Enhanced Delivery of F−, Ca2+, K+, and Na+ Ions into Enamel by Electrokinetic Flows

Author:

Peng C.1ORCID,de Sousa F.B.2ORCID,Gan H.Y.3,Kwon H.J.1,Park S.4,Kilpatrick-Liverman L.5,Wang W.5,Lavender S.5,Pilch S.5,Han J.167

Affiliation:

1. Research Laboratory of Electronics, Massachusetts Institute of Technology, Cambridge, MA, USA

2. Department of Morphology, Health Sciences Center, Fereral University of Paraiba, Joao Pessoa, Cidade Universitaria, Paraiba, Brazil

3. Engineering Cluster, Singapore Institute of Technology, Singapore

4. Department of Restorative Dentistry and Biomaterials Sciences, Harvard School of Dental Medicine, Boston, MA, USA

5. Colgate-Palmolive Technology Center, Piscataway, NJ, USA

6. Department of Electric Engineering and Computer Science, Massachusetts Institute of Technology, Cambridge, MA, USA

7. Department of Biological Engineering, Massachusetts Institute of Technology, Cambridge, MA, USA

Abstract

As the outermost layer of the tooth crown, dental enamel is the most mineralized tissue in mammals, consisting of hydroxyapatite crystallites separated by long and narrow nanochannels. A major challenge in dentistry is how various molecules can be infiltrated into these nanopores in an efficient and controlled way. Here we show a robust method to transport various ions of interest, such as fluoride (F), potassium (K+), calcium (Ca++), and sodium (Na+), into these nanopores by electrokinetic flows. It is verified by fluorescence microscopy, laser-scanning confocal microscopy, mass spectrometry, and ion selective electrode technique. Different ions are demonstrated to infiltrate through the entire depth of the enamel layer (~1 mm), which is significantly enhanced penetration compared with diffusion-based infiltration. Meanwhile, transport depth and speed can be controlled by infiltration time and applied voltage. This is the first demonstration of reliably delivering both anions and cations into the enamel nanopores. This technique opens opportunities in caries prevention, remineralization, tooth whitening, and nanomedicine delivery in clinical dentistry, as well as other delivery challenges into various biomaterials such as bones.

Publisher

SAGE Publications

Subject

General Dentistry

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