Visible Light Bioluminescence Imaging Platform for Animal Cell Imaging.


Journal

Methods in molecular biology (Clifton, N.J.)
ISSN: 1940-6029
Titre abrégé: Methods Mol Biol
Pays: United States
ID NLM: 9214969

Informations de publication

Date de publication:
2022
Historique:
entrez: 13 7 2022
pubmed: 14 7 2022
medline: 15 7 2022
Statut: ppublish

Résumé

The present protocol introduces a visible light bioluminescence imaging (BLI) platform together with 12 novel coelenterazine (CTZ) analogues and luciferase sets. We exemplify to create diverse hues of bioluminescence (BL) ranging from blue to far red with the combination of marine luciferases and the three groups of CTZ analogues. We also show how to characterize the new CTZ analogues in detail such as the kinetic parameters, dose dependency, and luciferase specificity. The 2-series CTZ analogues interestingly have specificity to artificial luciferases and are completely dark with Renilla luciferase derivatives in contrast. The 3d is highly specific to only NanoLuc. This BL imaging system covering the visible region provides a useful multicolor imaging portfolio that efficiently images molecular events in mammalian cells.

Identifiants

pubmed: 35821461
doi: 10.1007/978-1-0716-2453-1_3
doi:

Substances chimiques

Luciferases EC 1.13.12.-
nanoluc EC 1.13.12.-
Luciferases, Renilla EC 1.13.12.5

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

37-51

Informations de copyright

© 2022. The Author(s), under exclusive license to Springer Science+Business Media, LLC, part of Springer Nature.

