Please use this identifier to cite or link to this item: http://hdl.handle.net/1893/38337
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dc.contributor.authorStrong, Michael Jen_UK
dc.contributor.authorDonison, Neilen_UK
dc.contributor.authorAl-Chalabi, Ammaren_UK
dc.contributor.authorBoeve, Bradleyen_UK
dc.contributor.authorFinger, Elizabeth Cen_UK
dc.contributor.authorHolstege, Henneen_UK
dc.contributor.authorHuey, Edward Den_UK
dc.contributor.authorLee, Edward Ben_UK
dc.contributor.authorMarzi, Sarah Jen_UK
dc.contributor.authorMcHutchison, Carolineen_UK
dc.contributor.authorMcMillan, Corey Ten_UK
dc.contributor.authorOtto, Markusen_UK
dc.contributor.authorPetrucelli, Leonarden_UK
dc.contributor.authorPrudencio, Mercedesen_UK
dc.contributor.authorSimuni, Tanyaen_UK
dc.date.accessioned2026-09-19T00:00:50Z-
dc.date.available2026-09-19T00:00:50Z-
dc.date.issued2026-09-05en_UK
dc.identifier.otherawag297en_UK
dc.identifier.urihttp://hdl.handle.net/1893/38337-
dc.description.abstractDetermining the optimal timing of disease-modifying therapies for neurodegenerative disorders will necessitate identification of when the underlying pathobiological process becomes active, well in advance of the point at which clinical manifestions appear. Phenoconversion, the emergence of clinically manifest syndomes, may be preceded by years to decades of silent pathobiological activity that can only be mapped by an array of biomarkers. ALS and FTD, traditionally identified as distinct clinical syndromes, are increasingly recognized to exist along a spectrum of clinical syndromes with shared genetic risk and shared underlying pathology. This clinicopathological spectrum is underpinned by cytoplasmic aggregation of TAR DNA-binding protein 43 (TDP-43) as the common neuropathological hallmark. In contrast, the majority of neuropathologically-defined frontotemporal lobar degeneration (FTLD) is associated with alterations in either TDP-43 metabolism (FTLD-TDP) or of the microtubule associated protein tau (FTLD-tau), with a smaller percentage associated with either autosomal dominant genetic mutations or impairments in the ubiquitin proteasome system. As the field of neurodegenerative disorders increasingly shifts towards the frameworks of a pathobiological definition of disease, there is a growing imperative to develop biomarkers that reflect the varied pathobiologies that underly these disorders, and to determine the sensitivity of such biomarkers to detect the presence of these pathobiologies before phenoconversion. To that end, an international workshop was convened in London, Canada in 2025 to review the evidence for existing or evolving biomarkers suitable for (1) the detection of either ALS or FTD pathobiology prior to phenoconversion and/or (2) predict phenoconversion in at risk individuals. Such biomarkers might be conceptualized as “biotypic biomarkers”, capturing their ability to describe an underlying pathophysiology whilst being agnostic to the emergent clinical manifestations. Whereas no single biotypic marker is yet able to predict the emergence of ALS, FTD or their intersection, a multimodal approach to developing a biotypic biomarker profile holds promise for the detection of relevant pathobiological processes. The strength of such an approach would be augmented by also addressing issues of resiliency/susceptibility both in terms of genetic risk susceptibility profiles and developing sensitive biomarkers of genomic and cellular aging. By including such nontraditional markers of disease, a more robust picture of not only the degenerative process but also of those factors that might potentially mitigate or drive a heightened probability of disease can be derived.en_UK
dc.language.isoenen_UK
dc.publisherOxford University Press (OUP)en_UK
dc.relationStrong MJ, Donison N, Al-Chalabi A, Boeve B, Finger EC, Holstege H, Huey ED, Lee EB, Marzi SJ, McHutchison C, McMillan CT, Otto M, Petrucelli L, Prudencio M & Simuni T (2026) Progress towards a biotypic biomarker profile for amyotrophic lateral sclerosis–frontotemporal spectrum disorders. <i>Brain</i>, Art. No.: awag297. https://doi.org/10.1093/brain/awag297en_UK
