A filopodia-based dendritic mechanosensory compartment in CSF-contacting neurons

Prieto, Daniel - Rehermann, María Inés - Fabbiani, Gabriela - Vitar, Magdalena - Trujillo-Cenóz, Omar - Falco, María Victoria - Cúparo, Mikaela - Trigo, Federico F. - Russo, Raúl E.

Resumen:

Cerebrospinal fluid-contacting neurons (CSF-cNs) are spinal sensory cells that detect chemical and mechanical stimuli via PKD2L1 channels located on a primary cilium, as established in aquatic vertebrates like zebrafish. The mechanosensory mechanism in mammals, however, has remained unclear due to the absence of definitive evidence for cilia on their apical processes (ApPrs). Here we show that mouse CSF-cN ApPrs lack cilia but instead possess drebrin-stabilized filopodia enriched with F-actin. Mechanical stimulation of these cilia-free ApPrs elicits robust, PKD2L1-dependent inward currents, that are sufficient to drive neuronal firing, confirming a novel, cilia-independent mechanosensory mechanism. Comparative analyses indicate an evolutionary divergence from ciliary mechanotransduction, with mice adopting a direct, actin-associated mechanism. These findings advance our understanding of the cellular basis of spinal mechanosensation in mammals and reveal a specialized adaptation for monitoring central canal dynamics, with implications for spinal sensory integration and evolution.

Detalles Bibliográficos
2026
Agencia Nacional de Investigación e Innovación
Wings for Life
Programa de Desarrollo de las Ciencias Básicas
Spinal cord
Cerebrospinal-fluid contacting neuron
Mechanosensation
PKD2L1
filopodia
central canal
Ciencias Médicas y de la Salud
Medicina Básica
Neurociencias
Inglés
Instituto de Investigaciones Biológicas Clemente Estable
IIBCE en REDI
https://hdl.handle.net/20.500.12381/5503
Acceso abierto
Reconocimiento 4.0 Internacional. (CC BY)
_version_ 1877200943201648640
author Prieto, Daniel
author2 Rehermann, María Inés
Fabbiani, Gabriela
Vitar, Magdalena
Trujillo-Cenóz, Omar
Falco, María Victoria
Cúparo, Mikaela
Trigo, Federico F.
Russo, Raúl E.
author2_role author
author
author
author
author
author
author
author
author_facet Prieto, Daniel
Rehermann, María Inés
Fabbiani, Gabriela
Vitar, Magdalena
Trujillo-Cenóz, Omar
Falco, María Victoria
Cúparo, Mikaela
Trigo, Federico F.
Russo, Raúl E.
author_role author
bitstream.checksum.fl_str_mv fcc8b2ddb26c820405a37f9e0cae7f18
1368bf9aa911e883e4ccca620b8a9996
bitstream.checksumAlgorithm.fl_str_mv MD5
MD5
bitstream.url.fl_str_mv https://redi.anii.org.uy/jspui/bitstream/20.500.12381/5503/2/license.txt
https://redi.anii.org.uy/jspui/bitstream/20.500.12381/5503/1/2026.04.09.713694v1.full.pdf
collection IIBCE en REDI
dc.creator.none.fl_str_mv Prieto, Daniel
Rehermann, María Inés
Fabbiani, Gabriela
Vitar, Magdalena
Trujillo-Cenóz, Omar
Falco, María Victoria
Cúparo, Mikaela
Trigo, Federico F.
Russo, Raúl E.
dc.date.accessioned.none.fl_str_mv 2026-04-29T12:48:53Z
dc.date.available.none.fl_str_mv 2026-04-29T12:48:53Z
dc.date.issued.none.fl_str_mv 2026-04
dc.description.abstract.none.fl_txt_mv Cerebrospinal fluid-contacting neurons (CSF-cNs) are spinal sensory cells that detect chemical and mechanical stimuli via PKD2L1 channels located on a primary cilium, as established in aquatic vertebrates like zebrafish. The mechanosensory mechanism in mammals, however, has remained unclear due to the absence of definitive evidence for cilia on their apical processes (ApPrs). Here we show that mouse CSF-cN ApPrs lack cilia but instead possess drebrin-stabilized filopodia enriched with F-actin. Mechanical stimulation of these cilia-free ApPrs elicits robust, PKD2L1-dependent inward currents, that are sufficient to drive neuronal firing, confirming a novel, cilia-independent mechanosensory mechanism. Comparative analyses indicate an evolutionary divergence from ciliary mechanotransduction, with mice adopting a direct, actin-associated mechanism. These findings advance our understanding of the cellular basis of spinal mechanosensation in mammals and reveal a specialized adaptation for monitoring central canal dynamics, with implications for spinal sensory integration and evolution.
