Cost and Time Effective Lithography of Reusable Millimeter Size Bone Tissue Replicas With Sub‐15 nm Feature Size on A Biocompatible Polymer

Abstract

The ability to replicate the microenvironment of biological tissues creates unique biomedical possibilities for stem cell applications. Current fabrication methods are limited by either the control on feature size and shape, or by the throughput and size of the replicas. Here, a novel platform is reported that combines thermal scanning probe lithography (tSPL) with innovative methodologies for the low‐cost and high‐throughput nanofabrication of large area quasi‐3D bone tissue replicas with high fidelity, sub‐15 nm lateral precision, and sub‐2 nm vertical resolution. This bio‐tSPL platform features a biocompatible polymer resist that withstands multiple cell culture cycles, allowing the reuse of the replicas, further decreasing costs and fabrication times. The as‐fabricated replicas support the culture and proliferation of human induced mesenchymal stem cells, which display broad therapeutic and biomedical potential. Furthermore, it is demonstrated that bio‐tSPL can be used to nanopattern the bone tissue replicas with amine groups, for subsequent tissue‐mimetic biofunctionalization. The achieved level of time and cost‐effectiveness, as well as the cell compatibility of the replicas, make bio‐tSPL a promising platform for the production of tissue‐mimetic replicas to study stem cell‐tissue microenvironment interactions, test drugs, and ultimately harness the regenerative capacity of stem cells and tissues for biomedical applications.

Document Details

Document Type
Pub Defense Publication
Publication Date
Feb 05, 2021
Source ID
10.1002/adfm.202008662

Entities

People

  • Alessandra Zanut
  • Elisa Riedo
  • Giuseppe Maria de Peppo
  • Liyuan Xie
  • Marcus Weck
  • Martina Sládková
  • Xiangyu Liu
  • Xiaorui Zheng

Organizations

  • Army Research Office
  • National Science Foundation
  • New York Stem Cell Foundation
  • New York University
  • Office of Basic Energy Sciences
  • United States Department of Energy

Tags

Fields of Study

  • Biology

Readers

  • Applied Combinatorial Optimization and Logic Circuit Design.
  • Molecular and Cellular Biology
  • Nanoscale Plasmonic Nanotechnology

Technology Areas

  • Biotechnology