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Ratiometric Bioluminescent Zinc Sensor Proteins to Quantify Serum and Intracellular Free Zn

Overview
Journal ACS Chem Biol
Specialties Biochemistry
Biology
Date 2022 May 25
PMID 35611686
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Abstract

Fluorescent Zn sensors play a pivotal role in zinc biology, but their application in complex media such as blood serum or plate reader-based cellular assays is hampered by autofluorescence and light scattering. Bioluminescent sensor proteins provide an attractive alternative to fluorescent sensors for these applications, but the only bioluminescent sensor protein developed so far, BLZinCh, has a limited sensor response and a suboptimal Zn affinity. In this work, we expanded the toolbox of bioluminescent Zn sensors by developing two new sensor families that show a large change in the emission ratio and cover a range of physiologically relevant Zn affinities. The LuZi platform relies on competitive complementation of split NanoLuc luciferase and displays a robust, 2-fold change in red-to-blue emission, allowing quantification of free Zn between 2 pM and 1 nM. The second platform was developed by replacing the long flexible GGS linker in the original BLZinCh sensor by rigid polyproline linkers, yielding a series of BLZinCh-Pro sensors with a 3-4-fold improved ratiometric response and physiologically relevant Zn affinities between 0.5 and 1 nM. Both the LuZi and BLZinCh-Pro sensors allowed the direct determination of low nM concentrations of free Zn in serum, providing an attractive alternative to more laborious and/or indirect approaches to measure serum zinc levels. Furthermore, the genetic encoding of the BLZinCh-Pro sensors allowed their use as intracellular sensors, where the sensor occupancy of 40-50% makes them ideally suited to monitor both increases and decreases in intracellular free Zn concentration in simple, plate reader-based measurements, without the need for fluorescence microscopy.

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References
1.
Tomimuro K, Tenda K, Ni Y, Hiruta Y, Merkx M, Citterio D . Thread-Based Bioluminescent Sensor for Detecting Multiple Antibodies in a Single Drop of Whole Blood. ACS Sens. 2020; 5(6):1786-1794. DOI: 10.1021/acssensors.0c00564. View

2.
King J, Brown K, Gibson R, Krebs N, Lowe N, Siekmann J . Biomarkers of Nutrition for Development (BOND)-Zinc Review. J Nutr. 2016; 146(4):858S-885S. PMC: 4807640. DOI: 10.3945/jn.115.220079. View

3.
Rink L, Gabriel P . Zinc and the immune system. Proc Nutr Soc. 2000; 59(4):541-52. DOI: 10.1017/s0029665100000781. View

4.
Gower-Winter S, Levenson C . Zinc in the central nervous system: From molecules to behavior. Biofactors. 2012; 38(3):186-93. PMC: 3757551. DOI: 10.1002/biof.1012. View

5.
Maret W . Zinc in Cellular Regulation: The Nature and Significance of "Zinc Signals". Int J Mol Sci. 2017; 18(11). PMC: 5713255. DOI: 10.3390/ijms18112285. View