Results 231 to 240 of about 200,520 (286)
Coagulative granular hydrogels are composed of packed thrombin‐functionalized microgels that catalyze the conversion of fibrinogen into a secondary fibrin network, filling the interstitial voids. This bio‐inspired approach stabilizes the biomaterial to match the robustness of bulk hydrogels without compromising injectability, mimicking the initial ...
Zhipeng Deng +16 more
wiley +1 more source
Supramolecular helicity dependent osteogenesis and angiogenesis crosstalk of periodontal ligament stem cell. [PDF]
Deng Z +8 more
europepmc +1 more source
Spot the Difference: Function versus Toxicity in Amyloid Fibrils
Sabine M. Ulamec, Sheena E. Radford
openalex +2 more sources
Bioprinting Organs—Science or Fiction?—A Review From Students to Students
Bioprinting artificial organs has the potential to revolutionize the medical field. This is a comprehensive review of the bioprinting workflow delving into the latest advancements in bioinks, materials and bioprinting techniques, exploring the critical stages of tissue maturation and functionality.
Nicoletta Murenu +18 more
wiley +1 more source
Structure of ATTRv-F64S fibrils isolated from skin tissue of a living patient. [PDF]
Yu J +7 more
europepmc +1 more source
Papain‐gel degrades intact nonmineralized type I collagen fibrils
Luiz E. Bertassoni, Grayson W. Marshall
openalex +2 more sources
Computational Modeling Meets 3D Bioprinting: Emerging Synergies in Cardiovascular Disease Modeling
Emerging advances in three‐dimensional bioprinting and computational modeling are reshaping cardiovascular (CV) research by enabling more realistic, patient‐specific tissue platforms. This review surveys cutting‐edge approaches that merge biomimetic CV constructs with computational simulations to overcome the limitations of traditional models, improve ...
Tanmay Mukherjee +7 more
wiley +1 more source
Tunable Interference Colors in Nanofibril-Crystal Composite Films via Integrated Salt-Assisted Assembly. [PDF]
Chen S +6 more
europepmc +1 more source
Aqueous Two‐Phase Bioinks for Discrete Packing and Compartmentalization of 3D Bioprinted Cells
Aqueous two‐phase systems (ATPS) enable the formation of biomimetic interfaces crucial for tissue engineering. However, clinical translation remains limited by the challenge of precisely controlling cellular compartmentalization. Here, we developed ATPS biomaterial inks for 3D bioprinting allowing tuneable droplet formation via NaCl modulation.
Martina Marcotulli +14 more
wiley +1 more source

