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Snap-on Adaptor for Microtiter Plates to Enable Continuous-Flow Microfluidic Screening and Harvesting of Crystalline Materials

[Image: see text] Microtiter plate assay is a conventional and standard tool for high-throughput (HT) screening that allows the synthesis, harvesting, and analysis of crystals. The microtiter plate screening assays require a small amount of solute in each experiment, which is adequate for a solid-st...

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Autores principales: Coliaie, Paria, Bhawnani, Rajan R., Ali, Rabia, Kelkar, Manish S., Korde, Akshay, Langston, Marianne, Liu, Chengxiang, Nazemifard, Neda, Patience, Daniel B., Rosenbaum, Tamar, Skliar, Dimitri, Nere, Nandkishor K., Singh, Meenesh R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10633872/
https://www.ncbi.nlm.nih.gov/pubmed/37969966
http://dx.doi.org/10.1021/acsomega.3c05478
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author Coliaie, Paria
Bhawnani, Rajan R.
Ali, Rabia
Kelkar, Manish S.
Korde, Akshay
Langston, Marianne
Liu, Chengxiang
Nazemifard, Neda
Patience, Daniel B.
Rosenbaum, Tamar
Skliar, Dimitri
Nere, Nandkishor K.
Singh, Meenesh R.
author_facet Coliaie, Paria
Bhawnani, Rajan R.
Ali, Rabia
Kelkar, Manish S.
Korde, Akshay
Langston, Marianne
Liu, Chengxiang
Nazemifard, Neda
Patience, Daniel B.
Rosenbaum, Tamar
Skliar, Dimitri
Nere, Nandkishor K.
Singh, Meenesh R.
author_sort Coliaie, Paria
collection PubMed
description [Image: see text] Microtiter plate assay is a conventional and standard tool for high-throughput (HT) screening that allows the synthesis, harvesting, and analysis of crystals. The microtiter plate screening assays require a small amount of solute in each experiment, which is adequate for a solid-state crystal analysis such as X-ray diffraction (XRD) or Raman spectroscopy. Despite the advantages of these high-throughput assays, their batch operational nature results in a continuous decrease in supersaturation due to crystal nucleation and growth. Continuous-flow microfluidic mixer devices have evolved as an alternate technique for efficiently screening crystals under controlled supersaturation. However, such a microfluidic device requires a minimum of two inlets per micromixer to create cyclonic flow, thereby creating physical limitations for implementing such a device for HT screening. Additionally, the monolithic design of these microfluidic devices makes it challenging to harvest crystals for post-screening analysis. Here, we develop a snap-on adapter that can be reversibly attached to a microtiter plate and convert it into a continuous-flow microfluidic mixer device. The integration of the snap-on adapter with a flow distributor and concentration gradient generator provides greater control over screening conditions while minimizing the number of independent inlets and pumps required. The three-dimensional (3D)-printed snap-on adaptor is plugged into a 24-well plate assay to demonstrate salt screening of naproxen crystals. Different naproxen salts are crystallized using four different salt formers (SFs)—sodium hydroxide, potassium hydroxide, pyridine, and arginine—and four different solvents–ethanol, methanol, isopropyl alcohol, and deionized water. The wells are further inspected under an optical microscope to identify their morphological forms and yields. The crystals are then harvested for solid-state characterization using XRD and Fourier transform infrared spectroscopy, followed by measurement of their dissolution rates. The flexibility of the snap-on adapter to fit on a wide range of microtiter plates and the ease in harvesting and analyzing crystals postscreening are two significant advantages that make this device versatile for various applications.
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spelling pubmed-106338722023-11-15 Snap-on Adaptor for Microtiter Plates to Enable Continuous-Flow Microfluidic Screening and Harvesting of Crystalline Materials Coliaie, Paria Bhawnani, Rajan R. Ali, Rabia Kelkar, Manish S. Korde, Akshay Langston, Marianne Liu, Chengxiang Nazemifard, Neda Patience, Daniel B. Rosenbaum, Tamar Skliar, Dimitri Nere, Nandkishor K. Singh, Meenesh R. ACS Omega [Image: see text] Microtiter plate assay is a conventional and standard tool for high-throughput (HT) screening that allows the synthesis, harvesting, and analysis of crystals. The microtiter plate screening assays require a small amount of solute in each experiment, which is adequate for a solid-state crystal analysis such as X-ray diffraction (XRD) or Raman spectroscopy. Despite the advantages of these high-throughput assays, their batch operational nature results in a continuous decrease in supersaturation due to crystal nucleation and growth. Continuous-flow microfluidic mixer devices have evolved as an alternate technique for efficiently screening crystals under controlled supersaturation. However, such a microfluidic device requires a minimum of two inlets per micromixer to create cyclonic flow, thereby creating physical limitations for implementing such a device for HT screening. Additionally, the monolithic design of these microfluidic devices makes it challenging to harvest crystals for post-screening analysis. Here, we develop a snap-on adapter that can be reversibly attached to a microtiter plate and convert it into a continuous-flow microfluidic mixer device. The integration of the snap-on adapter with a flow distributor and concentration gradient generator provides greater control over screening conditions while minimizing the number of independent inlets and pumps required. The three-dimensional (3D)-printed snap-on adaptor is plugged into a 24-well plate assay to demonstrate salt screening of naproxen crystals. Different naproxen salts are crystallized using four different salt formers (SFs)—sodium hydroxide, potassium hydroxide, pyridine, and arginine—and four different solvents–ethanol, methanol, isopropyl alcohol, and deionized water. The wells are further inspected under an optical microscope to identify their morphological forms and yields. The crystals are then harvested for solid-state characterization using XRD and Fourier transform infrared spectroscopy, followed by measurement of their dissolution rates. The flexibility of the snap-on adapter to fit on a wide range of microtiter plates and the ease in harvesting and analyzing crystals postscreening are two significant advantages that make this device versatile for various applications. American Chemical Society 2023-10-23 /pmc/articles/PMC10633872/ /pubmed/37969966 http://dx.doi.org/10.1021/acsomega.3c05478 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Coliaie, Paria
Bhawnani, Rajan R.
Ali, Rabia
Kelkar, Manish S.
Korde, Akshay
Langston, Marianne
Liu, Chengxiang
Nazemifard, Neda
Patience, Daniel B.
Rosenbaum, Tamar
Skliar, Dimitri
Nere, Nandkishor K.
Singh, Meenesh R.
Snap-on Adaptor for Microtiter Plates to Enable Continuous-Flow Microfluidic Screening and Harvesting of Crystalline Materials
title Snap-on Adaptor for Microtiter Plates to Enable Continuous-Flow Microfluidic Screening and Harvesting of Crystalline Materials
title_full Snap-on Adaptor for Microtiter Plates to Enable Continuous-Flow Microfluidic Screening and Harvesting of Crystalline Materials
title_fullStr Snap-on Adaptor for Microtiter Plates to Enable Continuous-Flow Microfluidic Screening and Harvesting of Crystalline Materials
title_full_unstemmed Snap-on Adaptor for Microtiter Plates to Enable Continuous-Flow Microfluidic Screening and Harvesting of Crystalline Materials
title_short Snap-on Adaptor for Microtiter Plates to Enable Continuous-Flow Microfluidic Screening and Harvesting of Crystalline Materials
title_sort snap-on adaptor for microtiter plates to enable continuous-flow microfluidic screening and harvesting of crystalline materials
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10633872/
https://www.ncbi.nlm.nih.gov/pubmed/37969966
http://dx.doi.org/10.1021/acsomega.3c05478
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