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Femtosecond laser induced nano-textured micropatterning to regulate cell functions on implanted biomaterials

  • Youngmin Seo
  • , Saeromi Kim
  • , Hyun Soo Lee
  • , Jaeho Park
  • , Kyungwoo Lee
  • , Indong Jun
  • , Hyunseon Seo
  • , Young Jin Kim
  • , Youngsik Yoo
  • , Byoung Chan Choi
  • , Hyun Kwang Seok
  • , Yu Chan Kim
  • , Myoung Ryul Ok
  • , Jonghoon Choi
  • , Choun Ki Joo
  • , Hojeong Jeon
  • Korea Institute of Science and Technology
  • The Catholic University of Korea, College of Medicine
  • Catholic Univ. of Korea Coll. Med.
  • Chung-Ang University
  • Korea Institute of Science and Technology Europe Forschungsgesellschaft mbH
  • National Institute of Mathematical and Sciences
  • AYECLUS
  • University of Science and Technology UST
  • CK St. Mary's Eye Center

Research output: Contribution to journalArticlepeer-review

29 Scopus citations

Abstract

Posterior capsular opacification (PCO) is the most common complication of cataract surgery. PCO is due to the proliferation, migration, and epithelial-to-mesenchymal transition of the residual lens epithelial cells (LECs) within the lens capsule. As surface topography influences cellular response, we investigated the effect of modulating the dimensions of periodic nano-textured patterns on the surface of an intraocular lens material to regulate lens epithelial cell functions such as cell adhesion, migration, orientation, and proliferation. Patterned poly(HEMA) samples were prepared by a femtosecond laser microfabrication, and the behaviors of human B-3 LECs were observed on groove/ridge patterns with widths varying from 5 to 40 µm. In the presence of ridge and groove patterns, the adherent cells elongated along the direction of the patterns, and f-actin of the cells was spread to a lesser extent on the nano-textured groove surfaces. Both single and collective cell migrations were significantly inhibited in the perpendicular direction of the patterns on the nano-textured micro-patterned samples. We also fabricated the patterns on the curved surface of a commercially available intraocular lens for in vivo evaluation. In vivo results showed that a patterned IOL could help suppress the progression of PCO by inhibiting cell migration from the edge to the center of the IOL. Our reports demonstrate that nano- and microscale topographical patterns on a biomaterial surface can regulate cellular behavior when it is implanted into animals.

Original languageEnglish
Pages (from-to)138-148
Number of pages11
JournalActa Biomaterialia
Volume116
DOIs
StatePublished - 15 Oct 2020

Bibliographical note

Publisher Copyright:
© 2020

Keywords

  • Cell migration
  • Femtosecond laser
  • Micropattern
  • Nano-texturing
  • Posterior capsular opacification

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