4.6 Article

pH-Lemon, a Fluorescent Protein-Based pH Reporter for Acidic Compartments

期刊

ACS SENSORS
卷 4, 期 4, 页码 883-891

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acssensors.8b01599

关键词

array confocal laser scanning microscopy; FLIM; fluorescence microscopy; FRET; genetically encoded probes; Golgi apparatus; GPI-anchor; pH

资金

  1. Ph.D. program Molecular Medicine (MOLMED) of the Medical University of Graz
  2. Nikon Austria within the Nikon-Center of Excellence, Graz
  3. Austrian Science Fund (FWF) [I3716-B27, P28529-B27]
  4. doctoral program Metabolic and Cardiovascular Disease [DK-W1226, P27070]
  5. Austrian infrastructure program 2013/2014
  6. Nikon Austria Inc.
  7. BioTechMed, Graz
  8. President's International Fellowship Initiative of CAS [2015VBB045]
  9. National Natural Science Foundation of China [31450110423]
  10. Austrian Science Fund [FWF: P28854, I3792]
  11. Austrian Research Promotion Agency [FFG: 864690]
  12. Integrative Metabolism Research Center Graz
  13. Austrian infrastructure program 2016/2017
  14. BioTechMed/Graz
  15. OMICS center Graz
  16. Austrian Science Fund (FWF) [P28854, P28529] Funding Source: Austrian Science Fund (FWF)

向作者/读者索取更多资源

Distinct subcellular pH levels, especially in lysosomes and endosomes, are essential for the degradation, modification, sorting, accumulation, and secretion of macromolecules. Here, we engineered a novel genetically encoded pH probe by fusing the pH-stable ryan fluorescent protein (FP) variant, mTurquoise2, to the highly pH-sensitive enhanced yellow fluorescent protein, EYFP. This approach yielded a ratiometric biosensor referred to as pH-Lemon optimized for live imaging of distinct pH conditions within acidic cellular compartments. Protonation of pH-Lemon under acidic conditions significantly decreases the yellow fluorescence while the cyan fluorescence increases due to reduced Forster resonance energy transfer (FRET) efficiency. Because of its freely reversible and ratiometric responses, pH-Lemon represents a fluorescent biosensor for pH dynamics. pH-Lemon also shows a sizable pH-dependent fluorescence lifetime change that can be used in fluorescence lifetime imaging microscopy as an alternative observation method for the study of pH in acidic cellular compartments. Fusion of pH-Lemon to the protein microtubule-associated protein 1A/1B-light chain 3B (LC3B), a specific marker of autophagic membranes, resulted in its targeting within autolysosomes of HeLa cells. Moreover, fusion of pH-Lemon to a glycophosphatidylinositol (GPI) anchor allowed us to monitor the entire luminal space of the secretory pathway and the exoplasmic leaflet of the plasma membrane. Utilizing this new pH probe, we revealed neutral and acidic vesicles and substructures inside cells, highlighting compartments of distinct pH throughout the endomembrane system. These data demonstrate, that this novel pH sensor, pH-Lemon, is very suitable for the study of local pH dynamics of subcellular microstructures in living cells.

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