Login / Signup

A Nanoscale Shape-Discovery Framework Supporting Systematic Investigations of Shape-Dependent Biological Effects and Immunomodulation.

Wei ZhangHender LopezLuca BoselliPaolo BiginiAndré Perez-PottiZengchun XieValentina CastagnolaQi CaiCamila Pedroso SilveiraJoão M de AraújoLaura TalaminiNicolò PaniniGiuseppe RistagnoMartina Bruna ViolattoStéphanie DevineauMarco P MonopoliMario SalmonaValeria A GiannoneSandra LaraKenneth A DawsonYan Yan
Published in: ACS nano (2021)
Since it is now possible to make, in a controlled fashion, an almost unlimited variety of nanostructure shapes, it is of increasing interest to understand the forms of biological control that nanoscale shape allows. However, <i>a priori</i> rational investigation of such a vast universe of shapes appears to present intractable fundamental and practical challenges. This has limited the useful systematic investigation of their biological interactions and the development of innovative nanoscale shape-dependent therapies. Here, we introduce a concept of biologically relevant inductive nanoscale shape discovery and evaluation that is ideally suited to, and will ultimately become, a vehicle for machine learning discovery. Combining the reproducibility and tunability of microfluidic flow nanochemistry syntheses, quantitative computational shape analysis, and iterative feedback from biological responses <i>in vitro</i> and <i>in vivo</i>, we show that these challenges can be mastered, allowing shape biology to be explored within accepted scientific and biomedical research paradigms. Early applications identify significant forms of shape-induced biological and adjuvant-like immunological control.
Keyphrases
  • machine learning
  • small molecule
  • high throughput
  • atomic force microscopy
  • oxidative stress
  • computed tomography
  • high glucose
  • endothelial cells
  • big data
  • deep learning
  • stress induced
  • data analysis