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Modulation of Tau Subcellular Localization as a Tool to Investigate the Expression of Disease-related Genes
Published on: December 20, 2019
14-3-3ζ Mediates Tau Aggregation in Human Neuroblastoma M17 Cells
Tong Li1, Hemant K Paudel1,2
1The Bloomfield Center for Research in Aging, Lady Davis Institute for Medical Research, Jewish General Hospital, Montreal, Canada.
Abstract:
Microtubule-associated protein tau is the major component of paired helical filaments (PHFs) associated with the neuropathology of Alzheimer's disease (AD). Tau in the normal brain binds and stabilizes microtubules. Tau isolated from PHFs is hyperphosphorylated, which prevents it from binding to microtubules. Tau phosphorylation has been suggested to be involved in the development of NFT pathology in the AD brain. Recently, we showed that 14-3-3ζ is bound to tau in the PHFs and when incubated in vitro with 14-3-3ζ, tau formed amorphous aggregates, single-stranded straight filaments, double stranded ribbon-like filaments and PHF-like filaments that displayed close resemblance with corresponding ultrastructures of AD brain. Surprisingly however, phosphorylated and non-phosphorylated tau aggregated in a similar manner, indicating that tau phosphorylation does not affect in vitro tau aggregation (Qureshi et al (2013) Biochemistry 52, 6445-6455). In this study, we have examined the role of tau phosphorylation in tau aggregation in cellular level. We have found that in human M17 neuroblastoma cells, tau phosphorylation by GSK3β or PKA does not cause tau aggregation, but promotes 14-3-3ζ-induced tau aggregation by destabilizing microtubules. Microtubule disrupting drugs also promoted 14-3-3ζ-induced tau aggregation without changing tau phosphorylation in M17 cell. In vitro, when incubated with 14-3-3ζ and microtubules, nonphosphorylated tau bound to microtubules and did not aggregate. Phosphorylated tau on the other hand did not bind to microtubules and aggregated. Our data indicate that microtubule-bound tau is resistant to 14-3-3ζ-induced tau aggregation and suggest that tau phosphorylation promotes tau aggregation in the brain by detaching tau from microtubules and thus making it accessible to 14-3-3ζ.
Insights
Tau phosphorylation promotes Alzheimer's disease (AD) pathology by detaching tau from microtubules, enhancing 14-3-3ζ-induced tau aggregation. This cellular mechanism explains neurofibrillary tangle formation in AD brains.
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- Microtubule-associated protein tau is a key component of neurofibrillary tangles in Alzheimer's disease (AD).
- Hyperphosphorylated tau in AD pathology detaches from microtubules, unlike normal tau which stabilizes them.
- Previous in vitro studies showed tau phosphorylation did not affect aggregation with 14-3-3ζ.
Purpose of the Study:
- To investigate the role of tau phosphorylation in tau aggregation at the cellular level.
- To elucidate the mechanism by which tau phosphorylation influences tau aggregation in the context of Alzheimer's disease.
Main Methods:
- Utilized human M17 neuroblastoma cells to study tau aggregation.
- Examined the effects of tau phosphorylation by GSK3β or PKA on tau aggregation.
- Investigated the impact of microtubule-disrupting drugs on tau aggregation and phosphorylation.
- Conducted in vitro experiments with phosphorylated and non-phosphorylated tau, 14-3-3ζ, and microtubules.
Main Results:
- Tau phosphorylation by GSK3β or PKA did not induce aggregation but promoted 14-3-3ζ-induced aggregation by destabilizing microtubules in M17 cells.
- Microtubule-disrupting agents also enhanced 14-3-3ζ-induced tau aggregation without altering tau phosphorylation.
- In vitro, non-phosphorylated tau bound to microtubules and resisted aggregation, while phosphorylated tau detached and aggregated with 14-3-3ζ.
Conclusions:
- Tau phosphorylation promotes Alzheimer's disease (AD) pathology by facilitating 14-3-3ζ-induced tau aggregation.
- Phosphorylation-induced detachment of tau from microtubules is a critical step making tau accessible to aggregation.
- This mechanism highlights the importance of microtubule integrity in preventing tau aggregation and neurofibrillary tangle formation in AD.

