Shape Memory Behaviors of 3D Printed Bovine Lactoferrin-PEGDA Hydrogels
| dc.contributor.advisor | Nelson, Alshakim | |
| dc.contributor.author | Jung, Jimin | |
| dc.date.accessioned | 2026-09-16T18:23:14Z | |
| dc.date.issued | 2026-09-16 | |
| dc.date.submitted | 2026 | |
| dc.description | Thesis (Master's)--University of Washington, 2026 | |
| dc.description.abstract | Shape memory hydrogels have emerged as a compelling class of stimuli-responsive soft matter, offering geometric reconfigurability for application in soft robotics, bioelectronics, and tissue engineering. While protein-based hydrogels represent a biologically derived and functionally rich platform for shape memory systems, globular proteins in this context represents an under-explored class of proteins. Here, we report the use of bovine lactoferrin (bLF), an iron-binding globular glycoprotein from bovine milk, as a structural building block for a photo-curable bLF-poly(ethylene glycol) diacrylate (PEGDA) resin compatible with digital light processing (DLP) based 3D printing. The printed hydrogels retained iron-binding functionality after photocrosslinking, suggesting that bLF’s native conformational properties were largely preserved within the crosslinked network. The mechanical properties of the printed hydrogels were highly stimuli-dependent. Relative to the as-printed state in Phosphate-Buffered Saline (PBS, E = 43.9 kPa), iron supplementation nearly doubled the Young’s modulus to 80.1 kPa, whereas immersion in acidic solution (pH 2) softened the network, reducing the modulus to 31.0 kPa. A broader screen across metal ions revealed that this mechanical tunability is a general feature of bLF's metal-binding functionality: hydrogels equilibrated in solutions of iron, magnesium, calcium, zinc, copper, cobalt, and nickel exhibited Young's moduli spanning 16.8 to 65.8 kPa, indicating that metal identity is itself a design parameter. The pH-responsive mechanical response was further utilized during a shape memory cycle, where immersion in pH 2 solution enabled programmed deformation of the construct, which was then restored to 90% of its original geometry after immersion in phosphate-buffered saline (pH 7.4). Coupling this iron-binding functionality with a bilayer architecture enabled iron-triggered directional actuation, providing a second, mechanistically distinct route to programmed shape change. This work establishes bLF as a feedstock for photocrosslinkable 3D printed shape memory hydrogels, demonstrating that its unique metal-binding and pH-responsive conformational properties can be harnessed as a molecularly encoded switch in soft matter systems. | |
| dc.embargo.lift | 2027-09-16T18:23:14Z | |
| dc.embargo.terms | Delay release for 1 year -- then make Open Access | |
| dc.format.mimetype | application/pdf | |
| dc.identifier.other | Jung_washington_0250O_30146.pdf | |
| dc.identifier.uri | https://hdl.handle.net/1773/57726 | |
| dc.language.iso | en_US | |
| dc.rights | none | |
| dc.subject | Lactoferrin | |
| dc.subject | Polymer | |
| dc.subject | Shape Memory Hydrogels | |
| dc.subject | Shape Memory Materials | |
| dc.subject | Soft Robotics | |
| dc.subject | Chemistry | |
| dc.subject.other | Chemistry | |
| dc.title | Shape Memory Behaviors of 3D Printed Bovine Lactoferrin-PEGDA Hydrogels | |
| dc.type | Thesis |
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