Search bioRxiv⌕ Search

Biology subjects

Rodriguez-Rivera, G. J.

Publications and source records attributed to Rodriguez-Rivera, G. J..

3 recordsLinked to original sources

Engineering nanoparticles that target fibroblast activation protein in cardiac fibrosis

Cardiac fibrosis and dysfunction, hallmarks of debilitating heart disease, are driven by fibroblast activation protein alpha (FAP). The specificity of FAP to the disease creates an opportunity for directed drug delivery, as FAP delineates the fibrotic region. We leverage this vulnerability to target the fibrotic region of the heart, using anti-FAP antibody-modified nanoparticles (NPs) that encapsulate and release the highly specific FAP inhibitor, talabostat. NP crosslinking with an FAP-sensitive peptide attenuates passive release, which is then accelerated in the presence of FAP. Intravenous administration of these NPs results in reversal of established cardiac fibrosis and dysfunction in a rat model of myocardial infarction, using a talabostat dose that is 400,000-fold lower than that used in clinical trials. This innovative and clinically translatable strategy enables targeted drug delivery, overcoming limitations of systemic approaches by reducing therapeutic dose, minimizing off-target effects, and accommodating patient-specific variability in FAP expression.

bioengineering↗

Digital Light Processing 3D Printing enables High Throughput Fabrication of Human Engineered Heart Tissues for Disease Modeling

3D in vitro engineered heart tissue (EHT) models recapitulate aspects of native cardiac physiology but are often limited by scalability, cost, and reproducibility. Here, we report a simple, one-step method for rapid ([~]minutes) fabrication of molds using digital light processing (DLP)-based 3D printing that support the formation of EHTs by human induced pluripotent stem cell derived cardiomyocytes (iPSC-CMs) with high reproducibility (>95% efficiency) and varied designs (e.g., length, aspect ratio). Compared to 2D iPSC-CMs, 3D EHTs display enhanced maturity, including increased expression of {beta}-oxidation genes, higher concentrations of sarcomeric myosins, improved sarcomere density and alignment, and enrichment of cardiac pathways (e.g., upregulation of sodium channels, action potentials, contraction). The technology is applied to model pathological cardiac hypertrophy in vitro, using either (i) acute adrenergic agonism or (ii) chronic culture within stiff hydrogel molds. Treated EHTs exhibit increased levels of pathology-associated gene expression and activation of signaling cascades involved in pathological remodeling compared to untreated controls or treated 2D iPSC-CMs. Thus, our method results in robust yet simpler, cheaper, and faster EHTs to study cardiac disease.

bioengineering↗

Design of PEG-based hydrogels as soft ionic conductors

Conductive hydrogels have gained interest in biomedical applications and soft electronics. To tackle the challenge of ionic hydrogels falling short of desired mechanical properties in previous studies, our investigation aimed to understand the pivotal structural factors that impact the conductivity and mechanical behavior of polyethylene glycol (PEG)-based hydrogels with ionic conductivity. Polyether urethane diacrylamide (PEUDAm), a functionalized long-chain macromer based on PEG, was used to synthesize hydrogels with ionic conductivity conferred by incorporating ions into the liquid phase of hydrogel. The impact of salt concentration, water content, temperature, and gel formation on both mechanical properties and conductivity was characterized to establish parameters for tuning hydrogel properties. To further expand the range of conductivity available in these ionic hydrogels, 2-acrylamido-2-methyl-1-propanesulfonic acid (AMPS) was incorporated as a single copolymer network or double network configuration. As expected, conductivity in these ionic gels was primarily driven by ion diffusivity and charge density, which was dependent on hydrogel network formation and swelling. Copolymer network structure had minimal effect on the conductivity which was primarily driven by counter-ion equilibrium; however, the mechanical properties and equilibrium swelling was strongly dependent on network structure. The structure-property relationships elucidated here enables the rationale design of this new double network hydrogel to achieve target properties for a broad range of applications.

bioengineering↗