dc.description.sponsorship.none.fl_txt_mv Agencia Nacional de Investigación e Innovación
Wings for Life
Programa de Desarrollo de las Ciencias Básicas
dc.identifier.anii.es.fl_str_mv FCE_1_2021_1_166464
dc.identifier.uri.none.fl_str_mv https://hdl.handle.net/20.500.12381/5503
dc.language.iso.none.fl_str_mv eng
dc.relation.none.fl_str_mv https://doi.org/10.60895/redata/ZPXGQ2
https://codeberg.org/dprieto/CSF-cN2026
https://www.biorxiv.org/content/10.64898/2026.04.09.713694v1
dc.rights.*.fl_str_mv Acceso abierto
dc.rights.license.none.fl_str_mv Reconocimiento 4.0 Internacional. (CC BY)
dc.rights.none.fl_str_mv info:eu-repo/semantics/openAccess
dc.source.none.fl_str_mv reponame:IIBCE en REDI
instname:Instituto de Investigaciones Biológicas Clemente Estable
instacron:Instituto de Investigaciones Biológicas Clemente Estable
dc.subject.anii.none.fl_str_mv Ciencias Médicas y de la Salud
Medicina Básica
Neurociencias
dc.subject.es.fl_str_mv Spinal cord
Cerebrospinal-fluid contacting neuron
Mechanosensation
PKD2L1
dc.subject.none.fl_str_mv filopodia
central canal
dc.title.none.fl_str_mv A filopodia-based dendritic mechanosensory compartment in CSF-contacting neurons
dc.type.es.fl_str_mv Preprint
dc.type.none.fl_str_mv info:eu-repo/semantics/preprint
description Cerebrospinal fluid-contacting neurons (CSF-cNs) are spinal sensory cells that detect chemical and mechanical stimuli via PKD2L1 channels located on a primary cilium, as established in aquatic vertebrates like zebrafish. The mechanosensory mechanism in mammals, however, has remained unclear due to the absence of definitive evidence for cilia on their apical processes (ApPrs). Here we show that mouse CSF-cN ApPrs lack cilia but instead possess drebrin-stabilized filopodia enriched with F-actin. Mechanical stimulation of these cilia-free ApPrs elicits robust, PKD2L1-dependent inward currents, that are sufficient to drive neuronal firing, confirming a novel, cilia-independent mechanosensory mechanism. Comparative analyses indicate an evolutionary divergence from ciliary mechanotransduction, with mice adopting a direct, actin-associated mechanism. These findings advance our understanding of the cellular basis of spinal mechanosensation in mammals and reveal a specialized adaptation for monitoring central canal dynamics, with implications for spinal sensory integration and evolution.
