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Metabolic Labeling of Leucine Rich Repeat Kinases 1 and 2 with Radioactive Phosphate
Published on: September 18, 2013
14-3-3 Proteins regulate mutant LRRK2 kinase activity and neurite shortening
Nicholas J Lavalley1, Sunny R Slone1, Huiping Ding1
1Department of Neurology, Center for Neurodegeneration and Experimental Therapeutics, University of Alabama at Birmingham, Birmingham, AL 35294, USA.
Abstract:
Mutations in leucine-rich repeat kinase 2 (LRRK2) are the most common known cause of inherited Parkinson's disease (PD), and LRRK2 is a risk factor for idiopathic PD. How LRRK2 function is regulated is not well understood. Recently, the highly conserved 14-3-3 proteins, which play a key role in many cellular functions including cell death, have been shown to interact with LRRK2. In this study, we investigated whether 14-3-3s can regulate mutant LRRK2-induced neurite shortening and kinase activity. In the presence of 14-3-3θ overexpression, neurite length of primary neurons from BAC transgenic G2019S-LRRK2 mice returned back to wild-type levels. Similarly, 14-3-3θ overexpression reversed neurite shortening in neuronal cultures from BAC transgenic R1441G-LRRK2 mice. Conversely, inhibition of 14-3-3s by the pan-14-3-3 inhibitor difopein or dominant-negative 14-3-3θ further reduced neurite length in G2019S-LRRK2 cultures. Since G2019S-LRRK2 toxicity is likely mediated through increased kinase activity, we examined 14-3-3θ's effects on LRRK2 kinase activity. 14-3-3θ overexpression reduced the kinase activity of G2019S-LRRK2, while difopein promoted the kinase activity of G2019S-LRRK2. The ability of 14-3-3θ to reduce LRRK2 kinase activity required direct binding of 14-3-3θ with LRRK2. The potentiation of neurite shortening by difopein in G2019S-LRRK2 neurons was reversed by LRRK2 kinase inhibitors. Taken together, we conclude that 14-3-3θ can regulate LRRK2 and reduce the toxicity of mutant LRRK2 through a reduction of kinase activity.
Insights
14-3-3 proteins regulate leucine-rich repeat kinase 2 (LRRK2) by reducing its kinase activity. This finding offers new insights into Parkinson's disease (PD) mechanisms and potential therapeutic strategies.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Mutations in leucine-rich repeat kinase 2 (LRRK2) are a primary genetic cause of Parkinson's disease (PD).
- The precise regulatory mechanisms governing LRRK2 function remain incompletely understood.
- 14-3-3 proteins, crucial for cellular processes, have recently been identified as LRRK2 interactors.
Purpose of the Study:
- To investigate the role of 14-3-3 proteins in modulating the cellular effects of mutant LRRK2.
- To determine if 14-3-3 proteins can regulate LRRK2 kinase activity and associated neurotoxicity.
Main Methods:
- Utilized primary neurons from BAC transgenic mice expressing G2019S-LRRK2 and R1441G-LRRK2 mutations.
- Overexpressed 14-3-3θ and employed the pan-14-3-3 inhibitor difopein to assess effects on neurite length.
- Assessed LRRK2 kinase activity in response to 14-3-3θ manipulation and direct binding studies.
Main Results:
- Overexpression of 14-3-3θ reversed LRRK2 mutant-induced neurite shortening in primary neurons.
- Inhibition of 14-3-3 proteins exacerbated neurite shortening, indicating a protective role for 14-3-3s.
- 14-3-3θ overexpression reduced G2019S-LRRK2 kinase activity, while inhibition increased it; this effect required direct binding.
Conclusions:
- 14-3-3θ directly binds to LRRK2 and negatively regulates its kinase activity.
- 14-3-3 proteins play a critical role in mitigating the neurotoxic effects of mutant LRRK2.
- Targeting 14-3-3 interactions with LRRK2 presents a potential therapeutic avenue for Parkinson's disease.
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