Search bioRxiv⌕ Search

Biology subjects

Alegret, N.

Publications and source records attributed to Alegret, N..

3 recordsLinked to original sources

Tunable neuronal microenvironments drive distinct functional phenotypes in human iPSCs-derived dopaminergic neurons

Neuronal heterogeneity is a defining feature of complex neural circuits, where local differences in firing patterns, activity levels, and temporal dynamics shape information processing and emergent network activity. In adult neurons, this heterogeneity arises from a variety of known and unknown factors including the extracellular environment. Although neurons have been cultured on three-dimensional substrates, the effect of the microenvironments on their firing activity remains poorly understood. Here, we have synthesized two chitosan hydrogel systems seeded with human iPSCs-derived dopaminergic neurons as tunable platforms to control neuronal microenvironments. Both systems were formulated with the ability to incorporate carbon nanotubes (CNT), thus promoting neural interfacing. Calcium imaging combined with computational single-cell analysis demonstrated that supramolecular organization, hydration state, and general physicochemical properties differentially bias neuronal firing dynamics and synchrony leading to the emergence of distinct activity phenotypes despite identical cellular origin. These activity profiles were clustered through K-means and assigned to specific phenotypes including bursting irregular neurons, regular network contributors, or less active/quiescent neurons. Furthermore, CNTs incorporation enhanced local hydrogel compaction, resulting in unique active neuronal phenotypes, highlighting the potential of CNTs to modulate local cellular microenvironments. These findings establish tunable biomaterials as microenvironment contenders for controlling neuronal network state while giving insights on the interplay of different cues in promoting neuronal heterogeneity and functional phenotype relevant to neurodevelopment, neurodegeneration, and disease modelling.

neuroscience↗

Effect of the functional environment on the cardiac differentiation of iPSC

Pristine carbon nanotubes (CNTs) have proven to be excellent supports for cardiac cell growth, survival and maturation, as well to improve cellular function, enhance spontaneous beating activity and benefit their cellular structure. Due to the large quantity of cardiomyocytes that have to be replaced for myocardial regeneration, iPSCs are the most promising candidates for robust generation of cardiomyocytes in vivo/vitro. Herein, iPSCs are cultured and differentiated into cardiomyocytes on functionalized carbon nanotubes (fCNTs). For this purpose, a first optimization of the type of plate and the number of iPSCs suitable for the passaging is performed. Thus, 5{middle dot}105 cells per cm2 are cultured in 24-well and 8-well plates. After 19-days of differentiation and maturation, calcium imaging was done to analyze the spontaneous beating behavior by means of beat frequency and amplitude, immunofluorescence was done to observe evaluate the degree of maturation by staining the sarcomere and the cell nucleus. A set of diverse functionalized CNTs were also tested: pristine CNT, ox-CNT, CNT-COOH, CNT-NH2, CNT-NO2 and CNT-SO3. Calcium analysis showed that all but the nitro-functionalization were beating, with acid-and oxygen derivative CNTs producing an increase in frequency with respect to control, while amino-functional groups decrease it. This suggests that the beating and contractile behavior of cardiomyocyte can be modulated according to the cardiac issue to be faced. In addition, CNT-SO3 produces a striated and elongated sarcomere, proper of the real tissue.

bioengineering↗

Effect of carbon nanotubes in electroactive neuron and cardiomyocyte differentiation on conductive 3D printed scaffolds

Carbon nanotubes (CNTs) have shown great potential in tissue engineering applications due to their unique properties, namely by improving electrical and mechanical properties of scaffolds. In recent years the use of 3D patterns, specially honeycomb or hexagonal patterns, to improve cell culture environment has also emerged in the tissue engineering field. Here we design HEMA-PEGDA based 3D printable scaffolds with and without CNTs in order to study the effect of both surface pattern and CNT incorporation on electroactive hiPSC-derived neuron and cardiomyocyte differentiation. Firstly, we tested scaffold biocompatibility with the SH-SY5Y neuroblastoma model, observing great viability and scaffold coverage for the CNT-containing formulation. As for the hiPSC differentiation models, we employed calcium signalling, immunocytochemistry and RT-qPCR techniques for cellular characterization. We found that CNTs and surface topography greatly affect neuronal culture maturation, by improving neuronal marker expression, calcium transient amplitude and axonal network maturation, while cardiomyocyte culture was mainly impacted by CNT presence independently of surface structure, although these conditions were not enough to reach full maturity. Overall, this study provided insights into the impact of surface structure and composition in electroactive cell differentiation and maturation.

bioengineering↗