Literature DB >> 32559122

Neutrophils use selective autophagy receptor Sqstm1/p62 to target Staphylococcus aureus for degradation in vivo in zebrafish.

Josie F Gibson1,2,3,4,5, Tomasz K Prajsnar1,2,6, Christopher J Hill5, Amy K Tooke5, Justyna J Serba1,2, Rebecca D Tonge7, Simon J Foster4,5, Andrew J Grierson2,7, Philip W Ingham3,8, Stephen A Renshaw1,2,4, Simon A Johnston1,2,4.   

Abstract

Macroautophagy/autophagy functions to degrade cellular components and intracellular pathogens. Autophagy receptors, including SQSTM1/p62, target intracellular pathogens. Staphylococcus aureus is a significant pathogen of humans, especially in immunocompromise. S. aureus may use neutrophils as a proliferative niche, but their intracellular fate following phagocytosis has not been analyzed in vivo. In vitro, SQSTM1 can colocalize with intracellular Staphylococcus aureus, but whether SQSTM1 is beneficial or detrimental in host defense against S. aureus in vivo is unknown. Here we determine the fate and location of S. aureus within neutrophils throughout zebrafish infection. We show Lc3 and Sqstm1 recruitment to phagocytosed S. aureus is altered depending on the bacterial location within the neutrophil and that Lc3 marking of bacterial phagosomes within neutrophils may precede bacterial degradation. Finally, we show Sqstm1 is important for controlling cytosolic bacteria, demonstrating for the first time a key role of Sqstm1 in autophagic control of S. aureus in neutrophils.Abbreviations: AR: autophagy receptor; CFU: colony-forming unit; CHT: caudal hematopoietic tissue; GFP: green fluorescent protein; hpf: hours post-fertilization; hpi: hours post-infection; LWT: london wild-type: lyz: lysozyme; Map1lc3/Lc3: microtubule-associated protein 1 light chain 3; RFP: red fluorescent protein; Sqstm1/p62: sequestosome 1; Tg: transgenic; TSA: tyramide signal amplification; UBD: ubiquitin binding domain.

Entities:  

Keywords:  Autophagy; bacterial infection; host-pathogen interactions; neutrophil; sqstm1/p62; staphylococcus aureus; xenophagy; zebrafish

Mesh:

Substances:

Year:  2020        PMID: 32559122      PMCID: PMC8204994          DOI: 10.1080/15548627.2020.1765521

Source DB:  PubMed          Journal:  Autophagy        ISSN: 1554-8627            Impact factor:   16.016


  42 in total

1.  A streamlined CRISPR pipeline to reliably generate zebrafish frameshifting alleles.

Authors:  Jared Coffin Talbot; Sharon L Amacher
Journal:  Zebrafish       Date:  2014-12       Impact factor: 1.985

2.  The DNA damage-regulated autophagy modulator DRAM1 links mycobacterial recognition via TLR-MYD88 to autophagic defense [corrected].

Authors:  Michiel van der Vaart; Cornelis J Korbee; Gerda E M Lamers; Anouk C Tengeler; Rohola Hosseini; Mariëlle C Haks; Tom H M Ottenhoff; Herman P Spaink; Annemarie H Meijer
Journal:  Cell Host Microbe       Date:  2014-06-11       Impact factor: 21.023

3.  The β2 Integrin Mac-1 Induces Protective LC3-Associated Phagocytosis of Listeria monocytogenes.

Authors:  Alexander Gluschko; Marc Herb; Katja Wiegmann; Oleg Krut; Wolfram F Neiss; Olaf Utermöhlen; Martin Krönke; Michael Schramm
Journal:  Cell Host Microbe       Date:  2018-03-14       Impact factor: 21.023

4.  Neutrophils exert protection in the early tuberculous granuloma by oxidative killing of mycobacteria phagocytosed from infected macrophages.

Authors:  Chao-Tsung Yang; C J Cambier; J Muse Davis; Christopher J Hall; Philip S Crosier; Lalita Ramakrishnan
Journal:  Cell Host Microbe       Date:  2012-09-13       Impact factor: 21.023

5.  Monitoring autophagic degradation of p62/SQSTM1.

Authors:  Geir Bjørkøy; Trond Lamark; Serhiy Pankiv; Aud Øvervatn; Andreas Brech; Terje Johansen
Journal:  Methods Enzymol       Date:  2009       Impact factor: 1.600

Review 6.  Cargo recognition and degradation by selective autophagy.

