Tissue biomanufacturing aims to produce lab-grown stem cell grafts and biomimetic drug testing platforms but remains limited in its ability to recapitulate native tissue mechanics. The emerging field of soft robotics aims to emulate dynamic physiological locomotion, representing an ideal approach to recapitulate physiologically complex mechanical stimuli and enhance patient-specific tissue maturation. The kneecap's femoropopliteal artery (FPA) represents a highly flexible tissue across multiple axes during blood flow, walking, standing, and crouching positions, and these complex biomechanics are implicated in the FPA's frequent presentation of peripheral artery disease. We developed a soft pneumatically actuated (SPA) cell culture platform to investigate how patient-specific FPA mechanics affect lab-grown arterial tissues. Silicone hyperelastomers were screened for flexibility and biocompatibility, then additively manufactured into SPAs using a simulation-based design workflow to mimic normal and diseased FPA extensions in radial, angular, and longitudinal dimensions. SPA culture platforms were seeded with mesenchymal stem cells, connected to a pneumatic controller, and provided with 24 h multi-axial exercise schedules to demonstrate the effect of dynamic conditioning on cell alignment, collagen production, and muscle differentiation without additional growth factors. Soft robotic bioreactors are promising platforms for recapitulating patient-, disease-, and lifestyle-specific mechanobiology for understanding disease, treatment simulations, and lab-grown tissue grafts.
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http://dx.doi.org/10.1088/1758-5090/ac63ef | DOI Listing |
Cardiovasc Diagn Ther
December 2024
GRN Hospital Weinheim, Department of Cardiology, Vascular Medicine & Pneumology, Weinheim, Germany.
Cardiovasc Diagn Ther
December 2024
Department of Vascular Surgery, University Medical Center Utrecht, Utrecht, The Netherlands.
Am J Cardiol
January 2025
Division of Cardiology, Severance Cardiovascular Hospital, Yonsei University College of Medicine, Seoul, Republic of Korea.
Endovascular treatment of femoropopliteal artery (FPA) disease with Drug-coated balloons (DCBs) may face complications such as arterial recoil, dissection, and residual stenosis. Angiography has limited accuracy for evaluating blood flow through revascularized target lesions. Thus, there is a need for post-procedure hemodynamic assessment in treated limbs.
View Article and Find Full Text PDFCatheter Cardiovasc Interv
January 2025
Department of Cardiology, Rakuwakai Otowa Hospital, Kyoto, Japan.
Background: Supera interwoven nitinol stents (IWNS) and Eluvia fluoropolymer-based drug-eluting stents (DES) were designed to improve the patency of the femoropopliteal (FP) artery; however, which type of stent yields superior outcomes in calcified FP lesions remains unclear.
Aims: To compare the safety and efficacy of Supera IWNS and Eluvia DES in severely calcified FP lesions.
Methods: This study retrospectively analyzed 257 consecutive patients who underwent endovascular therapy using either IWNS (n = 123) or DES (n = 134) for FP lesions with peripheral arterial calcium scoring system (PACSS) grade 3 or 4 severe calcification between April 2018 and December 2021 at eight cardiovascular centers in Japan.
Acta Cardiol Sin
January 2025
Department of Cardiology, Gebze State Hospital, Gebze.
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