eu_rights_str_mv openAccess
format preprint
id IIBCE_a30e4f50db5c6536959dfd56a547ce0b
identifier_str_mv FCE_1_2021_1_166464
instacron_str Instituto de Investigaciones Biológicas Clemente Estable
institution Instituto de Investigaciones Biológicas Clemente Estable
instname_str Instituto de Investigaciones Biológicas Clemente Estable
language eng
network_acronym_str IIBCE
network_name_str IIBCE en REDI
oai_identifier_str oai:redi.anii.org.uy:20.500.12381/5503
publishDate 2026
reponame_str IIBCE en REDI
repository.mail.fl_str_mv vcarballo@iibce.edu.uy
repository.name.fl_str_mv IIBCE en REDI - Instituto de Investigaciones Biológicas Clemente Estable
repository_id_str 9421_3
rights_invalid_str_mv Reconocimiento 4.0 Internacional. (CC BY)
Acceso abierto
spelling Reconocimiento 4.0 Internacional. (CC BY)Acceso abiertoinfo:eu-repo/semantics/openAccess2026-04-29T12:48:53Z2026-04-29T12:48:53Z2026-04https://hdl.handle.net/20.500.12381/5503FCE_1_2021_1_166464Cerebrospinal fluid-contacting neurons (CSF-cNs) are spinal sensory cells that detect chemical and mechanical stimuli via PKD2L1 channels located on a primary cilium, as established in aquatic vertebrates like zebrafish. The mechanosensory mechanism in mammals, however, has remained unclear due to the absence of definitive evidence for cilia on their apical processes (ApPrs). Here we show that mouse CSF-cN ApPrs lack cilia but instead possess drebrin-stabilized filopodia enriched with F-actin. Mechanical stimulation of these cilia-free ApPrs elicits robust, PKD2L1-dependent inward currents, that are sufficient to drive neuronal firing, confirming a novel, cilia-independent mechanosensory mechanism. Comparative analyses indicate an evolutionary divergence from ciliary mechanotransduction, with mice adopting a direct, actin-associated mechanism. These findings advance our understanding of the cellular basis of spinal mechanosensation in mammals and reveal a specialized adaptation for monitoring central canal dynamics, with implications for spinal sensory integration and evolution.Agencia Nacional de Investigación e InnovaciónWings for LifePrograma de Desarrollo de las Ciencias Básicasenghttps://doi.org/10.60895/redata/ZPXGQ2https://codeberg.org/dprieto/CSF-cN2026https://www.biorxiv.org/content/10.64898/2026.04.09.713694v1Spinal cordCerebrospinal-fluid contacting neuronMechanosensationPKD2L1filopodiacentral canalCiencias Médicas y de la SaludMedicina BásicaNeurocienciasA filopodia-based dendritic mechanosensory compartment in CSF-contacting neuronsPreprintinfo:eu-repo/semantics/preprintInstituto de Investigaciones Biológicas Clemente Estable//Ciencias Médicas y de la Salud/Medicina Básica/Neurocienciasreponame:IIBCE en REDIinstname:Instituto de Investigaciones Biológicas Clemente Estableinstacron:Instituto de Investigaciones Biológicas Clemente EstablePrieto, DanielRehermann, María InésFabbiani, GabrielaVitar, MagdalenaTrujillo-Cenóz, OmarFalco, María VictoriaCúparo, MikaelaTrigo, Federico F.Russo, Raúl E.LICENSElicense.txtlicense.txttext/plain; charset=utf-85151https://redi.anii.org.uy/jspui/bitstream/20.500.12381/5503/2/license.txtfcc8b2ddb26c820405a37f9e0cae7f18MD52ORIGINAL2026.04.09.713694v1.full.pdf2026.04.09.713694v1.full.pdfapplication/pdf4164684https://redi.anii.org.uy/jspui/bitstream/20.500.12381/5503/1/2026.04.09.713694v1.full.pdf1368bf9aa911e883e4ccca620b8a9996MD5120.500.12381/55032026-06-24 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científico-tecnológicohttps://www.gub.uy/ministerio-educacion-cultura/iibcehttps://redi.anii.org.uy/oai/requestvcarballo@iibce.edu.uyUruguayopendoar:9421_32026-06-24T18:24:37IIBCE en REDI - Instituto de Investigaciones Biológicas Clemente Establefalse
spellingShingle A filopodia-based dendritic mechanosensory compartment in CSF-contacting neurons
Prieto, Daniel
Spinal cord
Cerebrospinal-fluid contacting neuron
Mechanosensation
PKD2L1
filopodia
central canal
Ciencias Médicas y de la Salud
Medicina Básica
Neurociencias
title A filopodia-based dendritic mechanosensory compartment in CSF-contacting neurons
title_full A filopodia-based dendritic mechanosensory compartment in CSF-contacting neurons
title_fullStr A filopodia-based dendritic mechanosensory compartment in CSF-contacting neurons
title_full_unstemmed A filopodia-based dendritic mechanosensory compartment in CSF-contacting neurons
title_short A filopodia-based dendritic mechanosensory compartment in CSF-contacting neurons
title_sort A filopodia-based dendritic mechanosensory compartment in CSF-contacting neurons
topic Spinal cord
Cerebrospinal-fluid contacting neuron
Mechanosensation
PKD2L1
filopodia
central canal
Ciencias Médicas y de la Salud
Medicina Básica
Neurociencias
url https://hdl.handle.net/20.500.12381/5503