In Silico Analysis of Microfluidic Systems for the Purification of Magnetoliposomes †
Abstract
:1. Introduction
2. Results and Discussion
2.1. Design and Synthesis
2.1.1. Synthesis of the Alkyne-Based Key Intermediate
2.1.2. Derivatization of Key Intermediate NBDP-yne Towards Bio-Recognition
2.2. Spectroscopic Signatures in Solution
2.3. Biological Assessment in Established Pancreatic Adenocarcinoma Cells
2.3.1. Photodynamic Therapy Protocols
2.3.2. N-BODIPYs Internalization in PANC-1 Cells
2.3.3. Subcellular Localization
3. Materials and Methods
3.1. Synthetic Procedures
3.2. Photophysical Properties
3.3. Biological Assessment
3.3.1. Cell Culture
3.3.2. Photodynamic Therapy Treatments
3.3.3. Cell Viability Studies
3.3.4. N-BODIPY Cellular Uptake by Flow Cytometry
3.3.5. Subcellular Localization and Accumulation by Fluorescence Microscopy
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
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Torres, C.E.; Aranguren, A.; Reyes, L.H.; Osma, J.F.; Cruz, J.C. In Silico Analysis of Microfluidic Systems for the Purification of Magnetoliposomes. Mater. Proc. 2021, 4, 90. https://doi.org/10.3390/IOCN2020-07797
Torres CE, Aranguren A, Reyes LH, Osma JF, Cruz JC. In Silico Analysis of Microfluidic Systems for the Purification of Magnetoliposomes. Materials Proceedings. 2021; 4(1):90. https://doi.org/10.3390/IOCN2020-07797
Chicago/Turabian StyleTorres, Carlos E., Andres Aranguren, Luis H. Reyes, Johann F. Osma, and Juan C. Cruz. 2021. "In Silico Analysis of Microfluidic Systems for the Purification of Magnetoliposomes" Materials Proceedings 4, no. 1: 90. https://doi.org/10.3390/IOCN2020-07797