Dynamic Measurement of Intracellular pH Based on Bioluminescent Bacteria

Yaohua Li, Wei Wang

Chemical Research in Chinese Universities ›› 2024, Vol. 40 ›› Issue (2) : 287-292. DOI: 10.1007/s40242-023-3255-2
Article

Dynamic Measurement of Intracellular pH Based on Bioluminescent Bacteria

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Abstract

Intracellular pH (pHi) is a fundamental indicator of cellular physiological state, regulating cellular state and function, and has important research values. Although various probes for measuring intracellular pH were available, it is challenging to reflect pHi in real-time and reversible manners. Herein, we developed a whole-cell bioluminescent (BL) probe based on wild type BL bacteria, photobacterium phosphoreum (P. phosphoreum), to determine and image pHi. The dependence of BL intensity of P. phosphoreum on pH values of culture solutions was established. It was found that BL intensity could respond to the change of pH values rapidly and reversibly. We further revealed that P. phosphoreum maintained pH homeostasis in the extracellular pH (pHe) within the range of 5.0–7.0, while intracellular pH homeostasis was destroyed at the alkaline pHe. This method opens up the enormous potential of BL bacteria as an alternative to fluorescence for monitoring and imaging pHi.

Keywords

Bioluminescence / P. phosphoreum / Intracellular pH / Cell imaging

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Yaohua Li, Wei Wang. Dynamic Measurement of Intracellular pH Based on Bioluminescent Bacteria. Chemical Research in Chinese Universities, 2024, 40(2): 287‒292 https://doi.org/10.1007/s40242-023-3255-2

References

[[1]]
Wijesooriya C S, Peterson J A, Shrestha P, Gehrmann E J, Winter A H, Smith E A. . Angew Chem. Int. Ed., 2018, 57: 12685,
CrossRef Google scholar
[[2]]
Tang J, Robichaux M A, Wu K L, Pei J, Nguyen N T, Zhou Y, Wensel T G, Xiao H. . J. Am. Chem. Soc., 2019, 141: 14699, pmcid: 6812504
CrossRef Pubmed Google scholar
[[3]]
Yang J., Wang M., Li M., Zhou J., Zhang K. Y., Liu S., Zhao Q., Chem. Biomed. Imaging., DOI: https://doi.org/10.1021/cbmi.3c00059
[[4]]
Zhou P, Hu S, Gu W, Su B. . Fundamental Research, 2022, 2: 682,
CrossRef Google scholar
[[5]]
Webb B A, Chimenti M, Jacobson M P, Barber D L. . Nat. Rev. Cancer, 2011, 11: 671,
CrossRef Pubmed Google scholar
[[6]]
Turk B, Turk V. . J. Biol. Chem., 2009, 284: 21783, pmcid: 2755904
CrossRef Pubmed Google scholar
[[7]]
Yuan M, Shi S, Luo Y, Yu Y, Wang S, Chen C. . Chem. Res. Chinese Universities, 2022, 38(4): 999,
CrossRef Google scholar
[[8]]
Hutkins R W, Nannen N L. . J. Dairy Sci., 1993, 76: 2354,
CrossRef Google scholar
[[9]]
Malhotra D, Shapiro J I. . Concepts Magn. Reson., 1993, 5: 123,
CrossRef Google scholar
[[10]]
Cohen J S, Motiei M, Carmi S, Shiperto D, Yefet O. . Magn. Reson. Med., 2004, 51: 900,
CrossRef Pubmed Google scholar
[[11]]
Bencina M. . Sensors, 2013, 13: 16736, pmcid: 3892890
CrossRef Pubmed Google scholar
[[12]]
Hou J-T, Ren W X, Li K, Seo J, Sharma A, Yu X-Q, Kim J S. . Chem. Soc. Rev., 2017, 46: 2076,
CrossRef Pubmed Google scholar
[[13]]
Yan L, Zhou H, Wu C, Wang L, Yang W, Jin M, Zhao Y, Xu J. . Chem. Res. Chinese Universities, 2016, 32(6): 877,
CrossRef Google scholar
[[14]]
Gao J, Zhao R Y, Wang Y G, Xie R C, Wang W. . Adv. Sens. Energy Mater., 2022, 1: 100030,
CrossRef Google scholar
[[15]]
Zeng S, Liu D, Li C Y, Yu F, Fan L, Lei C Y, Huang Y, Nie Z, Yao S Z. . Anal. Chem., 2018, 90: 13459,
CrossRef Pubmed Google scholar
[[16]]
Zhang X, Zhang W, Wang Q, Wang J, Re G, Wang X D. . Microchim. Acta, 2019, 186: 584,
CrossRef Google scholar
[[17]]
Liang E, Liu P, Dinh S. . Int. J. Pharmaceut., 2007, 338: 104,
CrossRef Google scholar
[[18]]
Deng Z, Zhang Y, Yue J, Tang F, Wei Q. . J. Phys. Chem. B, 2007, 111: 12024,
CrossRef Pubmed Google scholar
[[19]]
Qu F, Li N B, Luo H Q. . Langmuir, 2013, 29: 1199,
CrossRef Pubmed Google scholar
[[20]]
Kim K, Lee J W, Choi J-Y, Shin K S. . Langmuir, 2010, 26: 19163,
CrossRef Pubmed Google scholar
[[21]]
Na M, Han Y, Chen Y, Ma S, Liu J, Chen X. . Anal. Chem., 2021, 93: 5185,
CrossRef Pubmed Google scholar
[[22]]
Lian Y, Lin Z, Zhang Z, Wang X D. . Anal. Chem., 2021, 93: 8291,
CrossRef Pubmed Google scholar
[[23]]
Zhang Y, Robertson J B, Xie Q, Johnson C H. . Bioluminescence, 3 Edition: Methods and Protocols, 2016 New York Humana Press
[[24]]
Li Y, Wang S, He X, Li S, Zheng T, Chen Y-P, Cui H, Wang W. . Chem. Sci., 2021, 12: 12400, pmcid: 8480313
CrossRef Pubmed Google scholar
[[25]]
Nivens D E, McKnight T E, Moser S A, Osbourn S J, Simpson M L, Sayler G S. . J. Appl. Microbiol., 2004, 96: 33,
CrossRef Pubmed Google scholar
[[26]]
Li Y, Li H, Gao J, Niu B, Wang H, Wang W. . Angew. Chem. Int. Ed., 2023, 62: e202215800,
CrossRef Google scholar
[[27]]
Wilson T. . Photochem. Photobiol., 1995, 62: 601,
CrossRef Google scholar
[[28]]
Chu B, Song B, Ji X, Su Y, Wang H, He Y. . Anal. Chem., 2017, 89: 12152,
CrossRef Pubmed Google scholar
[[29]]
Zhong H, Wu Y X, Yu S, Wang X, He K, Li D, Cao Y, Gan N. . Anal. Chem., 2021, 93: 5691,
CrossRef Pubmed Google scholar

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