Références

Alberts B (1994) Molecular biology of the cell, 3rd edn. Garland Science, New York
Ozawa T, Yoshimura H, Kim SB (2013) Advances in fluorescence and bioluminescence imaging. Anal Chem 85(2):590–609. https://doi.org/10.1021/Ac3031724
doi: 10.1021/Ac3031724 pubmed: 23134415
Heffern MC (2017) Diversifying the glowing bioluminescent toolbox. ACS Cent Sci 3(12):1234–1236
doi: 10.1021/acscentsci.7b00594
Nishihara R, Paulmurugan R, Nakajima T, Yamamoto E, Natarajan A, Afjei R, Hiruta Y, Iwasawa N, Nishiyama S, Citterio D, Sato M, Kim SB, Suzuki K (2019) Highly bright and stable NIR-BRET with blue-shifted coelenterazine derivatives for deep-tissue imaging of molecular events in vivo. Theranostics 9(9):2646–2661
doi: 10.7150/thno.32219
Yao Z, Zhang BS, Steinhardt RC, Mills JH, Prescher JA (2020) Multicomponent bioluminescence imaging with a pi-extended luciferin. J Am Chem Soc 142(33):14080–14089
doi: 10.1021/jacs.0c01064
Iwano S, Sugiyama M, Hama H, Watakabe A, Hasegawa N, Kuchimaru T, Tanaka KZ, Takahashi M, Ishida Y, Hata J, Shimozono S, Namiki K, Fukano T, Kiyama M, Okano H, Kizaka-Kondoh S, McHugh TJ, Yamamori T, Hioki H, Maki S, Miyawaki A (2018) Single-cell bioluminescence imaging of deep tissue in freely moving animals. Science 359(6378):935–939
doi: 10.1126/science.aaq1067
Kuchimaru T, Iwano S, Kiyama M, Mitsumata S, Kadonosono T, Niwa H, Maki S, Kizaka-Kondoh S (2016) A luciferin analogue generating near-infrared bioluminescence achieves highly sensitive deep-tissue imaging. Nat Commun 7:11856
doi: 10.1038/ncomms11856
Nishihara R, Hoshino E, Kakudate Y, Kishigami S, Iwasawa N, Sasaki S, Nakajima T, Sato M, Nishiyama S, Citterio D, Suzuki K, Kim SB (2018) Azide- and dye-conjugated coelenterazine analogues for a multiplex molecular imaging platform. Bioconjug Chem 29(6):1922–1931
doi: 10.1021/acs.bioconjchem.8b00188
Abe M, Nishihara R, Ikeda Y, Nakajima T, Sato M, Iwasawa N, Nishiyama S, Paulmurugan R, Citterio D, Kim SB, Suzuki K (2019) Near-infrared bioluminescence imaging with a through-bond energy transfer cassette. ChemBioChem 20(15):1919–1923
doi: 10.1002/cbic.201900149
Loening AM, Wu AM, Gambhir SS (2007) Red-shifted Renilla reniformis luciferase variants for imaging in living subjects. Nat Methods 4(8):641–643
doi: 10.1038/nmeth1070
Yeh HW, Karmach O, Ji A, Carter D, Martins-Green MM, Ai HW (2017) Red-shifted luciferase-luciferin pairs for enhanced bioluminescence imaging. Nat Methods 14(10):971–974. https://doi.org/10.1038/Nmeth.4400
doi: 10.1038/Nmeth.4400 pubmed: 28869756 pmcid: 5678970
Shakhmin A, Hall MP, Machleidt T, Walker JR, Wood KV, Kirkland TA (2017) Coelenterazine analogues emit red-shifted bioluminescence with NanoLuc. Org Biomol Chem 15(40):8559–8567
doi: 10.1039/C7OB01985H
Hiblot J, Yu QLY, Sabbadini MDB, Reymond L, Xue L, Schena A, Sallin O, Hill N, Griss R, Johnsson K (2017) Luciferases with tunable emission wavelengths. Angew Chem Int Ed 56(46):14556–14560
doi: 10.1002/anie.201708277
Teranishi K, Goto T (1989) Effects of conformational rigidity and hydrogen-bonding in the emitter on the chemi-luminescence efficiency of coelenterazine (oplophorus luciferin). Chem Lett 8:1423–1426
doi: 10.1246/cl.1989.1423
Yeh HW, Xiong Y, Wu TC, Chen MH, Ji A, Li XY, Ai HW (2019) ATP-independent bioluminescent reporter variants to improve in vivo imaging. ACS Chem Biol 14(5):959–965
doi: 10.1021/acschembio.9b00150
Hart RC, Matthews JC, Hori K, Cormier MJ (1979) Renilla-reniformis bioluminescence – luciferase-catalyzed production of non-radiating excited-states from luciferin analogs and elucidation of the excited-state species involved in energy-transfer to Renilla green fluorescent protein. Biochemistry 18(11):2204–2210
doi: 10.1021/bi00578a011
Tamaki S, Kitada N, Kiyama M, Fujii R, Hirano T, Kim SB, Maki S (2021) Color-tunable bioluminescence imaging portfolio for cell imaging. Sci Rep 11(1):2219
doi: 10.1038/s41598-021-81430-1
Iwano S, Obata R, Miura C, Kiyama M, Hama K, Nakamura M, Amano Y, Kojima S, Hirano T, Maki S, Niwa H (2013) Development of simple firefly luciferin analogs emitting blue, green, red, and near-infrared biological window light. Tetrahedron 69(19):3847–3856
doi: 10.1016/j.tet.2013.03.050
Nishihara R, Abe M, Nishiyama S, Citterio D, Suzuki K, Kim SB (2017) Luciferase-specific coelenterazine analogues for optical contamination-free bioassays. Sci Rep 7(1):908. https://doi.org/10.1038/s41598-017-00955-6
doi: 10.1038/s41598-017-00955-6 pubmed: 28424463 pmcid: 5430434
Hirano T, Takahashi Y, Kondo H, Maki S, Kojima S, Ikeda H, Niwa H (2008) The reaction mechanism for the high quantum yield of Cypridina (Vargula) bioluminescence supported by the chemiluminescence of 6-aryl-2-methylimidazo[1,2-a]pyrazin-3(7H)-ones (Cypridina luciferin analogues). Photochem Photobiol Sci 7(2):197–207
doi: 10.1039/B713374J
Hall MP, Unch J, Binkowski BF, Valley MP, Butler BL, Wood MG, Otto P, Zimmerman K, Vidugiris G, Machleidt T, Robers MB, Benink HA, Eggers CT, Slater MR, Meisenheimer PL, Klaubert DH, Fan F, Encell LP, Wood KV (2012) Engineered luciferase reporter from a deep sea shrimp utilizing a novel imidazopyrazinone substrate. ACS Chem Biol 7(11):1848–1857. https://doi.org/10.1021/Cb3002478
doi: 10.1021/Cb3002478 pubmed: 22894855 pmcid: 3501149

Auteurs

Nobuo Kitada (N)

Department of Engineering Science, Graduate School of Informatics and Engineering, The University of Electro-Communications, Chofu, Tokyo, Japan.

Shojiro Maki (S)

Department of Engineering Science, Graduate School of Informatics and Engineering, The University of Electro-Communications, Chofu, Tokyo, Japan.

Sung-Bae Kim (SB)

Environmental Management Research Institute, National Institute of Advanced Industrial Science and Technology (AIST), Tsukuba, Ibaraki, Japan. kimu-sb@aist.go.jp.

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