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Heterogeneity of Sensory-Induced Astrocytic Ca2+ Dynamics During Functional Hyperemia
被引:8
作者:
Sharma, Kushal
[1
]
Gordon, Grant R. J.
[2
]
Tran, Cam Ha T.
[1
]
机构:
[1] Univ Nevada, Reno Sch Med, Dept Physiol & Cell Biol, Ctr Mol & Cellular Signaling Cardiovasc Syst, Reno, NV 89557 USA
[2] Univ Calgary, Sch Med, Hotchkiss Brain Inst, Dept Physiol & Pharmacol, Calgary, AB, Canada
来源:
FRONTIERS IN PHYSIOLOGY
|
2020年
/
11卷
基金:
芬兰科学院;
关键词:
two-photon imaging;
cerebral blood flow;
calcium;
awake in vivo;
functional hyperemia;
astrocyte;
CALCIUM SIGNALS;
CORTICAL ASTROCYTES;
NEURONAL-ACTIVITY;
BLOOD-FLOW;
RESPONSES;
ACTIVATION;
ENDFEET;
VASODILATION;
TRANSIENTS;
D O I:
10.3389/fphys.2020.611884
中图分类号:
Q4 [生理学];
学科分类号:
071003 ;
摘要:
Astrocytic Ca2+ fluctuations associated with functional hyperemia have typically been measured from large cellular compartments such as the soma, the whole arbor and the endfoot. The most prominent Ca2+ event is a large magnitude, delayed signal that follows vasodilation. However, previous work has provided little information about the spatio-temporal properties of such Ca2+ transients or their heterogeneity. Here, using an awake, in vivo two-photon fluorescence-imaging model, we performed detailed profiling of delayed astrocytic Ca2+ signals across astrocytes or within individual astrocyte compartments using small regions of interest next to penetrating arterioles and capillaries along with vasomotor responses to vibrissae stimulation. We demonstrated that while a 5-s air puff that stimulates all whiskers predominantly generated reproducible functional hyperemia in the presence or absence of astrocytic Ca2+ changes, whisker stimulation inconsistently produced astrocytic Ca2+ responses. More importantly, these Ca2+ responses were heterogeneous among subcellular structures of the astrocyte and across different astrocytes that resided within the same field of view. Furthermore, we found that whisker stimulation induced discrete Ca2+ "hot spots" that spread regionally within the endfoot. These data reveal that astrocytic Ca2+ dynamics associated with the microvasculature are more complex than previously thought, and highlight the importance of considering the heterogeneity of astrocytic Ca2+ activity to fully understanding neurovascular coupling.
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页数:10
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