Level D· Scientific groundwork from lab and animal studiesAnimal StudyEurope PMCOpen access

Vibration or Stretch? Distinct Mechanoelectrical Signatures Govern Osteogenic Programming in PVDF

Ribeiro S., Ribeiro C., Castro N., Correia V., Irastorza I., Silván U.

Animal Study on Face & Skin, published in ACS Appl Mater Interfaces (2026) — summary generated from the PubMed abstract.

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Level D· Scientific groundwork from lab and animal studiesEvidence level of this study

Evidence from laboratory and animal studies provides groundwork for understanding mechanisms and potential before human studies continue.

  • Level A · Stronger Clinical Evidence
  • Level B · Emerging clinical evidence with positive signals
  • Level C · Early human research exploring benefits
  • Level D · Scientific groundwork from lab and animal studies
  • Emerging · Emerging topic under active research
Read the A–D evidence level guide

This page is generated from the PubMed record. The Thai description is an automated summary of bibliographic fields and the abstract, not a full translation, and is not medical advice.

Study type
Animal Study
Journal
ACS Appl Mater Interfaces (2026)
Reported sample size
—
Source database
Europe PMC
PMID
41660688
PMCID
PMC12926946
DOI
10.1021/acsami.5c23327
Citations
1

Abstract (original English)

A promising method for directing cell behavior and tissue regeneration is the use of smart materials that can transform physical inputs into bioelectrical signals. In this study, the mechanoelectrical control of preosteoblast activity was investigated using a piezoelectric smart biointerface based on positively poled poly(vinylidene fluoride) (PVDF). Distinct mechanical regimes, including vibrational and cyclic stretching, were applied through customized bioreactors, enabling controlled mechanoelectrical inputs ranging from 63 to 227 μVpp mm -2 . The biological response of MC3T3-E1 cells was evaluated in terms of metabolic activity, intracellular calcium signaling, alkaline phosphatase (ALP) activity, matrix mineralization, and gene expression (RUNX2, ALP, OPN, and OCN). The results demonstrated that stretching stimulation combined with higher mechano electric inputs (113-227 μVpp mm -2 ) enhanced calcium influx and enhanced osteogenic differentiation, while lower impulses (∼63 μVpp mm -2 ) under vibrational circumstances increased cell proliferation. These findings highlight the intensity- and mode-dependent nature of mechanoelectrical signaling in regulating osteogenic commitment. All things considered, this study shows how piezoelectric smart materials can be used as bioresponsive platforms to precisely control cell proliferation and differentiation, creating avenues for bon

What this study does not prove

  • • This study does not prove SVF is an approved treatment or a replacement for standard care.
  • • This is preclinical work; animal or laboratory results cannot be applied to humans.

Evidence level

Evidence from laboratory and animal studies provides groundwork for understanding mechanisms and potential before human studies continue.

How we grade evidence
Cell LineOsteoblastsAnimalsMicePolyvinylsFluorocarbon PolymersAlkaline PhosphataseTissue EngineeringCell DifferentiationCell Proliferation

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