Literature DB >> 28682620

New Biotechnological Microencapsulating Methodology Utilizing Individualized Gradient-Screened Jet Laminar Flow Techniques for Pancreatic β-Cell Delivery: Bile Acids Support Cell Energy-Generating Mechanisms.

Armin Mooranian1, Rebecca Negrulj1, Ryu Takechi2, Emma Jamieson3, Grant Morahan3, Hani Al-Salami1.   

Abstract

In previous studies, we developed a new technique (ionic gelation vibrational jet flow; IGVJF) in order to encapsulate pancreatic β-cells, for insulin in vivo delivery, and diabetes treatment. The fabricated microcapsules showed good morphology but limited cell functions. Thus, this study aimed to optimize the IGVJF technique, by utilizing integrated electrode tension, coupled with high internal vibration, jet-flow polymer stream rate, ionic bath-gelation concentrations, and gelation time stay. The study also utilized double inner/outer nozzle segmented-ingredient flow of microencapsulating dispersion, in order to form β-cell microcapsules. Furthermore, a microcapsule-stabilizing bile acid was added, and microcapsule's stability and cell functions measured. Buchi-based built-in system utilizing IGVJF technology was screened to produce best microcapsule-containing β-cells with or without a stabilizing-enhancing bile acid. Formed microcapsules were examined, for physical characteristics, and encapsulated cells were examined for survival, insulin release, and inflammatory profiles. Optimized microencapsulating parameters, using IGJVF, were: 1000 V voltage, 2500 Hz frequency, 1 mL/min flow rate, 3% w/v ionic-bath gelation concentration, and 20 min gelation time. Microcapsules showed good morphology and stability, and the encapsulated cells showed good survival, and insulin secretion, which was optimized by the bile acid. Deployed IGVJF-based microencapsulating parameters utilizing stability-enhancing bile acid produced best microcapsules with best pancreatic β-cells functions and survival rate, which, suggests potential application in cell transplantation.

Entities:  

Keywords:  biotechnology; cell engineering; microencapsulation; transplantation

Mesh:

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Year:  2017        PMID: 28682620     DOI: 10.1021/acs.molpharmaceut.7b00220

Source DB:  PubMed          Journal:  Mol Pharm        ISSN: 1543-8384            Impact factor:   4.939


  3 in total

1.  Pharmacological Dose-Effect Profiles of Various Concentrations of Humanised Primary Bile Acid in Encapsulated Cells.

Authors:  Armin Mooranian; Melissa Jones; Daniel Walker; Corina Mihaela Ionescu; Susbin Raj Wagle; Bozica Kovacevic; Jacqueline Chester; Thomas Foster; Edan Johnston; Jafri Kuthubutheen; Daniel Brown; Marcus D Atlas; Momir Mikov; Hani Al-Salami
Journal:  Nanomaterials (Basel)       Date:  2022-02-15       Impact factor: 5.076

2.  Taurine Grafted Micro-Implants Improved Functions without Direct Dependency between Interleukin-6 and the Bile Acid Lithocholic Acid in Plasma.

Authors:  Armin Mooranian; Corina Mihaela Ionescu; Susbin Raj Wagle; Bozica Kovacevic; Daniel Walker; Melissa Jones; Jacqueline Chester; Thomas Foster; Edan Johnston; Sanja Kojic; Goran Stojanovic; Momir Mikov; Hani Al-Salami
Journal:  Biomedicines       Date:  2022-01-06

3.  Single-Cellular Biological Effects of Cholesterol-Catabolic Bile Acid-Based Nano/Micro Capsules as Anti-Inflammatory Cell Protective Systems.

Authors:  Armin Mooranian; Corina Mihaela Ionescu; Daniel Walker; Melissa Jones; Susbin Raj Wagle; Bozica Kovacevic; Jacqueline Chester; Thomas Foster; Edan Johnston; Jafri Kuthubutheen; Daniel Brown; Marcus D Atlas; Momir Mikov; Hani Al-Salami
Journal:  Biomolecules       Date:  2022-01-04
  3 in total

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