Literature DB >> 35200139

In vivo fluorescence lifetime imaging of macrophage intracellular metabolism during wound responses in zebrafish.

Veronika Miskolci1, Kelsey E Tweed2,3, Michael R Lasarev4, Emily C Britt2,5, Alex J Walsh2, Landon J Zimmerman1, Courtney E McDougal1, Mark R Cronan6, Jing Fan2,5, John-Demian Sauer1, Melissa C Skala2,3, Anna Huttenlocher1,7.   

Abstract

The function of macrophages in vitro is linked to their metabolic rewiring. However, macrophage metabolism remains poorly characterized in situ. Here, we used two-photon intensity and lifetime imaging of autofluorescent metabolic coenzymes, nicotinamide adenine dinucleotide (phosphate) (NAD(P)H) and flavin adenine dinucleotide (FAD), to assess the metabolism of macrophages in the wound microenvironment. Inhibiting glycolysis reduced NAD(P)H mean lifetime and made the intracellular redox state of macrophages more oxidized, as indicated by reduced optical redox ratio. We found that TNFα+ macrophages had lower NAD(P)H mean lifetime and were more oxidized compared to TNFα- macrophages. Both infection and thermal injury induced a macrophage population with a more oxidized redox state in wounded tissues. Kinetic analysis detected temporal changes in the optical redox ratio during tissue repair, revealing a shift toward a more reduced redox state over time. Metformin reduced TNFα+ wound macrophages, made intracellular redox state more reduced and improved tissue repair. By contrast, depletion of STAT6 increased TNFα+ wound macrophages, made redox state more oxidized and impaired regeneration. Our findings suggest that autofluorescence of NAD(P)H and FAD is sensitive to dynamic changes in intracellular metabolism in tissues and can be used to probe the temporal and spatial regulation of macrophage metabolism during tissue damage and repair.
© 2022, Miskolci et al.

Entities:  

Keywords:  FLIM; NAD(P)H; cell biology; immunology; immunometabolism; inflammation; macrophages; mouse; optical redox ratio; wound healing; zebrafish

Mesh:

Substances:

Year:  2022        PMID: 35200139      PMCID: PMC8871371          DOI: 10.7554/eLife.66080

Source DB:  PubMed          Journal:  Elife        ISSN: 2050-084X            Impact factor:   8.140


  56 in total

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Authors:  J R Lakowicz; H Szmacinski; K Nowaczyk; M L Johnson
Journal:  Proc Natl Acad Sci U S A       Date:  1992-02-15       Impact factor: 11.205

Review 2.  Macrophage metabolism: a wound-healing perspective.

Authors:  George Caputa; Lea J Flachsmann; Alanna M Cameron
Journal:  Immunol Cell Biol       Date:  2019-02-21       Impact factor: 5.126

Review 3.  Macrophage Polarization.

Authors:  Peter J Murray
Journal:  Annu Rev Physiol       Date:  2016-10-21       Impact factor: 19.318

4.  Fiji: an open-source platform for biological-image analysis.

Authors:  Johannes Schindelin; Ignacio Arganda-Carreras; Erwin Frise; Verena Kaynig; Mark Longair; Tobias Pietzsch; Stephan Preibisch; Curtis Rueden; Stephan Saalfeld; Benjamin Schmid; Jean-Yves Tinevez; Daniel James White; Volker Hartenstein; Kevin Eliceiri; Pavel Tomancak; Albert Cardona
Journal:  Nat Methods       Date:  2012-06-28       Impact factor: 28.547

5.  Listeria monocytogenes engineered to activate the Nlrc4 inflammasome are severely attenuated and are poor inducers of protective immunity.

Authors:  John-Demian Sauer; Sabine Pereyre; Kristina A Archer; Thomas P Burke; Bill Hanson; Peter Lauer; Daniel A Portnoy
Journal:  Proc Natl Acad Sci U S A       Date:  2011-07-11       Impact factor: 11.205

6.  Cellular Metabolic Heterogeneity In Vivo Is Recapitulated in Tumor Organoids.

Authors:  Joe T Sharick; Justin J Jeffery; Mohammad R Karim; Christine M Walsh; Karla Esbona; Rebecca S Cook; Melissa C Skala
Journal:  Neoplasia       Date:  2019-05-09       Impact factor: 5.715

7.  Classification of T-cell activation via autofluorescence lifetime imaging.

Authors:  Alex J Walsh; Katherine P Mueller; Kelsey Tweed; Isabel Jones; Christine M Walsh; Nicole J Piscopo; Natalie M Niemi; David J Pagliarini; Krishanu Saha; Melissa C Skala
Journal:  Nat Biomed Eng       Date:  2020-07-27       Impact factor: 25.671

8.  Identification of polarized macrophage subsets in zebrafish.

Authors:  Mai Nguyen-Chi; Béryl Laplace-Builhe; Jana Travnickova; Patricia Luz-Crawford; Gautier Tejedor; Quang Tien Phan; Isabelle Duroux-Richard; Jean-Pierre Levraud; Karima Kissa; Georges Lutfalla; Christian Jorgensen; Farida Djouad
Journal:  Elife       Date:  2015-07-08       Impact factor: 8.140

9.  HIF-1α-PDK1 axis-induced active glycolysis plays an essential role in macrophage migratory capacity.

Authors:  Hiroaki Semba; Norihiko Takeda; Takayuki Isagawa; Yuki Sugiura; Kurara Honda; Masaki Wake; Hidenobu Miyazawa; Yoshifumi Yamaguchi; Masayuki Miura; Dana M R Jenkins; Hyunsung Choi; Jung-Whan Kim; Masataka Asagiri; Andrew S Cowburn; Hajime Abe; Katsura Soma; Katsuhiro Koyama; Manami Katoh; Keimon Sayama; Nobuhito Goda; Randall S Johnson; Ichiro Manabe; Ryozo Nagai; Issei Komuro
Journal:  Nat Commun       Date:  2016-05-18       Impact factor: 14.919

Review 10.  Investigating mitochondrial redox state using NADH and NADPH autofluorescence.

Authors:  Thomas S Blacker; Michael R Duchen
Journal:  Free Radic Biol Med       Date:  2016-08-09       Impact factor: 7.376

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  2 in total

1.  In vivo fluorescence lifetime imaging of macrophage intracellular metabolism during wound responses in zebrafish.

Authors:  Veronika Miskolci; Kelsey E Tweed; Michael R Lasarev; Emily C Britt; Alex J Walsh; Landon J Zimmerman; Courtney E McDougal; Mark R Cronan; Jing Fan; John-Demian Sauer; Melissa C Skala; Anna Huttenlocher
Journal:  Elife       Date:  2022-02-24       Impact factor: 8.140

2.  Lactate metabolism coordinates macrophage response and regeneration in zebrafish.

Authors:  Candice Bohaud; Jholy De La Cruz; Claudia Terraza; Audrey Barthelaix; Béryl Laplace-Builhé; Christian Jorgensen; Yoan Arribat; Farida Djouad
Journal:  Theranostics       Date:  2022-05-13       Impact factor: 11.600

  2 in total

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