PubMed دسترسی آزاد

4D force patterning enables spatial control of angiogenesis.

استودیوی صوتی مقاله

پخش حرفه‌ای فارسی و انگلیسی

در حال بررسی نسخه‌های صوتی ذخیره‌شده…

صوت تولیدشده با هوش مصنوعی است. برای کاربرد علمی یا درمانی، متن و منبع اصلی را بررسی کنید.
خواندن هوشمند فارسی و انگلیسی در حال آماده‌سازی صداهای مرورگر…
تنظیم صدای طبیعی و سرعت

صداهایی که در نامشان «Natural»، «Neural» یا «Online» دیده می‌شود معمولاً طبیعی‌ترند. انتخاب صدا به صداهای نصب‌شده در ویندوز و مرورگر شما بستگی دارد.

چکیده اصلی

Engineering organized microvascular networks remains a critical challenge in tissue engineering and regenerative medicine. While biochemical approaches for patterning angiogenesis via growth factor delivery have shown promise, their inability to pattern sustained growth factors with spatiotemporal control limits effectiveness. Here, we demonstrate that dynamically patterned mechanical forces enable precise spatiotemporal control over angiogenic sprouting. We developed a magnetically actuated human vessel-on-a-chip platform that integrates a perfusable endothelialized microchannel within a collagen matrix and allows noninvasive and tunable mechanical stimulation across three spatial dimensions and time (4D). Using an automated 3-axis actuator, we systematically investigated how strain magnitude, frequency, and direction modulate endothelial cell behavior and vessel morphogenesis. Dynamic mechanical stimulation at physiological strain magnitudes (5 to 15%) enhanced endothelial alignment and barrier function while promoting angiogenesis in a strain magnitude-dependent manner: lower dynamic strain (5%) maximized sprout initiation, whereas higher dynamic strain (15%) promoted elongation of sprouts. Sequential reorientation of strain direction reprogrammed sprouting trajectories along X, Y, and Z directions, generating complex sprout geometries such as L-shaped branches. RNA sequencing revealed mechanically induced transcriptional profiles distinct from unstimulated controls, characterized by upregulation of genes associated with angiogenesis, mechanotransduction, and extracellular matrix remodeling. Functional perturbation of PIEZO1 reduced strain-induced sprouting without altering barrier function, indicating that dynamic mechanical stimulation engages multiple mechanotransduction pathways to regulate angiogenesis. Collectively, these findings establish a strategy for spatiotemporally controlled angiogenesis through 4D force patterning to program vascular morphogenesis while preserving function. This approach provides a foundation for engineering hierarchically organized vascular networks for tissue regeneration.

متن کامل اصلی

نسخه دارای مجوز در منبع علمی در دسترس است.

لینک مستقیم از metadata منبع گرفته شده و در تب جدید باز می‌شود.

باز کردن متن کامل

کلیدواژه‌ها

angiogenesisbiofabricationmechanobiologytissue engineeringvasculature
در همین زیرشاخه

مقاله‌های مرتبط

PubMed2026

Controllable preparation of magnesium-hybridized PLA-PEG-PLA porous microspheres with anti-inflammatory function.

Biodegradable polylactic acid-based microspheres have been widely used in biomedical applications such as drug delivery and tissue engineering, however, most of the microspheres typically possess simple surface structures, lacking bioactivity and the ability to promote cell adhesion. Our group previously synthesized poly (L-lactic acid) magnesium-doped microspheres (PMg) with immunomodulatory and osteogenic potential. However, several …

PubMed2026

Core-shell fibrous threads loaded with VEGF plasmid polyplexes for sustained, threshold-guided gene delivery.

Precise regulation of vascular endothelial growth factor (VEGF) delivery is essential for angiogenesis-oriented tissue engineering, because excessive or poorly controlled VEGF exposure may lead to abnormal and immature vascular structures. In this study, aligned core-shell fibrous threads loaded with deoxycholic acid-modified branched polyethylenimine/plasmid encoding VEGF (bPEI1.8-DA/plasmids encoding vascular endothelial growth facto…

PubMed2026

Engineering the esophagus: advances, challenges, and translational pathways in esophageal tissue reconstruction.

Esophageal reconstruction is one of the most challenging procedures in gastrointestinal surgery. While conventional therapeutic approaches, such as gastric pull-up and intestinal interposition, can restore continuity, they often fail to replicate native physiology. This limitation frequently leads to long-term complications, including dysphagia, stricture, and reflux, which can significantly affect the patients' quality of life. Tissue…

PubMed2026

Influence of artificial intelligence on xenotransplantation and regenerative medicine on the path toward ending the organ shortage.

The purpose of this review is to summarize the most influential and conceptually significant publications from the past 2 years, including substantial 2026 publications, and to identify emerging directions likely to shape xenotransplantation and regenerative medicine in the near future. Advances in artificial intelligence (AI) now support more structured anticipation of future developments by integrating patterns across experimental, c…