OSCR

Loss of Vascular TMEM16A Impairs Cerebral Autoregulation and Exacerbates Ischemia-reperfusion Injury.

Overview

Authors: Ask Carit Andersen1, Ida Damsgaard Larsen1, Elizaveta V Melnikova1, Marlon Gernemann1, Boris V Skryabin2, Tina Myhre Pedersen1, Hans Christian Beck3, Halvor Østerby Guldbrandsen1,4, Eugenio Gutierrez1,5, Christian Aalkjaer1, Dmitry D Postnov5, Vladimir V Matchkov1, Line Mathilde Brostrup Hansen1
  1. Department of Biomedicine, Health, Aarhus University, Aarhus, Denmark
  2. Medical Faculty, Core Facility Transgenic Animal and Genetic Engineering Models (TRAM), University of Muenster, Muenster, Germany
  3. Department of Clinical Research, University of Southern Denmark, Odense, Denmark
  4. Department of Clinical Medicine, Aarhus University, Aarhus, Denmark
  5. Center of Functionally Integrative Neuroscience, Department of Clinical Medicine, Aarhus University, Aarhus, Denmark
Institutions: Aarhus University (Denmark); University of Münster (Germany); University of Southern Denmark (Denmark)
Journal: Translational stroke research, volume 17, issue 4, article 85
Dates: received 6 March 2026; accepted 4 July 2026; published online 22 July 2026; in print 2026
Type: Research article · Language: English
License: CC BY
Identifiers: DOI 10.1007/s12975-026-01471-4 · PMID 42484772 · PMCID PMC13391751 · OpenAlex W7170074863
Open access: hybrid, a free copy (OpenAlex)
Status: code on request
Categories: mouse (organism), stroke (population), cellular / molecular (subfield)
Methods: Statistics
Keywords: Ischemic stroke, Myogenic tone, TMEM16A, Reperfusion, Cerebral blood flow autoregulation
MeSH: Anoctamin-1*, Brain Ischemia*, Cerebrovascular Circulation*, Homeostasis*, Reperfusion Injury*, Animals, Disease Models, Animal, Infarction, Middle Cerebral Artery, Male, Mice, Mice, Inbred C57BL, Mice, Knockout, Pericytes (* major topic)
Topic: Ion channel regulation and function (Molecular Biology, Biochemistry, Genetics and Molecular Biology), according to OpenAlex
Funding: Aarhus Universitet
Citations: not cited yet (Europe PMC); 68 references in the paper

Abstract

TMEM16A forms a Ca²⁺-activated Cl⁻ channel in vascular mural cells (smooth muscle cells and pericytes) that generates depolarizing Cl⁻ efflux upon intracellular Ca²⁺ elevation, thereby amplifying agonist-induced vasoconstriction. TMEM16A has been implicated in excessive capillary pericyte constriction following cerebral ischemia, suggesting that its inhibition may improve post-stroke recovery. However, the impact of systemic vascular TMEM16A inhibition on focal reperfusion efficiency and cerebrovascular autoregulation remains unknown. To address this question, mice with inducible mural cell-specific (Myosin Heavy Chain 11 promoter controlled) deletion of TMEM16A were subjected to transient middle cerebral artery occlusion. Reperfusion dynamics and stroke-reperfusion outcome were assessed using laser speckle contrast imaging, cylinder test for motor function, and infarct quantification by 2,3,5-triphenyltetrazolium chloride staining. Systemic cardiovascular parameters were monitored with radiotelemetry. Middle cerebral artery myogenic tone was assessed with pressure myography. Mice lacking TMEM16A in mural cells exhibited impaired reperfusion and worsened stroke outcome compared with wild-type controls, despite unchanged systemic cardiovascular parameters. In wild-type mice, capillary pericytes maintained basal contractile tone in both hemispheres, and this was further enhanced in peri-infarct cortex. In contrast, TMEM16A-deficient capillary pericytes lacked basal tone in both the ipsilateral and contralateral hemispheres. TMEM16A-deficient middle cerebral arteries failed to develop pressure-induced myogenic tone. These findings demonstrate that TMEM16A is required for effective cerebral autoregulation and that its deficiency significantly impairs post-ischemic reperfusion. The results caution against systemic TMEM16A inhibition as a therapeutic strategy for stroke and highlight the need for spatially restricted approaches to modulate cerebral perfusion via the Ca²⁺-activated Cl⁻ channels.

Supplementary Information: The online version contains supplementary material available at https://doi.org/10.1007/s12975-026-01471-4.

Reproduced under the paper's license (CC BY), from the paper cited above.

