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Updated: Jan 27, 2026

Identification of Kinase-substrate Pairs Using High Throughput Screening
Published on: August 29, 2015
Identification of novel PCTAIRE-1/CDK16 substrates using a chemical genetic screen
Saifeldin N Shehata1, Maria Deak2, Caterina Collodet1
1Nestlé Research, École Polytechnique Fédérale de Lausanne (EPFL) Innovation Park, bâtiment H, 1015 Lausanne, Switzerland; School of Life Sciences, EPFL, 1015 Lausanne, Switzerland.
Abstract:
PCTAIRE-1 (also known as cyclin-dependent protein kinase (CDK) 16), is a Ser/Thr kinase that has been implicated in many cellular processes, including cell cycle, spermatogenesis, neurite outgrowth, and vesicle trafficking. Most recently, it has been proposed as a novel X-linked intellectual disability (XLID) gene, where loss-of-function mutations have been identified in human patients. The precise molecular mechanisms that regulate PCTAIRE-1 remained largely obscure, and only a few cellular targets/substrates have been proposed with no clear functional significance. We and others recently showed that cyclin Y binds and activates PCTAIRE-1 via phosphorylation and 14-3-3 binding. In order to understand the physiological role that PCTAIRE-1 plays in brain, we have performed a chemical genetic screen in vitro using an engineered PCTAIRE-1/cyclin Y complex and mouse brain extracts. Our screen has identified potential PCTAIRE-1 substrates (AP2-Associated Kinase 1 (AAK1), dynamin 1, and synaptojanin 1) in brain that have been shown to regulate crucial steps of receptor endocytosis, and are involved in control of neuronal synaptic transmission. Furthermore, mass spectrometry and protein sequence analyses have identified potential PCTAIRE-1 regulated phosphorylation sites on AAK1 and we validated their PCTAIRE-1 dependence in a cellular study and/or brain tissue lysates. Our results shed light onto the missing link between PCTAIRE-1 regulation and proposed physiological functions, and provide a basis upon which to further study PCTAIRE-1 function in vivo and its potential role in neuronal/brain disorders.
Insights
Cyclin-dependent protein kinase 16 (CDK16) regulates brain functions by phosphorylating key proteins involved in receptor endocytosis and synaptic transmission. This study identifies novel CDK16 substrates, advancing understanding of its role in neuronal disorders.
Area of Science:
- Molecular biology
- Neuroscience
- Cellular biology
Background:
- PCTAIRE-1 (CDK16) is a Ser/Thr kinase involved in cell cycle, spermatogenesis, neurite outgrowth, and vesicle trafficking.
- CDK16 is implicated in X-linked intellectual disability (XLID) due to loss-of-function mutations.
- The regulatory mechanisms and cellular targets of CDK16 have remained largely unclear.
Purpose of the Study:
- To elucidate the physiological role of PCTAIRE-1 (CDK16) in the brain.
- To identify novel substrates and regulatory mechanisms of CDK16 in neuronal function.
Main Methods:
- A chemical genetic screen was performed using an engineered PCTAIRE-1/cyclin Y complex and mouse brain extracts.
- Mass spectrometry and protein sequence analyses were employed to identify and validate phosphorylation sites.
- Cellular studies and analysis of brain tissue lysates were used for validation.
Main Results:
- The screen identified AP2-Associated Kinase 1 (AAK1), dynamin 1, and synaptojanin 1 as potential PCTAIRE-1 substrates in the brain.
- These substrates are involved in receptor endocytosis and neuronal synaptic transmission.
- Potential PCTAIRE-1 regulated phosphorylation sites on AAK1 were identified and validated.
Conclusions:
- This study identifies key brain substrates of PCTAIRE-1 (CDK16), linking its regulation to receptor endocytosis and synaptic transmission.
- The findings provide insights into the molecular mechanisms underlying CDK16 function in the brain.
- This research lays the groundwork for further investigation into CDK16's role in neuronal function and brain disorders.
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