Article, 2024

Building better habitats: Spatiotemporal signaling cues in 3D biointerfaces for tailored cellular functionality

Biointerphases, ISSN 1559-4106, 1934-8630, Volume 19, 4, Page 048501, 10.1116/6.0003685

Contributors

Ghorbani, Sadegh (Corresponding author) [1] [2] Sutherland, Duncan S. [3]

Affiliations

  1. [1] Stanford University
  2. [NORA names: United States; America, North; OECD];
  3. [2] Technical University of Denmark
  4. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD];
  5. [3] Aarhus University
  6. [NORA names: AU Aarhus University; University; Denmark; Europe, EU; Nordic; OECD]

Abstract

A promising research direction in the field of biological engineering is the design and functional programming of three-dimensional (3D) biointerfaces designed to support living cell functionality and growth in vitro, offering a route to precisely regulate cellular behaviors and phenotypes for addressing therapeutic challenges. While traditional two-dimensional (2D) biointerfaces have provided valuable insights, incorporating specific signaling cues into a 3D biointeractive microenvironment at the right locations and time is now recognized as crucial for accurately programming cellular decision-making and communication processes. This approach aims to engineer cell-centric microenvironments with the potential to recapitulate complex biological functions into a finite set of growing cellular organizations. Additionally, they provide insights into the hierarchical logic governing the relationship between molecular components and higher-order multicellular functionality. The functional live cell-based microenvironment engineered through such innovative biointerfaces has the potential to be used as an in vitro model system for expanding our understanding of cellular behaviors or as a therapeutic habitat where cellular functions can be reprogrammed.

Keywords

behavior, biointerfaces, biological engineering, biological functions, cell function, cellular behavior, cellular decision-making, cellular functions, cellular organization, challenges, communication, communication process, complex biological functions, components, cues, decision-making, design, direction, engineering, field, field of biological engineering, finite set, function, functional programming, growth, growth in vitro, habitat, hierarchical logic, in vitro model system, live cell function, living, location, logic, microenvironment, model system, molecular components, multicellular functions, organization, phenotype, potential, process, program, relationship, research, research directions, sets, signal, signaling cues, system, therapeutic challenge, three-dimensional, time, traditional two-dimensional (2D, two-dimensional (2D

Funders

  • Danish National Research Foundation
  • Novo Nordisk Foundation

Data Provider: Digital Science