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Biology subjects

Skylar-Scott, M. A.

Publications and source records attributed to Skylar-Scott, M. A..

3 recordsLinked to original sources

Photopatterned Sacrificial Vascular Architectures for Large Tissue-Scale Oxygenation

The engineering of thick, metabolically active tissues is constrained by the lack of scalable methods to create perfusable vasculature. This hinders effective metabolite transport in large tissue volumes, posing a critical barrier for regenerative tissue applications. In this study, we introduce photopatterned Channel Architectures with Sacrificial Templates (pCAST), an additive manufacturing strategy for generating three dimensional (3D), interconnected vascular networks with precisely defined negative space. Water-soluble sacrificial templates were fabricated using scalable Continuous Liquid Interface Production (CLIP), embedded within tissue constructs, and flushed away to yield 50 {micro}m perfusable channels spanning centimeter-scale tissue constructs. We then apply experimental oxygen mapping and viability analysis to pCAST constructs to build finite-element models that predict patterns of oxygen availability and tissue survival are governed by the balance between metabolic demand and vascular architecture, consistent with reaction-diffusion theory. This computational framework quantitatively predicts oxygen distributions and viability boundaries across vascular geometries and is validated experimentally. Together, these results establish pCAST as a scalable design framework linking vascular architecture, perfusion, and metabolic support for engineering large, 3D perfused tissue constructs. SignificanceThe ability to engineer thick, living tissues is limited by poor oxygen and nutrient delivery, which causes cell death before tissues can function or integrate with the body. This work addresses that fundamental barrier by introducing photopatterned Channel Architecture with Sacrificial Templates (pCAST), a scalable manufacturing strategy that creates precisely defined, perfusable vascular networks inside 3D tissues. By combining high-resolution 3D printing, sacrificial templating, and quantitative oxygen mapping, this research establishes design rules that link vascular geometry, perfusion, and tissue viability. These insights provide a general framework for building large, metabolically active tissues, with direct relevance to cardiac patches and other regenerative medicine applications.

bioengineering↗

A human arteriovenous differentiation roadmap reveals vein developmental mechanisms and vascular effects of viruses

Extracellular signals and cell-fate trajectories during vein development remain elusive, despite trailblazing insights into artery development. Here we exploit human pluripotent stem cell differentiation and mouse embryology to present a model that answers longstanding questions: vein endothelial cell (EC) differentiation unfolds in two steps driven by opposing extracellular signals. First, VEGF differentiates mesoderm into "primed" ECs, newly-defined progenitors that co-express certain arterial (SOX17) and venous (APLNR) markers. Second, primed ECs execute vein differentiation upon VEGF/ERK inhibition; however, upon VEGF activation they can instead form artery ECs. The arteriovenous plasticity of primed ECs was supported by intersectional lineage tracing. Future venous genes including NR2F2 harbor poised chromatin in primed ECs, but are only transcribed upon VEGF/ERK inhibition. SOXF transcription factors, including SOX17, confer primed ECs with vein differentiation competence. Collectively, this two-step vein differentiation model--entailing primed EC intermediates and VEGF/ERK inhibition to trigger vein differentiation--has implications for VEGF-modulating therapies.

developmental biology↗

A low-cost, open-source 3D printer for multimaterial and high-throughput direct ink writing of soft and living materials

Direct ink writing is a 3D printing method that is compatible with a wide range of structural, elastomeric, electronic, and living materials, and it continues to expand its uses into physics, engineering, and biology laboratories. However, the large footprint, closed hardware and software ecosystems, and expense of commercial systems often hamper widespread adoption. Here, we present a compact, simple-to-build, low-cost, multimaterial, and high-throughput direct ink writing 3D printer platform with detailed assembly files and instructions provided freely online. In contrast to existing low-cost 3D printers and bioprinters, which typically modify off-the-shelf plastic 3D printers, this system is built from scratch, offering a lower cost and full customizability. Despite its low cost, we demonstrate advanced active mixing and multimaterial multinozzle 3D (MM3D) printing methods, which previously have relied on expensive and custom motion control platforms. We finally introduce embedded multinozzle and 3D gradient nozzle designs that offer high throughput and graded 3D parts. This powerful, easy-to-build, and customizable printing platform can help stimulate a vibrant biomaker community of engineers, biologists, and educators.

bioengineering↗