Literature DB >> 32069037

Intracellular Nanomaterial Delivery via Spiral Hydroporation.

GeoumYoung Kang1, Daniel W Carlson2, Tae Ho Kang3, Seungki Lee3, Simon J Haward2, Inhee Choi3, Amy Q Shen2, Aram J Chung1,4,5.   

Abstract

In recent nanobiotechnology developments, a wide variety of functional nanomaterials and engineered biomolecules have been created, and these have numerous applications in cell biology. For these nanomaterials to fulfill their promises completely, they must be able to reach their biological targets at the subcellular level and with a high level of specificity. Traditionally, either nanocarrier- or membrane disruption-based method has been used to deliver nanomaterials inside cells; however, these methods are suboptimal due to their toxicity, inconsistent delivery, and low throughput, and they are also labor intensive and time-consuming, highlighting the need for development of a next-generation, intracellular delivery system. This study reports on the development of an intracellular nanomaterial delivery platform, based on unexpected cell-deformation phenomena via spiral vortex and vortex breakdown exerted in the cross- and T-junctions at moderate Reynolds numbers. These vortex-induced cell deformation and sequential restoration processes open cell membranes transiently, allowing effective and robust intracellular delivery of nanomaterials in a single step without the aid of carriers or external apparatus. By using the platform described here (termed spiral hydroporator), we demonstrate the delivery of different nanomaterials, including gold nanoparticles (200 nm diameter), functional mesoporous silica nanoparticles (150 nm diameter), dextran (hydrodynamic diameters between 2-55 nm), and mRNA, into different cell types. We demonstrate here that the system is highly efficient (up to 96.5%) with high throughput (up to 1 × 106 cells/min) and rapid delivery (∼1 min) while maintaining high levels of cell viability (up to 94%).

Entities:  

Keywords:  cell transfection; hydroporation; hydroporator; inertial microfluidics; intracellular delivery; macromolecule delivery; nanoparticle delivery

Mesh:

Substances:

Year:  2020        PMID: 32069037     DOI: 10.1021/acsnano.9b07930

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  9 in total

1.  Deep Learning-Assisted Automated Single Cell Electroporation Platform for Effective Genetic Manipulation of Hard-to-Transfect Cells.

Authors:  Prithvijit Mukherjee; Cesar A Patino; Nibir Pathak; Vincent Lemaitre; Horacio D Espinosa
Journal:  Small       Date:  2022-03-21       Impact factor: 15.153

2.  Sonoporation: Past, Present, and Future.

Authors:  Joseph Rich; Zhenhua Tian; Tony Jun Huang
Journal:  Adv Mater Technol       Date:  2021-09-14

Review 3.  High Throughput and Highly Controllable Methods for In Vitro Intracellular Delivery.

Authors:  Justin Brooks; Grayson Minnick; Prithvijit Mukherjee; Arian Jaberi; Lingqian Chang; Horacio D Espinosa; Ruiguo Yang
Journal:  Small       Date:  2020-11-25       Impact factor: 13.281

4.  Efficient and gentle delivery of molecules into cells with different elasticity via Progressive Mechanoporation.

Authors:  Alena Uvizl; Ruchi Goswami; Shanil Durgeshkumar Gandhi; Martina Augsburg; Frank Buchholz; Jochen Guck; Jörg Mansfeld; Salvatore Girardo
Journal:  Lab Chip       Date:  2021-06-15       Impact factor: 6.799

Review 5.  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

6.  Multiplexed high-throughput localized electroporation workflow with deep learning-based analysis for cell engineering.

Authors:  Cesar A Patino; Nibir Pathak; Prithvijit Mukherjee; So Hyun Park; Gang Bao; Horacio D Espinosa
Journal:  Sci Adv       Date:  2022-07-22       Impact factor: 14.957

Review 7.  Delivering the CRISPR/Cas9 system for engineering gene therapies: Recent cargo and delivery approaches for clinical translation.

Authors:  Ruth A Foley; Ruby A Sims; Emily C Duggan; Jessica K Olmedo; Rachel Ma; Steven J Jonas
Journal:  Front Bioeng Biotechnol       Date:  2022-09-26

Review 8.  Microfluidic and Nanofluidic Intracellular Delivery.

Authors:  Jeongsoo Hur; Aram J Chung
Journal:  Adv Sci (Weinh)       Date:  2021-06-06       Impact factor: 16.806

9.  High-throughput continuous-flow microfluidic electroporation of mRNA into primary human T cells for applications in cellular therapy manufacturing.

Authors:  Charles A Lissandrello; Jose A Santos; Peter Hsi; Michaela Welch; Vienna L Mott; Ernest S Kim; Jordan Chesin; Nerses J Haroutunian; Aaron G Stoddard; Andrew Czarnecki; Jonathan R Coppeta; Daniel K Freeman; Deborah A Flusberg; Jenna L Balestrini; Vishal Tandon
Journal:  Sci Rep       Date:  2020-10-22       Impact factor: 4.379

  9 in total

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