Code

The paper says that its authors' code is available on request: it was not published with the paper, so there is nothing to verify.

The paper's code and data availability statement is in the Data section.

Tracing map

A tracing map links a paper to the code its authors published: this paper has none (its code is available on request), so it has no map.

Data

No dataset and no data link were found in the paper.

Data Availability

All data, materials, and custom code supporting the findings of this publication are available from the corresponding author upon reasonable request.

Reproduced under the paper's license (CC BY), from the paper cited above.

Versions

The history of this record: each version stored by the harvester or made by a correction of its authors or of the maintainers of its code, and what changed in its facts. The texts of the paper (its abstract, its availability statements) are not part of it; versions that changed only those are not listed.

Version 2, 28 September 2026

  • Publisher: n/a → Springer Science+Business Media

Version 1, 27 September 2026: the first record

Recorded: type, language, journal, volume, issue, pages, dates, 13 authors, 5 keywords, 13 MeSH terms, 1 funder, 65 references.

Cite

This paper

Andersen, A. C., Larsen, I. D., Melnikova, E. V., Gernemann, M., Skryabin, B. V., Pedersen, T. M., Beck, H. C., Guldbrandsen, H. Ø., Gutierrez, E., Aalkjaer, C., Postnov, D. D., Matchkov, V. V., & Hansen, L. M. B. (2026). Loss of Vascular TMEM16A Impairs Cerebral Autoregulation and Exacerbates Ischemia-reperfusion Injury. Translational stroke research, 17(4), 85. https://doi.org/10.1007/s12975-026-01471-4

BibTeX

@article{andersen2026loss,
author = {Andersen, Ask Carit and Larsen, Ida Damsgaard and Melnikova, Elizaveta V and Gernemann, Marlon and Skryabin, Boris V and Pedersen, Tina Myhre and Beck, Hans Christian and Guldbrandsen, Halvor Østerby and Gutierrez, Eugenio and Aalkjaer, Christian and Postnov, Dmitry D and Matchkov, Vladimir V and Hansen, Line Mathilde Brostrup},
title = {{Loss of Vascular TMEM16A Impairs Cerebral Autoregulation and Exacerbates Ischemia-reperfusion Injury}},
journal = {Translational stroke research},
year = {2026},
month = jul,
volume = {17},
number = {4},
pages = {85},
publisher = {Springer Science+Business Media},
issn = {1868-4483},
doi = {10.1007/s12975-026-01471-4},
url = {https://doi.org/10.1007/s12975-026-01471-4},
pmid = {42484772},
pmcid = {PMC13391751}
}

RIS

TY - JOUR
AU - Andersen, Ask Carit
AU - Larsen, Ida Damsgaard
AU - Melnikova, Elizaveta V
AU - Gernemann, Marlon
AU - Skryabin, Boris V
AU - Pedersen, Tina Myhre
AU - Beck, Hans Christian
AU - Guldbrandsen, Halvor Østerby
AU - Gutierrez, Eugenio
AU - Aalkjaer, Christian
AU - Postnov, Dmitry D
AU - Matchkov, Vladimir V
AU - Hansen, Line Mathilde Brostrup
TI - Loss of Vascular TMEM16A Impairs Cerebral Autoregulation and Exacerbates Ischemia-reperfusion Injury
T2 - Translational stroke research
J2 - Transl Stroke Res
PY - 2026
DA - 2026/07/22
VL - 17
IS - 4
SP - 85
SN - 1868-4483
PB - Springer Science+Business Media
DO - 10.1007/s12975-026-01471-4
UR - https://doi.org/10.1007/s12975-026-01471-4
LA - en
ER -

CSL-JSON

{
"id": "10.1007/s12975-026-01471-4",
"type": "article-journal",
"title": "Loss of Vascular TMEM16A Impairs Cerebral Autoregulation and Exacerbates Ischemia-reperfusion Injury",
"container-title": "Translational stroke research",
"author": [
{
"family": "Andersen",
"given": "Ask Carit"
},
{
"family": "Larsen",
"given": "Ida Damsgaard"
},
{
"family": "Melnikova",
"given": "Elizaveta V"
},
{
"family": "Gernemann",
"given": "Marlon"
},
{
"family": "Skryabin",
"given": "Boris V"
},
{
"family": "Pedersen",
"given": "Tina Myhre"
},
{
"family": "Beck",
"given": "Hans Christian"
},
{
"family": "Guldbrandsen",
"given": "Halvor Østerby"
},
{
"family": "Gutierrez",
"given": "Eugenio"
},
{
"family": "Aalkjaer",
"given": "Christian"
},
{
"family": "Postnov",
"given": "Dmitry D"
},
{
"family": "Matchkov",
"given": "Vladimir V"
},
{
"family": "Hansen",
"given": "Line Mathilde Brostrup"
}
],
"container-title-short": "Transl Stroke Res",
"volume": "17",
"issue": "4",
"page": "85",
"DOI": "10.1007/s12975-026-01471-4",
"PMID": "42484772",
"PMCID": "PMC13391751",
"ISSN": "1868-4483",
"publisher": "Springer Science+Business Media",
"URL": "https://doi.org/10.1007/s12975-026-01471-4",
"language": "en",
"issued": {
"date-parts": [
[
2026,
7,
22
]
]
}
}

