bioRxiv Science⌕ Search

Biology subjects

Manirakiza, H.

Publications and source records attributed to Manirakiza, H..

2 recordsLinked to original sources

Chemogenetic modulation of luciferase emission color for imaging and sensing

Bioluminescent luciferases have emerged as powerful tools for bioimaging, enabling to image biological systems without external excitation light, reducing thus phototoxicity and eliminating background autofluorescence. Advanced imaging requires luciferases that deliver high photon output for enhanced sensitivity, tunable emission colors for multicolor imaging, and red-shifted emission for effective deep tissue imaging. Here, we introduce LumiFAST, a small tunable luciferase engineered by fusing the bright blue-light emitting NanoLuc with the tunable chemogenetic fluorescent reporter pFAST. pFAST binds and stabilizes the fluorescent state of a variety of synthetic fluorogenic chromophores (also called fluorogens). Its proximity with NanoLuc leads to efficient bioluminescence resonance energy transfer (BRET), enabling customizable red-shifted emission. Thanks to the small size of pFAST, LumiFAST maintains a compact structure, while its modular design allows emission color to be tuned from cyan to green, yellow, orange and red simply by changing the fluorogen. Systematic optimization of the fusion topology and linker length yielded an optimal variant with apparent BRET efficiencies reaching up to 90 %. The red-shifted emission of LumiFAST enables dual-color microscopy imaging when used alongside NanoLuc and allows imaging through thick scattering media. Beyond imaging, our insights into the structural factors governing efficient BRET allowed us to engineer biosensors based on NanoLuc and pFAST for the visualization of protease activity and protein-protein interactions in live cells.

cell biology↗

Peptide-functionalized fluorescent polymeric nanoparticles: polysarcosine length defines stealth properties

Stealth properties of nanoparticles are essential for their proper functionalization in biological systems. To address limitations of polyethylene glycol (PEG), commonly used for this purpose, we explore the potential of polysarcosine (PSar) as stealth shell in peptide-functionalized dye-loaded polymeric NPs. To this end, polymeric NPs loaded with rhodamine dye with bulky hydrophobic counterion and bearing azide groups at their surface were grafted with PSar of different lengths ranging from 5 to 19 sarcosine units using strain-promoted cycloaddition. The obtained peptide-functionalized NPs showed remarkable colloidal stability in physiological media. The length of PSar showed a profound effect on stealth properties of NPs. The increase in the length of grafted PSar lead to decrease in the negative surface charge to nearly neutral values and decreased protein adsorption according to fluorescence correlation spectroscopy. The NPs with 19mer PSar showed minimal interactions with live cells and glass surfaces in a complex biological medium, in contrast to its shorter PSar analogues. These stealth NPs bearing HaloTag ligand enabled specific targeting of proteins at the cell surface. The obtained results show that a relatively short PSar peptide can be used for achieving stealth properties in polymeric NPs, allowing specific protein targeting with minimized non-specific interactions. The obtained PSar-functionalized polymeric NPs appear as a powerful platform for the fabrication of the next generation of nanomaterials for bioimaging and biosensing applications.

pharmacology and toxicology↗