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Mandrycky, C. J.

Publications and source records attributed to Mandrycky, C. J..

2 recordsLinked to original sources

Engineered muscle tissues with enhanced maturation enable the identification of clinically relevant rAAV capsids

Developing in vitro models that recapitulate both the structure and function of native human tissues is crucial for a better understanding of pathophysiology and for improving the reliability of preclinical studies. Here, we demonstrate that engineered muscle tissues derived from human pluripotent stem cells can serve as an in vitro platform for gene therapy. Recombinant vectors derived from the adeno-associated virus transduce engineered muscle tissues with high efficiency and in a dose-dependent manner, allowing long term assessment of transgene expression in a human cellular context. We next used this model to conduct a comparative analysis of 8 natural AAV capsids and showed that their relative efficiency depends on engineered muscle tissue maturation level. In more mature tissues subjected to uniaxial mechanical stretch, AAV9 performed better, which is reminiscent of its high clinical potential in patients with neuromuscular disorders. Finally, our model also confirmed the higher efficiency of artificial MyoAAV variants specifically developed to have an improved muscle transduction. Altogether, this work demonstrates the potential of human engineered muscle tissues in the preclinical testing of AAV vectors, paving the way for the development of personalized gene therapy platforms.

bioengineering↗

Pressure Points: Endothelial Responses to Shear Stress and Pressure in Health and Pulmonary Arterial Hypertension

BackgroundHemodynamic forces exert a profound influence on endothelial signaling and, when abnormal, contribute centrally to human vascular disease. Pulmonary arterial hypertension (PAH) is characterized by both hemodynamic derangement and pulmonary arterial endothelial cell (PAEC) dysfunction. Despite importance in disease initiation and progression, the combined effects of shear and pressure forces on PAEC biology remain incompletely understood, particularly in the context of PAH. MethodsPAECs obtained at explant from controls and patients with idiopathic PAH or congenital heart disease-associated PAH (CHD-PAH) were cultured in a custom resistor-coupled microfluidic platform and exposed to static, low (3 dyne/cm{superscript 2}), or high (20 dyne/cm{superscript 2}) shear stress under either low or elevated (60 mmHg) pressure. After 24 hours, we assessed cellular morphology and performed transcriptomic analysis via bulk RNA sequencing, incorporating analyses of PAH subtype and donor sex. ResultsMorphologically, PAECs (n=18 donors) aligned with flow under high, but not low, shear, and alignment was not significantly altered by disease state or pressure. As expected, shear stress fundamentally reorganized the PAEC transcriptome. The "dose-response" to increasing shear differed across biological pathways in six statistically significant patterns. Increasing shear led to divergence in transcription between control and PAH cells, particularly in pathways involved in immune activation, stress signaling, and vascular remodeling, with subtype differences also observed. Pressure had modest effects on transcription, with CHD-PAH PAECs notably displaying pressure-induced stress and inflammatory signaling. We identified sexual dimorphism in the endothelial shear response, including that male cells under shear enriched for proliferative and angiogenic pathways and female cells for fatty acid metabolism and stress responses. ConclusionsWe provide a systems-level overview of how shear and pressure shape PAEC transcription, revealing divergent responses across disease state, PAH subtype, and donor sex. These findings highlight the need for further investigation into mechanosensitive pathways in PAH as potential novel therapeutic targets.

bioengineering↗