Cerebral blood flow is modulated by astrocytic cAMP elevation independently of IP <sub>3</sub> R2-mediated Ca <sup>2+</sup> signaling in mice

M Marta Vittani (Center for Translational Neuromedicine, Faculty of Health and Life Sciences, University of Copenhagen) R Rasmus Herlo (Center for Translational Neuromedicine, Faculty of Health and Life Sciences, University of Copenhagen) X Xiaowen Wang M Michala Daniela Bach Christensen (Center for Translational Neuromedicine, Faculty of Health and Life Sciences, University of Copenhagen) C Camilla Trang Vo (Center for Translational Neuromedicine, Faculty of Health and Life Sciences, University of Copenhagen) T Tsuneko Mishima (Center for Translational Neuromedicine, Faculty of Health and Life Sciences, University of Copenhagen) P Peter Kusk (Center for Translational Neuromedicine, Faculty of Health and Life Sciences, University of Copenhagen) A Ayumu Konno (Department of Neurophysiology and Neural Repair, Gunma University Graduate School of Medicine) H Hirokazu Hirai (Department of Neurophysiology and Neural Repair, Gunma University Graduate School of Medicine) T Takashi Tsuboi (Department of Life Sciences, Graduate School of Arts and Sciences, The University of Tokyo) T Tetsuya Kitaguchi (Laboratory for Chemistry and Life Science, Institute of Integrated Research, Institute of Science Tokyo) C Celia Kjaerby (Center for Translational Neuromedicine, Faculty of Health and Life Sciences, University of Copenhagen) A Antonis Asiminas (Center for Translational Neuromedicine, Faculty of Health and Life Sciences, University of Copenhagen) T Tatsushi Yokoyama M Masayuki Sakamoto M Maiken Nedergaard H Hajime Hirase (Center for Translational Neuromedicine, Faculty of Health and Life Sciences, University of Copenhagen)

Abstract

Local neural activation drives regional increase of cerebral blood flow (CBF), in a phenomenon known as functional hyperemia. Astrocytes, which enwrap cerebral blood vessels and respond to neuronal activity through their G protein–coupled receptors (GPCRs), play a vital role in brain energy metabolism. Although astrocytic calcium (Ca 2+ ) signaling has been widely studied in relation to neurovascular coupling, the role of cyclic adenosine monophosphate (cAMP), another key second messenger of GPCRs, on CBF has not been established. In this study, we explored the effects of optogenetically induced astrocytic cAMP elevation on CBF. We engineered adeno-associated viral vectors (AAVs) to express a bacterial photoactivated adenylyl cyclase in astrocytes, which triggers an increase in cAMP upon blue light stimulation. Opto-stimulation also elevated astrocytic Ca 2+ , albeit with a delayed onset under mild stimulation. In vivo imaging of anesthetized and awake wild-type mice through a thinned skull preparation revealed that optogenetically induced astrocytic cAMP elevation led to pronounced arteriole dilation, with a latency of 1.8 s and maximal dilation reached within 10 s in the awake state and slower response under anesthesia. Mild opto-stimulation causing sensory-level cAMP elevations was sufficient to induce arteriole dilation. This effect was preserved in IP 3 receptor type 2-knockout (IP 3 R2 −/− ) mice, indicating a mechanism independent of GPCR-induced intracellular Ca 2+ elevations. These findings highlight astrocytic cAMP as a key modulator of cerebral vasodilation, contributing to our understanding of local CBF regulation. This study opens broad avenues for understanding astrocyte-mediated control of CBF and its implications in neurological diseases characterized by dysregulated blood flow.

Article Details

Volume / Issue Vol. 122, Issue 27
Published July 08, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (17)

M

Marta Vittani

Center for Translational Neuromedicine, Faculty of Health and Life Sciences, University of Copenhagen

R

Rasmus Herlo

Center for Translational Neuromedicine, Faculty of Health and Life Sciences, University of Copenhagen

X

Xiaowen Wang

M

Michala Daniela Bach Christensen

Center for Translational Neuromedicine, Faculty of Health and Life Sciences, University of Copenhagen

C

Camilla Trang Vo

Center for Translational Neuromedicine, Faculty of Health and Life Sciences, University of Copenhagen

T

Tsuneko Mishima

Center for Translational Neuromedicine, Faculty of Health and Life Sciences, University of Copenhagen

P

Peter Kusk

Center for Translational Neuromedicine, Faculty of Health and Life Sciences, University of Copenhagen

A

Ayumu Konno

Department of Neurophysiology and Neural Repair, Gunma University Graduate School of Medicine

H

Hirokazu Hirai

Department of Neurophysiology and Neural Repair, Gunma University Graduate School of Medicine

T

Takashi Tsuboi

Department of Life Sciences, Graduate School of Arts and Sciences, The University of Tokyo

T

Tetsuya Kitaguchi

Laboratory for Chemistry and Life Science, Institute of Integrated Research, Institute of Science Tokyo

C

Celia Kjaerby

Center for Translational Neuromedicine, Faculty of Health and Life Sciences, University of Copenhagen

A

Antonis Asiminas

Center for Translational Neuromedicine, Faculty of Health and Life Sciences, University of Copenhagen

T

Tatsushi Yokoyama

M

Masayuki Sakamoto

M

Maiken Nedergaard

H

Hajime Hirase

Center for Translational Neuromedicine, Faculty of Health and Life Sciences, University of Copenhagen