Tracking nanoscopic particles with interferometer scattering microscopy
The characterization of particles is crucial in the biomedical research field and can be accomplished using a variety of imaging modalities and detection methods. Single particle tracking (SPT) is a technique that enables the study of nanoscale objects' trajectories, but its fluorescence-based...
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2023
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sg-ntu-dr.10356-1674052023-05-26T15:32:01Z Tracking nanoscopic particles with interferometer scattering microscopy Wong, Kuan Hua Tong Ling School of Chemistry, Chemical Engineering and Biotechnology tong.ling@ntu.edu.sg Engineering::Bioengineering The characterization of particles is crucial in the biomedical research field and can be accomplished using a variety of imaging modalities and detection methods. Single particle tracking (SPT) is a technique that enables the study of nanoscale objects' trajectories, but its fluorescence-based implementation has limited spatiotemporal resolution due to various factors. On the other hand, interferometric scattering (iSCAT) microscopy is a non-fluorescent interference-based imaging technique that can achieve highly sensitive detection of nanoscale objects and investigate their dynamics at the nanoscale level. SPT based on iSCAT provides high spatiotemporal resolution, with limitations only imposed by the intrinsic properties of the detection system and shot noise. In this project, we present an image processing and data analysis pipeline that utilizes the PiSCAT library and trackpy toolkit to analyze iSCAT images and obtain quantitative information on nanoparticles’ trajectories. Our findings indicate that the proposed method successfully locates the nanoparticles and obtains trajectory data for both datasets, which shows the binding interaction consist of two different modified gold nanoparticles (AuNPs) with varying target concentrations. Bachelor of Engineering (Bioengineering) 2023-05-26T12:42:59Z 2023-05-26T12:42:59Z 2023 Final Year Project (FYP) Wong, K. H. (2023). Tracking nanoscopic particles with interferometer scattering microscopy. Final Year Project (FYP), Nanyang Technological University, Singapore. https://hdl.handle.net/10356/167405 https://hdl.handle.net/10356/167405 en CBE/22/038 application/pdf Nanyang Technological University |
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Engineering::Bioengineering Wong, Kuan Hua Tracking nanoscopic particles with interferometer scattering microscopy |
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The characterization of particles is crucial in the biomedical research field and can be accomplished using a variety of imaging modalities and detection methods. Single particle tracking (SPT) is a technique that enables the study of nanoscale objects' trajectories, but its fluorescence-based implementation has limited spatiotemporal resolution due to various factors. On the other hand, interferometric scattering (iSCAT) microscopy is a non-fluorescent interference-based imaging technique that can achieve highly sensitive detection of nanoscale objects and investigate their dynamics at the nanoscale level. SPT based on iSCAT provides high spatiotemporal resolution, with limitations only imposed by the intrinsic properties of the detection system and shot noise.
In this project, we present an image processing and data analysis pipeline that utilizes the PiSCAT library and trackpy toolkit to analyze iSCAT images and obtain quantitative information on nanoparticles’ trajectories. Our findings indicate that the proposed method successfully locates the nanoparticles and obtains trajectory data for both datasets, which shows the binding interaction consist of two different modified gold nanoparticles (AuNPs) with varying target concentrations. |
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Tong Ling |
author_facet |
Tong Ling Wong, Kuan Hua |
format |
Final Year Project |
author |
Wong, Kuan Hua |
author_sort |
Wong, Kuan Hua |
title |
Tracking nanoscopic particles with interferometer scattering microscopy |
title_short |
Tracking nanoscopic particles with interferometer scattering microscopy |
title_full |
Tracking nanoscopic particles with interferometer scattering microscopy |
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Tracking nanoscopic particles with interferometer scattering microscopy |
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Tracking nanoscopic particles with interferometer scattering microscopy |
title_sort |
tracking nanoscopic particles with interferometer scattering microscopy |
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Nanyang Technological University |
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2023 |
url |
https://hdl.handle.net/10356/167405 |
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1772826078194171904 |