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Publication:
Kaempferol enhances ER-mitochondria coupling and protects motor neurons from mitochondrial dysfunction and ER stress in C9ORF72-ALS.

cris.virtual.author-orcid0000-0003-3925-5142
cris.virtual.author-orcid0000-0003-4574-4591
cris.virtualsource.author-orcid5a930a91-400e-4df3-aa27-f7bf8c357a5d
cris.virtualsource.author-orcid741255f8-18a1-4de5-9e47-481b67f4a9f8
cris.virtualsource.author-orcid78674d8c-2206-45d6-859c-ca9d50fbd87e
cris.virtualsource.author-orcid6cecfbc6-4347-4aec-818a-7685dc51a2cb
cris.virtualsource.author-orcid7a2db052-c764-4175-a7ff-90e23f7abfec
datacite.rightsopen.access
dc.contributor.authorPilotto, Federica
dc.contributor.authorSmeele, Paulien Hermine
dc.contributor.authorScheidegger, Olivier
dc.contributor.authorDiab, Rim
dc.contributor.authorSchobesberger, Martina
dc.contributor.authorSierra-Delgado, Julieth Andrea
dc.contributor.authorSaxena, Smita
dc.date.accessioned2025-03-13T10:45:53Z
dc.date.available2025-03-13T10:45:53Z
dc.date.issued2025-02-01
dc.description.abstractRepeat expansions in the C9ORF72 gene are a frequent cause of amyotrophic lateral sclerosis (ALS) and frontotemporal dementia. Considerable progress has been made in identifying C9ORF72-mediated disease and resolving its underlying etiopathogenesis. The contributions of intrinsic mitochondrial deficits as well as chronic endoplasmic reticulum stress to the development of the C9ORF72-linked pathology are well established. Nevertheless, to date, no cure or effective therapy is available, and thus attempts to find a potential drug target, have received increasing attention. Here, we investigated the mode of action and therapeutic effect of a naturally occurring dietary flavanol, kaempferol in preclinical rodent and human models of C9ORF72-ALS. Notably, kaempferol treatment of C9ORF72-ALS human patient-derived motor neurons/neurons, resolved mitochondrial deficits, promoted resiliency against severe ER stress, and conferred neuroprotection. Treatment of symptomatic C9ORF72 mice with kaempferol, normalized mitochondrial calcium uptake, restored mitochondria function, and diminished ER stress. Importantly, in vivo, chronic kaempferol administration ameliorated pathological motor dysfunction and inhibited motor neuron degeneration, highlighting the translational potential of kaempferol. Lastly, in silico modelling identified a novel kaempferol target and mechanistically the neuroprotective mechanism of kaempferol is through the iP3R-VDAC1 pathway via the modulation of GRP75 expression. Thus, kaempferol holds great promise for treating neurodegenerative diseases where both mitochondrial and ER dysfunction are causally linked to the pathophysiology.
dc.description.numberOfPages25
dc.description.sponsorshipClinic of Neurology
dc.identifier.doi10.48620/85941
dc.identifier.pmid39893487
dc.identifier.publisherDOI10.1186/s40478-025-01927-y
dc.identifier.urihttps://boris-portal.unibe.ch/handle/20.500.12422/204723
dc.language.isoen
dc.publisherBioMed Central
dc.relation.ispartofActa Neuropathologica Communications
dc.relation.issn2051-5960
dc.subject.ddc600 - Technology::610 - Medicine & health
dc.titleKaempferol enhances ER-mitochondria coupling and protects motor neurons from mitochondrial dysfunction and ER stress in C9ORF72-ALS.
dc.typearticle
dspace.entity.typePublication
dspace.file.typetext
oaire.citation.issue1
oaire.citation.startPage21
oaire.citation.volume13
oairecerif.author.affiliationClinic of Neurology
oairecerif.author.affiliationClinic of Neurology
oairecerif.author.affiliationClinic of Neurology
unibe.contributor.roleauthor
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unibe.contributor.rolecorresponding author
unibe.description.ispublishedpub
unibe.refereedtrue
unibe.subtype.articlejournal

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