Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Evaluating Preservation Techniques for Long-Term Stability of 3D Bioprinted Liver Scaffolds

View through CrossRef
ABSTRACT Three-dimensional (3D) bioprinted liver scaffolds offer a promising platform for drug screening, disease modelling, and regenerative medicine, yet their broader adoption is limited by the absence of robust post-fabrication preservation strategies. This study aimed to evaluate the impact of −80°C (deep freezer) preservation and evaluate the structural integrity and hepatic functionality of GelMA–decellularized liver extra cellular matrix (dECM)–based 3D bioprinted liver scaffolds. Bioinks were formulated using synthesized GelMA and solubilized rat liver dECM, and 3D scaffolds were fabricated via extrusion bioprinting into rectilinear grid scaffolds. The 3D scaffold preservations was performed by immersion into two different medium (the culture DMEM media and the other FBS-DMSO cocktail) was evaluated using MTT viability assay, and albumin assay. Preserved 3D bioprinted scaffolds retained overall architecture and cell distribution in the FBS-DMSO cocktail demonstrated by the live dead assay. Together, the data demonstrate that −80°C storage can maintain the basic cell viability (∼80%) and a substantial fraction of liver-specific functionality in 3D bioprinted scaffolds but also highlight sensitivity to preservation-induced injury. These findings underscore the need for further optimization of cryoprotectant formulations and freezing protocols tailored to 3D bioprinted liver scaffolds, and provide a foundational framework for developing ready-to-use, cryopreserved 3D liver models for translational applications.
Title: Evaluating Preservation Techniques for Long-Term Stability of 3D Bioprinted Liver Scaffolds
Description:
ABSTRACT Three-dimensional (3D) bioprinted liver scaffolds offer a promising platform for drug screening, disease modelling, and regenerative medicine, yet their broader adoption is limited by the absence of robust post-fabrication preservation strategies.
This study aimed to evaluate the impact of −80°C (deep freezer) preservation and evaluate the structural integrity and hepatic functionality of GelMA–decellularized liver extra cellular matrix (dECM)–based 3D bioprinted liver scaffolds.
Bioinks were formulated using synthesized GelMA and solubilized rat liver dECM, and 3D scaffolds were fabricated via extrusion bioprinting into rectilinear grid scaffolds.
The 3D scaffold preservations was performed by immersion into two different medium (the culture DMEM media and the other FBS-DMSO cocktail) was evaluated using MTT viability assay, and albumin assay.
Preserved 3D bioprinted scaffolds retained overall architecture and cell distribution in the FBS-DMSO cocktail demonstrated by the live dead assay.
Together, the data demonstrate that −80°C storage can maintain the basic cell viability (∼80%) and a substantial fraction of liver-specific functionality in 3D bioprinted scaffolds but also highlight sensitivity to preservation-induced injury.
These findings underscore the need for further optimization of cryoprotectant formulations and freezing protocols tailored to 3D bioprinted liver scaffolds, and provide a foundational framework for developing ready-to-use, cryopreserved 3D liver models for translational applications.

Related Results

[RETRACTED] Bridport Health Reviews - Powerfully Detoxifies The Liver, Lose Liver Fat And Improve Gut Health! v1
[RETRACTED] Bridport Health Reviews - Powerfully Detoxifies The Liver, Lose Liver Fat And Improve Gut Health! v1
[RETRACTED]Product Name - Bridport Health Ingredients - Milk Thistle, Beetroot, Artichoke Extract & More. Category - Liver Support Supplement Main Benefits - Helps Protect The ...
[RETRACTED] Bridport Health Liver Support Does It Really Work v1
[RETRACTED] Bridport Health Liver Support Does It Really Work v1
[RETRACTED]Depiction • Where to Get Bottle Online –Click Here • Item Name -Bridport Health Liver • Aftereffects - No Major Side Effects • Classification - Health • Accessibility -O...
Invited Presentation: Cytocompatibility of Macroporous All-Carbon Scaffolds for Biomedical Applications
Invited Presentation: Cytocompatibility of Macroporous All-Carbon Scaffolds for Biomedical Applications
Introduction: The assembly of carbon nanomaterials (carbon nanotubes, fullerenes, or graphene) into three-dimensional (3-D) structures is necessary t...
Synthesis and Investigation into Apatite-forming Ability of Hydroxyapatite/Chitosan-based Scaffold
Synthesis and Investigation into Apatite-forming Ability of Hydroxyapatite/Chitosan-based Scaffold
In this study, porous scaffolds were fabricated using inorganic material-hydroxyapatite and chitosan for bone-tissue engineering. The combination of hydroxyapatite and chitosan may...
3D printed bone-like biopolymer composites inspired by nacre
3D printed bone-like biopolymer composites inspired by nacre
<p>Bone tissue engineering and synthetic biomineralization are two widely researched areas, the principles of which have been combined from time to time in efforts to develop...
Abstract 38: Engineered Anisotropic Scaffolds Promote the Function of Cocultured Cardiomyocytes Derived From Human Pluripotent Stem Cells
Abstract 38: Engineered Anisotropic Scaffolds Promote the Function of Cocultured Cardiomyocytes Derived From Human Pluripotent Stem Cells
Since the heart is effectively an anisotropic organ in which the cardiomyocytes (CM) are locally aligned in series, it is important to engineer cardiac tissues that promote CM alig...

Back to Top