Monitoring Intracellular IP6 with a Genetically Encoded Fluorescence Biosensor

ACS Sens. 2023 Dec 22;8(12):4484-4493. doi: 10.1021/acssensors.3c00268. Epub 2023 Nov 21.

Abstract

Inositol hexakisphosphate (IP6), a naturally occurring metabolite of inositol with specific functions in different organelles or tissues, participates in numerous physiological processes and plays a key role in mammalian metabolic regulation. However, current IP6 detection methods, i.e., high-performance liquid chromatography and gel electrophoresis, require sample destruction and lack spatiotemporal resolution. Here, we construct and characterize a genetically encoded fluorescence biosensor named HIPSer that enables ratiometric quantitative IP6 detection in HEK293T cells and subcellular compartments. We demonstrate that HIPSer has a high sensitivity and relative selectivity for IP6 in vitro. We also provide proof-of-concept evidence that HIPSer can monitor IP6 levels in real time in HEK293T cells and can be targeted for IP6 detection in the nucleus of HEK293T cells. Moreover, HIPSer could also detect changes in IP6 content induced by chemical inhibition of IP6-metabolizing enzymes in HEK293T cells. Thus, HIPSer achieves spatiotemporally precise detection of fluctuations in endogenous IP6 in live cells and provides a versatile tool for mechanistic investigations of inositol phosphate functions in metabolism and signaling.

Keywords: DIPP; IP6; IP6Ks; fluorescence biosensor; imaging.

MeSH terms

  • Fluorescence
  • HEK293 Cells
  • Humans
  • Inositol Phosphates* / chemistry
  • Inositol Phosphates* / metabolism
  • Phytic Acid* / chemistry
  • Phytic Acid* / metabolism

Substances

  • Inositol Phosphates
  • Phytic Acid