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Generating Lifetime-Enhanced Microbubbles by Decorating Shells with Silicon Quantum Nano-Dots Using a 3-Series T-Junction Microfluidic Device

[Image: see text] Long-term stability of microbubbles is crucial to their effectiveness. Using a new microfluidic device connecting three T-junction channels of 100 μm in series, stable monodisperse SiQD-loaded bovine serum albumin (BSA) protein microbubbles down to 22.8 ± 1.4 μm in diameter were ge...

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Autores principales: Wu, Bingjie, Luo, C. J., Palaniappan, Ashwin, Jiang, Xinyue, Gultekinoglu, Merve, Ulubayram, Kezban, Bayram, Cem, Harker, Anthony, Shirahata, Naoto, Khan, Aaqib H., Dalvi, Sameer V., Edirisinghe, Mohan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9476864/
https://www.ncbi.nlm.nih.gov/pubmed/36018789
http://dx.doi.org/10.1021/acs.langmuir.2c00126
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author Wu, Bingjie
Luo, C. J.
Palaniappan, Ashwin
Jiang, Xinyue
Gultekinoglu, Merve
Ulubayram, Kezban
Bayram, Cem
Harker, Anthony
Shirahata, Naoto
Khan, Aaqib H.
Dalvi, Sameer V.
Edirisinghe, Mohan
author_facet Wu, Bingjie
Luo, C. J.
Palaniappan, Ashwin
Jiang, Xinyue
Gultekinoglu, Merve
Ulubayram, Kezban
Bayram, Cem
Harker, Anthony
Shirahata, Naoto
Khan, Aaqib H.
Dalvi, Sameer V.
Edirisinghe, Mohan
author_sort Wu, Bingjie
collection PubMed
description [Image: see text] Long-term stability of microbubbles is crucial to their effectiveness. Using a new microfluidic device connecting three T-junction channels of 100 μm in series, stable monodisperse SiQD-loaded bovine serum albumin (BSA) protein microbubbles down to 22.8 ± 1.4 μm in diameter were generated. Fluorescence microscopy confirmed the integration of SiQD on the microbubble surface, which retained the same morphology as those without SiQD. The microbubble diameter and stability in air were manipulated through appropriate selection of T-junction numbers, capillary diameter, liquid flow rate, and BSA and SiQD concentrations. A predictive computational model was developed from the experimental data, and the number of T-junctions was incorporated into this model as one of the variables. It was illustrated that the diameter of the monodisperse microbubbles generated can be tailored by combining up to three T-junctions in series, while the operating parameters were kept constant. Computational modeling of microbubble diameter and stability agreed with experimental data. The lifetime of microbubbles increased with increasing T-junction number and higher concentrations of BSA and SiQD. The present research sheds light on a potential new route employing SiQD and triple T-junctions to form stable, monodisperse, multi-layered, and well-characterized protein and quantum dot-loaded protein microbubbles with enhanced stability for the first time.
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spelling pubmed-94768642022-09-16 Generating Lifetime-Enhanced Microbubbles by Decorating Shells with Silicon Quantum Nano-Dots Using a 3-Series T-Junction Microfluidic Device Wu, Bingjie Luo, C. J. Palaniappan, Ashwin Jiang, Xinyue Gultekinoglu, Merve Ulubayram, Kezban Bayram, Cem Harker, Anthony Shirahata, Naoto Khan, Aaqib H. Dalvi, Sameer V. Edirisinghe, Mohan Langmuir [Image: see text] Long-term stability of microbubbles is crucial to their effectiveness. Using a new microfluidic device connecting three T-junction channels of 100 μm in series, stable monodisperse SiQD-loaded bovine serum albumin (BSA) protein microbubbles down to 22.8 ± 1.4 μm in diameter were generated. Fluorescence microscopy confirmed the integration of SiQD on the microbubble surface, which retained the same morphology as those without SiQD. The microbubble diameter and stability in air were manipulated through appropriate selection of T-junction numbers, capillary diameter, liquid flow rate, and BSA and SiQD concentrations. A predictive computational model was developed from the experimental data, and the number of T-junctions was incorporated into this model as one of the variables. It was illustrated that the diameter of the monodisperse microbubbles generated can be tailored by combining up to three T-junctions in series, while the operating parameters were kept constant. Computational modeling of microbubble diameter and stability agreed with experimental data. The lifetime of microbubbles increased with increasing T-junction number and higher concentrations of BSA and SiQD. The present research sheds light on a potential new route employing SiQD and triple T-junctions to form stable, monodisperse, multi-layered, and well-characterized protein and quantum dot-loaded protein microbubbles with enhanced stability for the first time. American Chemical Society 2022-08-26 2022-09-13 /pmc/articles/PMC9476864/ /pubmed/36018789 http://dx.doi.org/10.1021/acs.langmuir.2c00126 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Wu, Bingjie
Luo, C. J.
Palaniappan, Ashwin
Jiang, Xinyue
Gultekinoglu, Merve
Ulubayram, Kezban
Bayram, Cem
Harker, Anthony
Shirahata, Naoto
Khan, Aaqib H.
Dalvi, Sameer V.
Edirisinghe, Mohan
Generating Lifetime-Enhanced Microbubbles by Decorating Shells with Silicon Quantum Nano-Dots Using a 3-Series T-Junction Microfluidic Device
title Generating Lifetime-Enhanced Microbubbles by Decorating Shells with Silicon Quantum Nano-Dots Using a 3-Series T-Junction Microfluidic Device
title_full Generating Lifetime-Enhanced Microbubbles by Decorating Shells with Silicon Quantum Nano-Dots Using a 3-Series T-Junction Microfluidic Device
title_fullStr Generating Lifetime-Enhanced Microbubbles by Decorating Shells with Silicon Quantum Nano-Dots Using a 3-Series T-Junction Microfluidic Device
title_full_unstemmed Generating Lifetime-Enhanced Microbubbles by Decorating Shells with Silicon Quantum Nano-Dots Using a 3-Series T-Junction Microfluidic Device
title_short Generating Lifetime-Enhanced Microbubbles by Decorating Shells with Silicon Quantum Nano-Dots Using a 3-Series T-Junction Microfluidic Device
title_sort generating lifetime-enhanced microbubbles by decorating shells with silicon quantum nano-dots using a 3-series t-junction microfluidic device
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9476864/
https://www.ncbi.nlm.nih.gov/pubmed/36018789
http://dx.doi.org/10.1021/acs.langmuir.2c00126
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