scholarly journals Tissue-ABPP enables high-resolution confocal fluorescence imaging of serine hydrolase activity in cryosections – Application to glioma brain unveils activity hotspots originating from tumor-associated neutrophils

2019 ◽  
Author(s):  
Niina Aaltonen ◽  
Prosanta K. Singha ◽  
Hermina Jakupović ◽  
Thomas Wirth ◽  
Haritha Samaranayake ◽  
...  

AbstractSerine hydrolases (SHs) are a functionally diverse family of enzymes playing pivotal roles in health and disease and have emerged as important therapeutic targets in many clinical conditions. Activity-based protein profiling (ABPP) using fluorophosphonate (FP) probes has been a powerful chemoproteomic approach in studies unveiling roles of SHs in various biological systems. The ABPP approach utilizes cell/tissue proteomes and features the FP warhead, linked to a fluorescent reporter for in-gel fluorescence imaging or a biotin tag for streptavidin enrichment and LC-MS/MS-based target identification. Here, we advance the ABPP methodology to glioma brain cryosections, enabling high-resolution confocal fluorescence imaging of SH activity in different cell types of the tumor microenvironment, identified by using extensive immunohistochemistry on activity probe labeled sections. We name this technique tissue-ABPP to distinguish it from conventional gel-based ABPP. We show heightened SH activity in glioma vs. normal brain and unveil activity hotspots originating from tumor-associated neutrophils. Thorough optimization and validation is provided by parallel gel-based ABPP combined with LC-MS/MS-based target verification. Tissue-ABPP enables a wide range of applications for confocal imaging of SH activity in any type of tissue or animal species.

2012 ◽  
Vol 05 (04) ◽  
pp. 1250025 ◽  
Author(s):  
TREVOR A. SMITH ◽  
LIISA M. HIRVONEN ◽  
CRAIG N. LINCOLN ◽  
XIAOTAO HAO

A wide range of techniques has been developed to image biological samples at high spatial and temporal resolution. In this paper, we report recent results from deep-UV confocal fluorescence microscopy to image inherent emission from fluorophores such as tryptophan, and structured illumination microscopy (SIM) of biological materials. One motivation for developing deep-UV fluorescence imaging and SIM is to provide methods to complement our measurements in the emerging field of X-ray coherent diffractive imaging.


Author(s):  
Tytus Bernas ◽  
Elikplimi K. Asem ◽  
J. Paul Robinson ◽  
Peter R. Cook ◽  
Jurek W. Dobrucki

2020 ◽  
Vol 22 (22) ◽  
pp. 12745-12756
Author(s):  
A. Moissette ◽  
M. Hureau ◽  
M. Moreau ◽  
J. P. Cornard

Electron transfers at the single particle level in HZSM-5 zeolite are followed by combining Raman microspectroscopy mapping and confocal fluorescence imaging. The effects of pore accessibility and guest diffusion on reactivity are investigated.


2007 ◽  
Author(s):  
David M. Haaland ◽  
Howland D. T. Jones ◽  
Michael B. Sinclair ◽  
Bryan Carson ◽  
Catherine Branda ◽  
...  

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