An ultrasensitive biosensor for high-resolution kinase activity imaging in awake mice.
Jin-Fan ZhangBian LiuIngie HongAlbert MoRichard H RothBrian TennerWei LinJason Z ZhangRosana S MolinaMikhail DrobizhevThomas E HughesLin TianRichard L HuganirSohum MehtaJin ZhangPublished in: Nature chemical biology (2020)
Protein kinases control nearly every facet of cellular function. These key signaling nodes integrate diverse pathway inputs to regulate complex physiological processes, and aberrant kinase signaling is linked to numerous pathologies. While fluorescent protein-based biosensors have revolutionized the study of kinase signaling by allowing direct, spatiotemporally precise kinase activity measurements in living cells, powerful new molecular tools capable of robustly tracking kinase activity dynamics across diverse experimental contexts are needed to fully dissect the role of kinase signaling in physiology and disease. Here, we report the development of an ultrasensitive, second-generation excitation-ratiometric protein kinase A (PKA) activity reporter (ExRai-AKAR2), obtained via high-throughput linker library screening, that enables sensitive and rapid monitoring of live-cell PKA activity across multiple fluorescence detection modalities, including plate reading, cell sorting and one- or two-photon imaging. Notably, in vivo visual cortex imaging in awake mice reveals highly dynamic neuronal PKA activity rapidly recruited by forced locomotion.
Keyphrases
- protein kinase
- high resolution
- living cells
- quantum dots
- fluorescent probe
- tyrosine kinase
- high throughput
- label free
- gold nanoparticles
- type diabetes
- stem cells
- metabolic syndrome
- sensitive detection
- hydrogen peroxide
- skeletal muscle
- cell therapy
- radiation therapy
- crispr cas
- rectal cancer
- mesenchymal stem cells
- amino acid
- blood brain barrier
- tandem mass spectrometry