protein imaging
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2021 ◽  
Vol 22 (16) ◽  
pp. 8644
Author(s):  
Thai Pham ◽  
Christopher D. Nazaroff ◽  
Joshua Labaer ◽  
Jia Guo

Multiplexed single-cell analysis of proteins in their native cellular contexts holds great promise to reveal the composition, interaction and function of the distinct cell types in complex biological systems. However, the existing multiplexed protein imaging technologies are limited by their detection sensitivity or technical demands. To address these issues, here, we develop an ultrasensitive and multiplexed in situ protein profiling approach by reiterative staining with off-the-shelf antibodies and cleavable fluorescent tyramide (CFT). In each cycle of this approach, the protein targets are recognized by antibodies labeled with horseradish peroxidase, which catalyze the covalent deposition of CFT on or close to the protein targets. After imaging, the fluorophores are chemically cleaved, and the antibodies are stripped. Through continuous cycles of staining, imaging, fluorophore cleavage and antibody stripping, a large number of proteins can be quantified in individual cells in situ. Applying this method, we analyzed 20 different proteins in each of ~67,000 cells in a human formalin-fixed paraffin-embedded (FFPE) tonsil tissue. Based on their unique protein expression profiles and microenvironment, these individual cells are partitioned into different cell clusters. We also explored the cell–cell interactions in the tissue by examining which specific cell clusters are selectively associating or avoiding each other.


Aggregate ◽  
2021 ◽  
Vol 2 (3) ◽  
Author(s):  
Sanaz Naghibi ◽  
Tong Chen ◽  
Amin Jamshidi Ghahfarokhi ◽  
Youhong Tang

2021 ◽  
Author(s):  
Wang Wan ◽  
Yanan Huang ◽  
Qiuxuan Xia ◽  
Yulong Bai ◽  
Yuwen Chen ◽  
...  

Author(s):  
Li Gao ◽  
Joyce C.M. Meiring ◽  
Adam Varady ◽  
Iris E. Ruider ◽  
Constanze Heise ◽  
...  

AbstractPhotoswitchable reagents to modulate microtubule stability and dynamics are an exciting tool approach towards micron- and millisecond-scale control over endogenous cytoskeleton-dependent processes. When these reagents are globally administered yet locally photoactivated in 2D cell culture, they can exert precise biological control that would have great potential for in vivo translation across a variety of research fields and for all eukaryotes. However, photopharmacology’s reliance on the azobenzene photoswitch scaffold has been accompanied by a failure to translate this temporally- and cellularly-resolved control to 3D models or to in vivo applications in multi-organ animals, which we attribute substantially to the metabolic liabilities of azobenzenes.Here, we optimised the potency and solubility of metabolically stable, druglike colchicinoid microtubule inhibitors based instead on the styrylbenzothiazole (SBT) photoswitch scaffold, that are non-responsive to the major fluorescent protein imaging channels and so enable multiplexed imaging studies. We applied these reagents to 3D systems (organoids, tissue explants) and classic model organisms (zebrafish, clawed frog) with one- and two-protein imaging experiments. We successfully used systemic treatment plus spatiotemporally-localised illuminations in vivo to photocontrol microtubule dynamics, network architecture, and microtubule-dependent processes in these systems with cellular precision and second-level resolution. These nanomolar, in vivo-capable photoswitchable reagents can prove a game-changer for high-precision cytoskeleton research in cargo transport, cell motility, cell division and development. More broadly, their straightforward design can also inspire the development of similarly capable optical reagents for a range of protein targets, so bringing general in vivo photopharmacology one step closer to productive realisation.


Aggregate ◽  
2021 ◽  
Author(s):  
Sanaz Naghibi ◽  
Tong Chen ◽  
Amin Jamshidi Ghahfarokhi ◽  
Youhong Tang

Author(s):  
Wang Wan ◽  
Yanan Huang ◽  
Qiuxuan Xia ◽  
Yulong Bai ◽  
Yuwen Chen ◽  
...  

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