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Class I PI3-kinase or Akt inhibition do not impair axonal polarization, but slow down axonal elongation
Héctor Diez1, Ma José Benitez2, Silvia Fernandez3
1Centro de Biología Molecular "Severo Ochoa", CSIC-UAM, Univ. Autonoma de Madrid, 28049 Madrid, Spain; Centro de Investigación Biomédica en Red sobre Enfermedades Neurodegenerativas (CIBERNED), Spain.
Abstract:
PI3K proteins family have multiple and essential functions in most cellular events. This family is composed of class I, class II and class III PI3Ks, which upstream and downstream elements are not completely elucidated. Previous studies using the broad PI3K inhibitor, LY294002 allowed to propose that PI3 kinase>Akt pathway is a key element in the determination of axonal polarity in hippocampal neurons. Recently, new inhibitors with a higher selectivity for class I PI3K have been characterized. In the present study we have examined this widely accepted theory using a new class I PI3K inhibitor (GDC-0941), as well as Akt inhibitors, and PTEN phosphatase constructs to reduce PIP3 levels. Our present data show that both, class I PI3K inhibitor and Akt inhibitor did not alter axon specification in hippocampal neurons, but greatly reduced axon length. However, in the same experiments LY294002 effectively impeded axonal polarization, as previously reported. Our biochemical data show that both, class I PI3K and Akt inhibitors, effectively block downstream elements from Akt to S6K1 activity. Both inhibitors are stable in culture medium along the time period analysed, maintaining the inhibition better than LY294002. Besides, we found evidence that LY294002 directly inhibits mTORC1. However, further analysis using an mTORC1 inhibitor showed no change in neuron polarity. Same result was obtained using a general class III PI3K inhibitor. Interestingly, we found that either, wild-type PTEN, or a phosphatase-dead form of PTEN, disrupted axonal polarization, strongly suggesting that the role of PTEN in axonal polarity can be independent of PIP3.
Insights
The PI3K/Akt pathway is not essential for axonal polarity in hippocampal neurons. New class I PI3K and Akt inhibitors reduced axon length but not specification, unlike LY294002, suggesting alternative mechanisms regulate neuronal polarity.
Area of Science:
- Neuroscience
- Cell Biology
- Molecular Biology
Background:
- Phosphoinositide 3-kinase (PI3K) proteins are crucial for cellular functions.
- The PI3K family includes class I, II, and III, with incompletely understood upstream and downstream signaling.
- Previous research suggested the PI3K/Akt pathway dictates axonal polarity in hippocampal neurons.
Purpose of the Study:
- To re-evaluate the role of the PI3K/Akt pathway in axonal polarity using selective inhibitors.
- To investigate the effects of class I PI3K and Akt inhibition on hippocampal neuron axon specification and length.
- To explore the involvement of PTEN phosphatase in axonal polarity regulation.
Main Methods:
- Utilized a selective class I PI3K inhibitor (GDC-0941) and Akt inhibitors.
- Employed PTEN phosphatase constructs to modulate phosphoinositide levels.
- Assessed axonal polarization and length in cultured hippocampal neurons.
- Performed biochemical assays to confirm pathway inhibition and inhibitor stability.
Main Results:
- Class I PI3K and Akt inhibitors reduced axon length but did not affect axon specification.
- The broad PI3K inhibitor LY294002 impeded axonal polarization, unlike selective inhibitors.
- LY294002 directly inhibited mTORC1, but mTORC1 inhibition did not affect neuron polarity.
- PTEN manipulation, independent of PIP3 levels, disrupted axonal polarization.
Conclusions:
- The PI3K/Akt pathway is not the primary determinant of axonal polarity in hippocampal neurons.
- LY294002's effect on polarity may be due to off-target inhibition, such as of mTORC1.
- PTEN plays a role in axonal polarity that is independent of its canonical PIP3 phosphatase activity.
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