Synthesis of Highly Biocompatible and Temperature-Responsive Physical Gels for Cryopreservation and 3D Cell Culture.
Masanori NagaoJayeeta SenguptaDiana Diaz-DussanMadeleine AdamMeng WuJason AckerRobert BenKazuhiko IshiharaHongbo ZengYoshiko MiuraRavin NarainPublished in: ACS applied bio materials (2018)
There is considerable interest in the cryopreservation in 3D cell culture, as structurally preserving intact cells and tissues is critical in utilizing these systems to promote cell differentiation and tissue organization. Temperature-responsive physical gels and zwitterionic polymers are useful materials as 3D scaffolds for cell culture which may also provide cryoprotection to the composite cells. Nevertheless, there has been a lack of relevant data for polymer systems that have both of these properties. In this study, highly biocompatible triblock copolymers were examined for their effectiveness both as gelators and as cryo-protectants. The triblock copolymers were synthesized with 2-methacryloyloxyethyl phosphorylcholine (MPC) and di(ethylene glycol) methyl ether methacrylate (DEGMA) via atom transfer radical polymerization (PDEGMA 113 - b -PMPC 243 - b -PDEGMA 113 ). ABA triblock copolymers composed of hydrophilic "B" block and temperature responsive "A" block could form physical gels above their lower critical solution temperatures (LCST). PDEGMA 113 - b -PMPC 243 - b -PDEGMA 113 triblock copolymer exhibited the LCST derived from DEGMA and assembled in micellar structures forming physical gels above the LCST. The mechanical properties of the physical gels were evaluated by rheological tests, and the low toxicity of PDEGMA 113 - b -PMPC 243 - b -PDEGMA 113 was confirmed by MTT assay. Interestingly, the triblock copolymer showed ice recrystallization inhibition (IRI) activity which was determined to be suitable for the cryopreservation of several cell lines. In vitro studies were conducted to demonstrate the cryo-protectant properties and the formation of two and three-dimensional (2D/3D) cell culture scaffolds with high biocompatibility. This stimuli-responsive gelator polymers can therefore be useful for cryopreservation of different cells models, and a promising material for 3D cell culture.
Keyphrases
- induced apoptosis
- physical activity
- mental health
- cell cycle arrest
- cancer therapy
- high resolution
- oxidative stress
- drug release
- gene expression
- endoplasmic reticulum stress
- machine learning
- transcription factor
- cell death
- pi k akt
- molecular dynamics
- escherichia coli
- mass spectrometry
- electronic health record
- liquid chromatography
- pseudomonas aeruginosa
- artificial intelligence
- data analysis
- biofilm formation