Rapid and robust optogenetic control of gene expression in Drosophila

Dev Cell. 2021 Dec 20;56(24):3393-3404.e7. doi: 10.1016/j.devcel.2021.11.016. Epub 2021 Dec 7.

Abstract

Deciphering gene function requires the ability to control gene expression in space and time. Binary systems such as the Gal4/UAS provide a powerful means to modulate gene expression and to induce loss or gain of function. This is best exemplified in Drosophila, where the Gal4/UAS system has been critical to discover conserved mechanisms in development, physiology, neurobiology, and metabolism, to cite a few. Here we describe a transgenic light-inducible Gal4/UAS system (ShineGal4/UAS) based on Magnet photoswitches. We show that it allows efficient, rapid, and robust activation of UAS-driven transgenes in different tissues and at various developmental stages in Drosophila. Furthermore, we illustrate how ShineGal4 enables the generation of gain and loss-of-function phenotypes at animal, organ, and cellular levels. Thanks to the large repertoire of UAS-driven transgenes, ShineGal4 enriches the Drosophila genetic toolkit by allowing in vivo control of gene expression with high temporal and spatial resolutions.

Keywords: Drosophila; Gal4/UAS; gene expression; optogenetics.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Animals
  • Body Patterning / genetics
  • Body Patterning / radiation effects
  • Drosophila melanogaster / genetics*
  • Drosophila melanogaster / radiation effects
  • Gene Expression Regulation, Developmental* / radiation effects
  • Light
  • Optogenetics*
  • Organ Specificity / genetics
  • Organ Specificity / radiation effects
  • Pupa / genetics
  • Pupa / radiation effects
  • Time Factors