Authors:  Damián Gatica; Vikramjit Lahiri; Daniel J Klionsky
Journal:  Nat Cell Biol       Date:  2018-02-23       Impact factor: 28.824

Review 7.  Autophagy, immunity, and microbial adaptations.

Authors:  Vojo Deretic; Beth Levine
Journal:  Cell Host Microbe       Date:  2009-06-18       Impact factor: 21.023

8.  The selective autophagy receptors Optineurin and p62 are both required for zebrafish host resistance to mycobacterial infection.

Authors:  Rui Zhang; Monica Varela; Wies Vallentgoed; Gabriel Forn-Cuni; Michiel van der Vaart; Annemarie H Meijer
Journal:  PLoS Pathog       Date:  2019-02-28       Impact factor: 6.823

9.  A transgenic zebrafish line for in vivo visualisation of neutrophil myeloperoxidase.

Authors:  Kyle D Buchan; Tomasz K Prajsnar; Nikolay V Ogryzko; Nienke W M de Jong; Michiel van Gent; Julia Kolata; Simon J Foster; Jos A G van Strijp; Stephen A Renshaw
Journal:  PLoS One       Date:  2019-04-19       Impact factor: 3.240

10.  Staphylococcus aureus infection dynamics.

Authors:  Eric J G Pollitt; Piotr T Szkuta; Nicola Burns; Simon J Foster
Journal:  PLoS Pathog       Date:  2018-06-14       Impact factor: 6.823

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  9 in total

1.  Domain fusion TLR2-4 enhances the autophagy-dependent clearance of Staphylococcus aureus in the genetic engineering goat.

Authors:  Mengyao Wang; Yu Qi; Yutao Cao; Xiaosheng Zhang; Yongsheng Wang; Qingyou Liu; Jinlong Zhang; Guangbin Zhou; Yue Ai; Shao Wei; Linli Wang; Guoshi Liu; Zhengxing Lian; Hongbing Han
Journal:  Elife       Date:  2022-06-28       Impact factor: 8.713

Review 2.  Antigen Presentation and Autophagy in Teleost Adaptive Immunity.

Authors:  Carolina Johnstone; Elena Chaves-Pozo
Journal:  Int J Mol Sci       Date:  2022-04-28       Impact factor: 6.208

Review 3.  Autophagy and Lc3-Associated Phagocytosis in Zebrafish Models of Bacterial Infections.

Authors:  Salomé Muñoz-Sánchez; Michiel van der Vaart; Annemarie H Meijer
Journal:  Cells       Date:  2020-10-29       Impact factor: 6.600

Review 4.  Selective Host Cell Death by Staphylococcus aureus: A Strategy for Bacterial Persistence.

Authors:  Dominique Missiakas; Volker Winstel
Journal:  Front Immunol       Date:  2021-01-21       Impact factor: 7.561

Review 5.  The Role of Macrophages in Staphylococcus aureus Infection.

Authors:  Grace R Pidwill; Josie F Gibson; Joby Cole; Stephen A Renshaw; Simon J Foster
Journal:  Front Immunol       Date:  2021-01-19       Impact factor: 7.561

Review 6.  LC3-Associated Phagocytosis in Bacterial Infection.

Authors:  Jin Yuan; Qiuyu Zhang; Shihua Chen; Min Yan; Lei Yue
Journal:  Pathogens       Date:  2022-07-30

Review 7.  Selective autophagy: the rise of the zebrafish model.

Authors:  Devesh C Pant; Taras Y Nazarko
Journal:  Autophagy       Date:  2020-12-15       Impact factor: 16.016

Review 8.  Zebrafish: An Attractive Model to Study Staphylococcus aureus Infection and Its Use as a Drug Discovery Tool.

Authors:  Sari Rasheed; Franziska Fries; Rolf Müller; Jennifer Herrmann
Journal:  Pharmaceuticals (Basel)       Date:  2021-06-21

9.  The autophagic response to Staphylococcus aureus provides an intracellular niche in neutrophils.

Authors:  Tomasz K Prajsnar; Justyna J Serba; Bernice M Dekker; Josie F Gibson; Samrah Masud; Angeleen Fleming; Simon A Johnston; Stephen A Renshaw; Annemarie H Meijer
Journal:  Autophagy       Date:  2020-03-15       Impact factor: 16.016

  9 in total

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