Biomimetic Structural Protein Based Magnetic Responsive Scaffold for Enhancing Bone Regeneration by Physical Stimulation on Intracellular Calcium Homeostasis

Author:

Liang Hai‐Feng12,Zou Yan‐Pei1,Hu An‐Nan1,Wang Ben1,Li Juan1,Huang Lei1,Chen Wei‐Sin1,Su Di‐Han1,Xiao Lan34,Xiao Yin345,Ma Yi‐Qun1,Li Xi‐Lei1,Jiang Li‐Bo1ORCID,Dong Jian126

Affiliation:

1. Department of Orthopaedic Surgery, Zhongshan Hospital Fudan University Shanghai 200032 China

2. Department of Orthopaedic Surgery Shanghai Geriatric Medical Center Shanghai 201104 China

3. School of Mechanical, Medical and Process Engineering, Centre for Biomedical Technologies Queensland University of Technology Brisbane 4059 Australia

4. Australia‐China Centre for Tissue Engineering and Regenerative Medicine Queensland University of Technology Brisbane 4059 Australia

5. School of Medicine and Dentistry & Menzies Health Institute Queensland Griffith University Gold Coast 4222 Australia

6. Department of Orthopaedic Surgery Zhongshan Hospital Wusong Branch Fudan University Shanghai 200940 China

Abstract

AbstractThe bone matrix has distinct architecture and biochemistry which present a barrier to synthesizing bone‐mimetic regenerative scaffolds. To mimic the natural structures and components of bone, biomimetic structural decellularized extracellular matrix (ECM)/regenerated silk fibroin (RSF) scaffolds incorporated with magnetic nanoparticles (MNP) are prepared using a facile synthetic methodology. The ECM/RSF/MNP scaffold is a hierarchically organized and interconnected porous structure with silk fibroin twined on the collagen nanofibers. The scaffold demonstrates saturation magnetization due to the presence of MNP, along with good cytocompatibility. Moreover, the β‐sheet crystalline domain of RSF and the chelated MNP could mimic the deposition of hydroxyapatite and enhance compressive modulus of the scaffold by ≈20%. The results indicate that an external static magnetic field (SMF) with a magnetic responsive scaffold effectively promotes cell migration, osteogenic differentiation, neogenesis of endotheliocytes in vitro, and new bone formation in a critical‐size femur defect rat model. RNA sequencing reveals that the molecular mechanisms underlying this osteogenic effect involve calsequestrin‐2‐mediated Ca2+ release from the endoplasmic reticulum to activate Ca2+/calmodulin/calmodulin‐dependent kinase II signaling axis. Collectively, bionic magnetic scaffolds with SMF stimulation provide a potent strategy for bone regeneration through internal structural cues, biochemical composition, and external physical stimulation on intracellular Ca2+ homeostasis.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Shanghai Municipality

Publisher

Wiley

Subject

Pharmaceutical Science,Biomedical Engineering,Biomaterials

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