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  4. Molecular Imaging with Aquaporin-Based Reporter Genes: Quantitative Considerations from Monte Carlo Diffusion Simulations
 
research article

Molecular Imaging with Aquaporin-Based Reporter Genes: Quantitative Considerations from Monte Carlo Diffusion Simulations

Chowdhury, Rochishnu
•
Wan, Jinyang
•
Gardier, Remy  
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October 4, 2023
Acs Synthetic Biology

Aquaporins provide a unique approach for imaging genetic activity in deep tissues by increasing the rate of cellular water diffusion, which generates a magnetic resonance contrast. However, distinguishing aquaporin signals from the tissue background is challenging because water diffusion is influenced by structural factors, such as cell size and packing density. Here, we developed a Monte Carlo model to analyze how cell radius and intracellular volume fraction quantitatively affect aquaporin signals. We demonstrated that a differential imaging approach based on subtracting signals at two diffusion times can improve specificity by unambiguously isolating aquaporin signals from the tissue background. We further used Monte Carlo simulations to analyze the connection between diffusivity and the percentage of cells engineered to express aquaporin and established a mapping that accurately determined the volume fraction of aquaporin-expressing cells in mixed populations. The quantitative framework developed in this study will enable a broad range of applications in biomedical synthetic biology, requiring the use of aquaporins to noninvasively monitor the location and function of genetically engineered devices in live animals.

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Type
research article
DOI
10.1021/acssynbio.3c00372
Web of Science ID

WOS:001078951000001

Author(s)
Chowdhury, Rochishnu
Wan, Jinyang
Gardier, Remy  
Rafael-Patino, Jonathan  
Thiran, Jean-Philippe  
Gibou, Frederic
Mukherjee, Arnab
Date Issued

2023-10-04

Publisher

Amer Chemical Soc

Published in
Acs Synthetic Biology
Volume

12

Issue

10

Start page

3041

End page

3049

Subjects

Life Sciences & Biomedicine

•

Mri

•

Aquaporins

•

Reporter Genes

•

Montecarlo Diffusion Simulations

•

Diffusion-Weighted Imaging

•

Tissue Microstructure

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

FunderGrant Number

National Institutes of Health

R35-GM133530

U.S. Army Research Office via the Institute for Collaborative Biotechnologies cooperative agreement

W911NF-19-D-0001-0009

NARSAD Young Investigator Award from the Brain & Behavior Research Foundation

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Available on Infoscience
February 14, 2024
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/203715
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