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The biphasic role of Hspb1 on ferroptotic cell death in Parkinson's disease. | LitMetric

AI Article Synopsis

  • Ferroptosis is linked to the loss of dopaminergic neurons in Parkinson's disease (PD), with Hspb1 levels being elevated in patients' brains, but its exact role is not fully understood.
  • Researchers used dopaminergic neurons from human iPSCs and a compound called Coniferaldehyde (CFA) to study how Hspb1 and Nrf2 interact and their impact on neuroprotection in PD.
  • The study found that Nrf2 can activate Hspb1, crucial for the protective effect of CFA; however, excessive Hspb1 ultimately leads to neuronal death and inflammation, revealing a complex role in PD that needs further exploration for potential therapies.

Article Abstract

: Ferroptosis-driven loss of dopaminergic neurons plays a pivotal role in the pathogenesis of Parkinson's disease (PD). In PD patients, Hspb1 is commonly observed at abnormally high levels in the substantia nigra. The precise consequences of Hspb1 overexpression in PD, however, have yet to be fully elucidated. : We used human iPSC-derived dopaminergic neurons and Coniferaldehyde (CFA)-an Nrf2 agonist known for its ability to cross the blood-brain barrier-to investigate the role of Hspb1 in PD. We examined the correlation between Hspb1 overexpression and Nrf2 activation and explored the transcriptional regulation of Hspb1 by Nrf2. Gene deletion techniques were employed to determine the necessity of Nrf2 and Hspb1 for CFA's neuroprotective effects. : Our research demonstrated that Nrf2 can upregulate the transcription of Hspb1 by directly binding to its promoter. Deletion of either Nrf2 or Hspb1 gene abolished the neuroprotective effects of CFA. The Nrf2-Hspb1 pathway, newly identified as a defense mechanism against ferroptosis, was shown to be essential for preventing neurodegeneration progression. Additionally, we discovered that prolonged overexpression of Hspb1 leads to neuronal death and that Hspb1 released from ruptured cells can trigger secondary cell death in neighboring cells, exacerbating neuroinflammatory responses. : These findings highlight a biphasic role of Hspb1 in PD, where it initially provides neuroprotection through the Nrf2-Hspb1 pathway but ultimately contributes to neurodegeneration and inflammation when overexpressed. Understanding this dual role is crucial for developing therapeutic strategies targeting Hspb1 and Nrf2 in PD.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11373631PMC
http://dx.doi.org/10.7150/thno.98457DOI Listing

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