Similar papers

The papers with a page that share the most with this one: the tools found in their code, their categories, datasets, cited references and authors, the rarest counting most.

[1] doi:10.1073/pnas.2523612123
A pericyte chloride clamp mechanism governs capillary control of cerebral blood flow.
Journal: Proceedings of the National Academy of Sciences of the United States of America
In common: stroke, mouse, cellular / molecular, 8 references
[2] doi:10.1038/s44161-026-00844-0 [code]
Pericyte K<sub>ATP</sub> channel hyperactivity redistributes cortical blood flow in a CADASIL mouse model.
Journal: Nature cardiovascular research
In common: stroke, mouse, cellular / molecular, 4 references
[3] doi:10.1371/journal.pcbi.1013113 [code]
Systems biology analysis of vasodynamics in mouse cerebral arterioles during resting state and functional hyperemia.
Journal: PLoS computational biology
In common: stroke, mouse, 3 references
[4] doi:10.1111/jnc.70430
Peri-Microvascular Glycogen and Lactate Regulate Capillary Constrictions and Ischemia Outcome in Mice.
Journal: Journal of neurochemistry
In common: stroke, mouse, cellular / molecular, 2 references
[5] doi:10.1186/s12929-026-01271-w
Lack of cortistatin drives neuroimmune and vascular dysfunction in brain ischemia.
Journal: Journal of biomedical science
In common: stroke, mouse, cellular / molecular, 1 reference
[6] doi:10.1016/j.redox.2026.104210
Vespakinin-M delineates an AMPK/mTOR-arginine-TCA cycle axis to act as an immunometabolic switch in post-stroke microglia.
Journal: Redox biology
In common: stroke, mouse, cellular / molecular, 1 reference
[7] doi:10.1038/s41419-026-09062-9
Knockdown of endothelial Serpine1 improves stroke recovery by attenuating peri-infarct blood flow and blood-brain barrier disruption.
Journal: Cell death & disease
In common: stroke, mouse, cellular / molecular, 1 reference
[8] doi:10.1038/s41467-026-76812-w [code]
Assessing molecular, cellular and transcriptomic bases of laminar perfusion and cytoarchitecture coupling in the human cortex.
Journal: Nature communications
In common: stroke, cellular / molecular, 1 reference
[9] doi:10.1016/j.nbas.2026.100164
Single-cell transcriptomic analysis reveals age-related remodeling of brain endothelial cells.
Journal: Aging brain
In common: mouse, cellular / molecular, 1 reference
[10] doi:10.3389/fnmol.2026.1741120
Transcriptomic identification of CREB1 and FOXO1 activation in neuregulin-1-mediated neuroprotection after stroke.
Journal: Frontiers in molecular neuroscience
In common: stroke, 1 reference

Contribute

The authors of this paper can claim it, correct its record and validate its tracing map, and the maintainers of its code (its owner, or a public member of its organization) correct what it says of their repository; anyone signed in can ask for its removal. Every request goes to OSCR's own machine, which answers it; your account page follows them.

Sign in with ORCID to claim this paper as one of its authors, correct its record or validate its tracing map: when the paper's metadata lists your ORCID iD, you are recognized at once. Maintainers of its code: sign in with GitHub, then claim the repository on your account page.

Request its removal

To ask OSCR to remove this record, the copies of its authors' scripts or its tracing map, use the removal request page: signed in, you say who you are, what to remove and why, then review and confirm the request. Published rules decide every request (how).

Discussion, reproductions, activity

Discussion: questions and error reports about this paper and its code, from signed-in readers and its authors. It opens with sign-in.

Reproductions: reports from readers who ran the authors' code: what they reproduced, with which environment, commit and data. It opens with sign-in.

Activity: what happens around this paper: new versions of its record, its map's validation, discussions and reproductions. It opens with sign-in.