal:  Analyst        ISSN: 0003-2654            Impact factor:   4.616


  22 in total

1.  Laser-assisted optoporation of single cells.

Authors:  Herbert Schneckenburger; Anita Hendinger; Reinhard Sailer; Wolfgang S L Strauss; Michael Schmitt
Journal:  J Biomed Opt       Date:  2002-07       Impact factor: 3.170

Review 2.  Challenges in carrier-mediated intracellular delivery: moving beyond endosomal barriers.

Authors:  Martin P Stewart; Anna Lorenz; James Dahlman; Gaurav Sahay
Journal:  Wiley Interdiscip Rev Nanomed Nanobiotechnol       Date:  2015-11-05

3.  Image-based analysis of lipid nanoparticle-mediated siRNA delivery, intracellular trafficking and endosomal escape.

Authors:  Jerome Gilleron; William Querbes; Anja Zeigerer; Anna Borodovsky; Giovanni Marsico; Undine Schubert; Kevin Manygoats; Sarah Seifert; Cordula Andree; Martin Stöter; Hila Epstein-Barash; Ligang Zhang; Victor Koteliansky; Kevin Fitzgerald; Eugenio Fava; Marc Bickle; Yannis Kalaidzidis; Akin Akinc; Martin Maier; Marino Zerial
Journal:  Nat Biotechnol       Date:  2013-06-23       Impact factor: 54.908

4.  Single-cell optoporation and transfection using femtosecond laser and optical tweezers.

Authors:  Muhammad Waleed; Sun-Uk Hwang; Jung-Dae Kim; Irfan Shabbir; Sang-Mo Shin; Yong-Gu Lee
Journal:  Biomed Opt Express       Date:  2013-08-07       Impact factor: 3.732

5.  The use of optical trap and microbeam to investigate the mechanical and transport characteristics of tunneling nanotubes in tumor spheroids.

Authors:  Pooja Patheja; Raktim Dasgupta; Alok Dube; Sunita Ahlawat; Ravi Shanker Verma; Pradeep Kumar Gupta
Journal:  J Biophotonics       Date:  2014-10-29       Impact factor: 3.207

6.  Near-infrared nanosecond-pulsed laser-activated highly efficient intracellular delivery mediated by nano-corrugated mushroom-shaped gold-coated polystyrene nanoparticles.

Authors:  Tuhin Subhra Santra; Srabani Kar; Te-Chang Chen; Chih-Wei Chen; Jayant Borana; Ming-Chang Lee; Fan-Gang Tseng
Journal:  Nanoscale       Date:  2020-06-11       Impact factor: 7.790

7.  Plasmonic nanobubbles as transient vapor nanobubbles generated around plasmonic nanoparticles.

Authors:  Ekaterina Lukianova-Hleb; Ying Hu; Loredana Latterini; Luigi Tarpani; Seunghyun Lee; Rebekah A Drezek; Jason H Hafner; Dmitri O Lapotko
Journal:  ACS Nano       Date:  2010-04-27       Impact factor: 15.881

8.  Impact of pulse duration on localized single-cell nano-electroporation.

Authors:  Tuhin Subhra Santra; Hwan-You Chang; Pen-Cheng Wang; Fan-Gang Tseng
Journal:  Analyst       Date:  2014-10-16       Impact factor: 4.616

9.  Optical Constants of Water in the 200-nm to 200-microm Wavelength Region.

Authors:  G M Hale; M R Querry
Journal:  Appl Opt       Date:  1973-03-01       Impact factor: 1.980

Review 10.  Engineering targeted viral vectors for gene therapy.

Authors:  Reinhard Waehler; Stephen J Russell; David T Curiel
Journal:  Nat Rev Genet       Date:  2007-07-03       Impact factor: 53.242

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  2 in total

Review 1.  Microfluidic mechanoporation for cellular delivery and analysis.

Authors:  Pulasta Chakrabarty; Pallavi Gupta; Kavitha Illath; Srabani Kar; Moeto Nagai; Fan-Gang Tseng; Tuhin Subhra Santra
Journal:  Mater Today Bio       Date:  2021-12-20

2.  Role of actin cytoskeleton in cargo delivery mediated by vertically aligned silicon nanotubes.

Authors:  Yaping Chen; Hao Zhe Yoh; Ali-Reza Shokouhi; Takahide Murayama; Koukou Suu; Yasuhiro Morikawa; Nicolas H Voelcker; Roey Elnathan
Journal:  J Nanobiotechnology       Date:  2022-09-08       Impact factor: 9.429

  2 in total

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