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Enhancement of Bone Regeneration Through the Converse Piezoelectric Effect, A Novel Approach for Applying Mechanical Stimulation

期刊

BIOELECTRICITY
卷 3, 期 4, 页码 255-271

出版社

MARY ANN LIEBERT, INC
DOI: 10.1089/bioe.2021.0019

关键词

converse piezoelectric effect; mechanical stimulation; bone regeneration

资金

  1. Comparative Medicine Institute (CMI) through the National Institute of Health [T34GM131947]
  2. CMI's Summer Interdisciplinary Research Initiative (SIRI)
  3. Ross M. Lampe Chair of Biomedical Engineering

向作者/读者索取更多资源

Serious bone injuries have detrimental effects on patients' lives, leading to limitations in working ability and high costs. Orthopedic implants are used to aid in healing, but the challenges of replicating the complex physiological properties of biological bone have led to research on the potential of the converse piezoelectric effect to enhance bone regeneration.
Serious bone injuries have devastating effects on the lives of patients including limiting working ability and high cost. Orthopedic implants can aid in healing injuries to an extent that exceeds the natural regenerative capabilities of bone to repair fractures or large bone defects. Autografts and allografts are the standard implants used, but disadvantages such as donor site complications, a limited quantity of transplantable bone, and high costs have led to an increased demand for synthetic bone graft substitutes. However, replicating the complex physiological properties of biological bone, much less recapitulating its complex tissue functions, is challenging. Extensive efforts to design biocompatible implants that mimic the natural healing processes in bone have led to the investigation of piezoelectric smart materials because the bone has natural piezoelectric properties. Piezoelectric materials facilitate bone regeneration either by accumulating electric charge in response to mechanical stress, which mimics bioelectric signals through the direct piezoelectric effect or by providing mechanical stimulation in response to electrical stimulation through the converse piezoelectric effect. Although both effects are beneficial, the converse piezoelectric effect can address bone atrophy from stress shielding and immobility by improving the mechanical response of a healing defect. Mechanical stimulation has a positive impact on bone regeneration by activating cellular pathways that increase bone formation and decrease bone resorption. This review will highlight the potential of the converse piezoelectric effect to enhance bone regeneration by discussing the activation of beneficial cellular pathways, the properties of piezoelectric biomaterials, and the potential for the more effective administration of the converse piezoelectric effect using wireless control.

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