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-dimensional scaffolds using FDM 3D printing for cell culture applications. Develop and optimize biomimetic materials with controlled mechanical and biochemical properties. Functionalize scaffolds with
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culture and quantitative biological assays is required. Experience with 3D culture, organoids or patient-derived models, macrophages, fibroblasts, T cells, HNSCC, breast cancer, biomaterials/bioprinting
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engineering, bioengineering, biomaterials, materials science, tissue engineering, biotechnology, or a related field Hands-on experience in 3D bioprinting Experience in mammalian cell culture Experience in
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for 3 years. Responsibilities The successful candidate will: Develop, optimize and validate advanced 3D cell culture models, including spheroids, organoids and tissue-engineered constructs. Establish
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the EU Research Framework Programme? Not funded by a EU programme Is the Job related to staff position within a Research Infrastructure? No Offer Description - 3D iPSC cell culture - Differentiation
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their website at https://www.naritalab.com/ Our laboratory investigates the biology of preneoplastic cell states, with particular interest in how changes in cell functional identity and plasticity are controlled
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experiments using cancer and stromal cell models, including CRISPR/Cas9-based genetic approaches to investigate Cx43-dependent mechanisms. Establish and characterise tumour–stromal co-culture and 3D models
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and validate advanced 3D cell culture models, including spheroids, organoids and tissue-engineered constructs. Establish and apply rotational 3D culture systems such as CelVivo or comparable platforms
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, microscopy, and molecular analysis. Some experiments may require careful timing, serial sample collection, or occasional scheduling flexibility. 40% — Human cell culture, co-culture systems, and 3D skin model
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, tissue processing, microCT, 3D culture, and preclinical animal studies. • Maintain laboratory reagents, cell lines, samples, supplies, and equipment and coordinate use of shared resources across Penn and