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Lagunas, A.

Publications and source records attributed to Lagunas, A..

3 recordsLinked to original sources

BBB-on-a-chip with Integrated micro-TEER for permeability evaluation of multi-functionalized gold nanorods against Alzheimer's disease

BackgroundThe lack of predictive models that mimic the blood-brain barrier (BBB) hinders the development of effective drugs for neurodegenerative diseases. Animal models behave differently from humans, are expensive and have ethical constraints. Organ-on-a-chip (OoC) platforms offer several advantages to resembling physiological and pathological conditions in a versatile, reproducible, and animal-free manner. In addition, OoC give us the possibility to incorporate sensors to determine cell culture features such as trans-endothelial electrical resistance (TEER). Here, we developed a BBB-on-a-chip (BBB-oC) platform with a TEER measurement system in close distance to the barrier used for the first time for the evaluation of the permeability performance of GNR-PEG-Ang2/D1 for Alzheimers disease. GNR-PEG-Ang2/D1 is a therapeutic nanosystem previously developed by us consisting of gold nanorods (GNR) functionalized with polyethylene glycol (PEG), angiopep-2 peptide (Ang2) to overcome the BBB and the D1 peptide as beta amyloid fibrillation inhibitor, finally obtaining GNR-PEG-Ang2/D1 which showed to be useful for disaggregation of the amyloid in in vitro and in vivo models. In this work, we evaluated its cytotoxicity, permeability, and some indications of its impact on the brain endothelium by employing an animal-free device based on neurovascular human cells. ResultsIn this work, we fabricated a BBB-oC with human astrocytes, pericytes and endothelial cells and a TEER measuring system (TEER-BBB-oC) integrated at a micrometric distance of the endothelial barrier. The characterization displayed a neurovascular network and the expression of tight junctions in the endothelium. We produced GNR-PEG-Ang2/D1 and determined its non-cytotoxic range (0,05-0,4 nM) for plated cells included in the BBB-oC and confirmed its harmless effect at the highest concentration (0.4 nM) in the microfluidic device. The permeability assays revealed that GNR-PEG-Ang2/D1 cross the BBB and this entry is facilitated by Ang2 peptide. Parallel to the permeability analysis of GNR-PEG-Ang2/D1, an interesting behavior of the TJs expression was observed after its administration probably related to the ligands on the nanoparticle surface. ConclusionBBB-oC with TEER integrated setup was proven as a functional and throughput platform to evaluate the brain permeability performance of nanotherapeutics in a physiological environment with human cells, putting forward a viable alternative to animal experimentation.

bioengineering↗

Substrate adhesion determines migration during mesenchymal cell condensation in chondrogenesis

Effective cartilage development relies on the successful formation of mesenchymal cell condensates. Mesenchymal condensation is a prevalent morphogenetic transition, which involves the upregulation of the adhesive extracellular glycoprotein fibronectin (FN). During condensation, there is an active directional migration of cells from the surrounding loose mesenchyme towards regions of increasing matrix adherence (the condensation centers). In this study, we live imaged the first 40 h of mesenchymal condensation during chondrogenesis on nanopatterns of the cell-adhesive peptide arginine-glycine-aspartic acid (RGD), present in FN. Results show cell-substrate adhesions modulate both single-cell and collective cell migration during mesenchymal condensation. Single cell tracking analysis showed that substrate adhesion determines the migration mode, protrusion formation and the directionality of the cell movement. Cells on the more adhesive nanopatterns presented traits among amoeboid and mesenchymal modes of migration facilitating a more directional movement and reducing contact inhibition of locomotion (CIL), which allows merging and condensation. Inhibition experiments demonstrated that neural cadherin (N-Cad) is required in cell-cell interactions, enabling cells to coordinate their movement and directionality in a multicellular environment and to maintain the group cohesiveness during migration. Altogether, this contributes to create a sufficiently dynamic scenario, in which there is a balance between cell-substrate and cell-cell adhesions for condensates to grow. Our results provide a framework for the regulation of single and collective cell migration during mesenchymal condensation, through nanoscale cell-substrate adherence. Summary statementThe fine tuning of substrate adherence through nanopatterning allows control of mesenchymal cell migration and determines condensation during chondrogenesis in vitro.

biophysics↗

Substrate ligand density modulates gap junction intercellular communication during mesenchymal cell condensation

To unveil the influence of cell-matrix adhesions in the establishment of gap junction intercellular communication (GJIC) during cell condensation in chondrogenesis. Materials & MethodsPreviously developed nanopatterns of the cell adhesive ligand arginine-glycine-aspartic acid (RGD) were used as cell culture substrates to control cell adhesion at the nanoscale. We conducted in vitro chondrogenesis of mesenchymal stem cells on the nanopatterns. We evaluated cohesion and GJIC in cell condensates. ResultsMechanical stability and GJIC are enhanced by a nanopattern configuration in which 90% of the surface area presents adhesion sites separated less than 70 nm, thus providing an onset for cell signaling. ConclusionCell-matrix adhesions regulate GJIC of mesenchymal cell condensates during in vitro chondrogenesis from a threshold configuration at the nanoscale.

bioengineering↗