Nano-Regulation of Gene Expression in : Harnessing AuNPs for Remotely Switchable Lipid Biosynthesis via Antisense Oligonucleotides.

ACS Synth Biol

Facultad de Ciencias Químicas, Universidad Autónoma de Nuevo León, UANL, San Nicolás de los Garza, Nuevo León 66455, México.

Published: June 2024

AI Article Synopsis

  • This research focuses on enhancing antisense oligonucleotide (ASO)-mediated gene silencing using nanotechnology, enabling precise control over gene expression.
  • Gold nanoparticles (AuNPs) were used to deliver double-stranded DNA to target lipid biosynthesis in eukaryotic cells, leading to a significant 83% reduction in a specific gene expression.
  • The results highlight the potential of this technology for applications in biomedicine and agriculture, offering innovative solutions to global issues in energy, farming, and healthcare.

Article Abstract

Antisense oligonucleotide (ASO)-mediated gene silencing has broad applications, spanning from biomedicine to agriculture, involving molecular biology, synthetic biology, and genetic manipulation. This research harnessed nanotechnology to augment ASO-mediated gene silencing, introducing a remotely switchable gene expression system for precise temporal control. We targeted lipid biosynthesis and accumulation enhancement in the photosynthetic eukaryote . Gold nanoparticles (AuNPs) transported double-stranded DNA (dsDNA), forming dsDNA-AuNP complexes. These complexes comprised 3'-thiolated sense strands attached to AuNPs and fluorescent antisense oligonucleotides. To avoid harmful laser effects on cells, we adopted a light-emitting diode (LED). Confocal microscopy confirmed dsDNA-AuNP internalization in . . LED-triggered antisense release led to an 83% decrease in (CIS 2) expression. Thiolated sense strand attachment postillumination inhibited antisense reannealing, enhancing gene silencing. This led to significant lipid body accumulation in cells, verified through fluorometric and fluorescence microscopy. This union of nanotechnology and ASO-mediated silencing provides gene regulation opportunities across sectors like biomedicine and agriculture. The system's remote switching capability underscores its potential in synthetic biology and genetic engineering. Our findings substantiate the utility of this approach for enhancing lipid biosynthesis in . but also underscores its broader applicability to other organisms, fostering the development of novel solutions for pressing global challenges in energy, agriculture, and healthcare.

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Source
http://dx.doi.org/10.1021/acssynbio.3c00650DOI Listing

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