Project Details
Project Description
Mechanical stimulation plays a critical role in regulating stem cell fate. Nanostructure-mediated mechanical cues can precisely stimulate stem cells, but predicting their impact on stem cell differentiation is challenging. This project aims to engineer nanostructures to regulate stem cell fate and gain a fundamental understanding of the mechanical properties that affect cell function. The expected outcomes and benefits of this project include a new fundamental understanding of the effect of mechanical properties on cell function, novel insights into the regulation of stem cell fate, and the development of a new class of roughness-tunable materials suitable for use in tissue engineering and pharmaceutical applications.
| Status | Active |
|---|---|
| Effective start/end date | 18/06/24 → 17/06/27 |
Equipment
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FlowCore (FLOW)
Fryga, A. (Manager)
Faculty of Medicine Nursing and Health Sciences Research PlatformsFacility/equipment: Facility
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HMSTrust Analytical Laboratory (HMST)
Rudd, D. (Manager) & McIntosh, M. (Other)
Drug Delivery Disposition & DynamicsFacility/equipment: Facility
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Monash Micro Imaging (MMI)
Firth, S. (Manager), Fulcher, A. (Operator), Chernyavskiy, O. (Operator), Rzeszutek, M. (Other), Potter, D. (Manager), Hilsenstein, V. (Operator), Nunez-Iglesias, J. (Other), Cody, S. (Manager), Carmichael, I. (Operator), Kouskousis, B. (Other), Creed, S. (Manager) & Ballerin, G. (Operator)
Faculty of Medicine Nursing and Health Sciences Research PlatformsFacility/equipment: Facility