dc.rightsThis is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial License (https://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact reprints@oup.com for reprints and translation rights for reprints. All other permissions can be obtained through our RightsLink service via the Permissions link on the article page on our site—for further information please contact journals.permissions@oup.com.en_UK
dc.rights.urihttp://creativecommons.org/licenses/by-nc/4.0/en_UK
dc.subjectcryptic exonsen_UK
dc.subjectcryptic proteinsen_UK
dc.subjectcytoskeletal proteinsen_UK
dc.subjectneurofilamentsen_UK
dc.subjectneuroinflammationen_UK
dc.subjectepigeneticsen_UK
dc.subjecttelomereen_UK
dc.titleProgress towards a biotypic biomarker profile for amyotrophic lateral sclerosis–frontotemporal spectrum disordersen_UK
dc.typeJournal Articleen_UK
dc.identifier.doi10.1093/brain/awag297en_UK
dc.identifier.pmid42698276en_UK
dc.citation.jtitleBrainen_UK
dc.citation.issn1460-2156en_UK
dc.citation.issn0006-8950en_UK
dc.citation.peerreviewedRefereeden_UK
dc.type.statusAM - Accepted Manuscripten_UK
dc.contributor.funderMotor Neuron Disease Associationen_UK
dc.contributor.funderUniversity of Stirlingen_UK
dc.author.emailcaroline.mchutchison@stir.ac.uken_UK
dc.citation.date05/09/2026en_UK
dc.description.notesAdditional authors: Maria Carmela Tartaglia , Martin R Turner , Philip Van Damme , David A Wolken_UK
dc.contributor.affiliationWestern Universityen_UK
dc.contributor.affiliationWestern Universityen_UK
dc.contributor.affiliationKing's College Londonen_UK
dc.contributor.affiliationMayo Clinicen_UK
dc.contributor.affiliationWestern Universityen_UK
dc.contributor.affiliationAmsterdam University Medical Centersen_UK
dc.contributor.affiliationBrown Universityen_UK
dc.contributor.affiliationUniversity of Pennsylvaniaen_UK
dc.contributor.affiliationKing's College Londonen_UK
dc.contributor.affiliationPsychologyen_UK
dc.contributor.affiliationUniversity of Pennsylvaniaen_UK
dc.contributor.affiliationMartin Luther University Halle-Wittenbergen_UK
dc.contributor.affiliationUniversity of Miami, USAen_UK
dc.contributor.affiliationUniversity of Miami, USAen_UK
dc.contributor.affiliationNorthwestern Universityen_UK
dc.identifier.wtid2295772en_UK
dc.contributor.orcid0000-0003-1988-6262en_UK
dc.contributor.orcid0000-0002-4924-7712en_UK
dc.contributor.orcid0000-0002-4153-8187en_UK
dc.contributor.orcid0000-0003-4461-7427en_UK
dc.contributor.orcid0000-0002-4589-1180en_UK
dc.contributor.orcid0000-0003-0103-8580en_UK
dc.contributor.orcid0000-0002-4894-4858en_UK
dc.date.accepted2026-06-25en_UK
dcterms.dateAccepted2026-06-25en_UK
dc.date.filedepositdate2026-09-10en_UK
rioxxterms.apcnot requireden_UK
rioxxterms.versionAMen_UK
local.rioxx.authorStrong, Michael J|0000-0003-1988-6262en_UK
local.rioxx.authorDonison, Neil|en_UK
local.rioxx.authorAl-Chalabi, Ammar|0000-0002-4924-7712en_UK
local.rioxx.authorBoeve, Bradley|0000-0002-4153-8187en_UK
local.rioxx.authorFinger, Elizabeth C|0000-0003-4461-7427en_UK
local.rioxx.authorHolstege, Henne|en_UK
local.rioxx.authorHuey, Edward D|en_UK
local.rioxx.authorLee, Edward B|0000-0002-4589-1180en_UK
local.rioxx.authorMarzi, Sarah J|en_UK
local.rioxx.authorMcHutchison, Caroline|0000-0003-0103-8580en_UK
local.rioxx.authorMcMillan, Corey T|en_UK
local.rioxx.authorOtto, Markus|en_UK
local.rioxx.authorPetrucelli, Leonard|en_UK
local.rioxx.authorPrudencio, Mercedes|0000-0002-4894-4858en_UK
local.rioxx.authorSimuni, Tanya|en_UK
local.rioxx.projectProject ID unknown|Motor Neuron Disease Association|en_UK
local.rioxx.projectProject ID unknown|University of Stirling|en_UK
local.rioxx.freetoreaddate2026-09-18en_UK
local.rioxx.licencehttp://creativecommons.org/licenses/by-nc/4.0/|2026-09-18|en_UK
local.rioxx.filenameawag297.pdfen_UK
local.rioxx.filecount1en_UK
local.rioxx.source1460-2156en_UK
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