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1. Bioenergetic deficits in Huntington’s disease iPSC-derived neural cells and rescue with glycolytic metabolites

3. Developmental alterations in Huntington's disease neural cells and pharmacological rescue in cells and mice

4. Mutant Huntingtin Disrupts the Nuclear Pore Complex

6. A seeding-based neuronal model of tau aggregation for use in drug discovery

7. PPARδ activation by bexarotene promotes neuroprotection by restoring bioenergetic and quality control homeostasis

10. PPAR-δ is repressed in Huntington's disease, is required for normal neuronal function and can be targeted therapeutically

12. RNA Toxicity and Perturbation of rRNA Processing in Spinocerebellar Ataxia Type 2

14. Immortalized striatal precursor neurons from Huntington’s disease patient-derived iPS cells as a platform for target identification and screening for experimental therapeutics

15. Neuroprotective role of Sirt1 in mammalian models of Huntington's disease through activation of multiple Sirt1 targets

17. TBK1 phosphorylates mutant Huntingtin and suppresses its aggregation and toxicity in Huntington's disease models

18. Nemo-like kinase reduces mutant huntingtin levels and mitigates Huntington’s disease

19. TBK1 regulates autophagic clearance of soluble mutant huntingtin and inhibits aggregation/toxicity in different models of Huntington’s disease

22. Developmental alterations in Huntington's disease neural cells and pharmacological rescue in cells and mice

24. ATXN2-AS, a Gene Antisense to ATXN2, Is Associated with Spinocerebellar Ataxia Type 2 and Amyotrophic Lateral Sclerosis

27. Post-Translational Modifications (PTMs), Identified on Endogenous Huntingtin, Cluster within Proteolytic Domains between HEAT Repeats

28. ATXN2-AS, a gene antisense toATXN2, is associated with spinocerebellar ataxia type 2 and amyotrophic lateral sclerosis

29. Ubiqutination via K27 and K29 chains signals aggregation and neuronal protection of LRRK2 by WSB1

30. PPAR-δ is repressed in Huntington's disease, is required for normal neuronal function and can be targeted therapeutically

33. Etude des effets des peptides amyloïdes : du fonctionnement de la synapse aux modifications du cytosquelette dans l'apoptose neuronale

34. Study of the effects of amyloid petides : from the synaptic function to the cytoskeletal modifications during neuronal apoptosis

38. trans-(−)-ε-Viniferin Increases Mitochondrial Sirtuin 3 (SIRT3), Activates AMP-activated Protein Kinase (AMPK), and Protects Cells in Models of Huntington Disease

40. Identification of Novel Potentially Toxic Oligomers Formed in Vitro from Mammalian-derived Expanded huntingtin Exon-1 Protein

41. Neuroprotective role of Sirt1 in mammalian models of Huntington's disease through activation of multiple Sirt1 targets

44. <f>Aβ</f>(25–35) and <f>Aβ</f>(1–40) act on different calcium channels in CA1 hippocampal neurons

45. trans-(-)-ϵ-Viniferin Increases Mitochondrial Sirtuin 3 (SIRT3), Activates AMP-activated Protein Kinase (AMPK), and Protects Cells in Models of Huntington Disease.

46. Neuroprotective Effects of σ 2 R/TMEM97 Receptor Modulators in the Neuronal Model of Huntington's Disease.

47. ATXN2-AS, a gene antisense to ATXN2, is associated with spinocerebellar ataxia type 2 and amyotrophic lateral sclerosis.

48. trans-(-)-ε-Viniferin increases mitochondrial sirtuin 3 (SIRT3), activates AMP-activated protein kinase (AMPK), and protects cells in models of Huntington Disease.

49. Beta-amyloid(1-42) induces a reduction in the parallel fiber responses of Purkinje cells: possible involvement of pro-inflammatory processes.

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