scholarly journals ‘Networks in the brain: from neurovascular coupling of the BOLD effect to brain functional architecture’

2017 ◽  
Vol 3 (1) ◽  
Author(s):  
Luigi Barberini ◽  
Francesco Marrosu ◽  
Iole Tommasini Barbarossa ◽  
Melania Melis ◽  
Harman S. Suri ◽  
...  
NeuroImage ◽  
2020 ◽  
Vol 221 ◽  
pp. 117173
Author(s):  
Alexander M. Puckett ◽  
Mark M. Schira ◽  
Zoey J. Isherwood ◽  
Jonathan D. Victor ◽  
James A. Roberts ◽  
...  

Projections ◽  
2019 ◽  
Vol 13 (1) ◽  
pp. 23-44 ◽  
Author(s):  
Julia Vassilieva

This article analyzes the unique historical collaboration between the revolutionary Russian film director Sergei Eisenstein (1898–1948), the cultural psychologist Lev Vygotsky (1896–1934), and the founder of contemporary neuropsychology, Alexander Luria (1902–1977). Vygotsky’s legacy is associated primarily with the idea that cultural mediation plays a crucial role in the emergence and development of personality and cognition. His collaborator, Luria, laid the foundations of contemporary neuropsychology and demonstrated that cultural mediation also changes the functional architecture of the brain. In my analysis, I demonstrate how the Eisenstein-Vygotsky-Luria collaboration exemplifies a strategy of productive triangulation that harnesses three disciplinary perspectives: those of cultural psychology, neuropsychology, and film theory and practice.


2012 ◽  
Vol 32 (7) ◽  
pp. 1277-1309 ◽  
Author(s):  
Andy Y Shih ◽  
Jonathan D Driscoll ◽  
Patrick J Drew ◽  
Nozomi Nishimura ◽  
Chris B Schaffer ◽  
...  

The cerebral vascular system services the constant demand for energy during neuronal activity in the brain. Attempts to delineate the logic of neurovascular coupling have been greatly aided by the advent of two-photon laser scanning microscopy to image both blood flow and the activity of individual cells below the surface of the brain. Here we provide a technical guide to imaging cerebral blood flow in rodents. We describe in detail the surgical procedures required to generate cranial windows for optical access to the cortex of both rats and mice and the use of two-photon microscopy to accurately measure blood flow in individual cortical vessels concurrent with local cellular activity. We further provide examples on how these techniques can be applied to the study of local blood flow regulation and vascular pathologies such as small-scale stroke.


Author(s):  
Yuan Zhou ◽  
Yun Wang ◽  
Li-Lin Rao ◽  
Zhu-Yuan Liang ◽  
Xiao-Ping Chen ◽  
...  

Nuncius ◽  
2017 ◽  
Vol 32 (2) ◽  
pp. 472-500
Author(s):  
Carmela Morabito

Ever since the phrenological heads of the early 19th century, maps have translated into images our ideas, theories and models of the brain, making this organ at one and the same time scientific object and representation. Brain maps have always served as gateways for navigating and visualizing neuroscientific knowledge, and over time many different maps have been produced – firstly as tools to “read” and analyse the cerebral territory, then as instruments to produce new models of the brain. Over the last 150 years brain cartography has evolved from a way of identifying brain regions and localizing them for clinical use to an anatomical framework onto which information about local properties and functions can be integrated to provide a view of the brain’s structural and functional architecture. In this paper a historical and epistemological consideration of the topic is offered as a contribution to the understanding of contemporary brain mapping, based on the assumption that the brain continuously rewires itself in relation to individual experience.


2014 ◽  
Vol 36 (1) ◽  
pp. 1-15 ◽  
Author(s):  
Vincent J. Schmithorst ◽  
Jennifer Vannest ◽  
Gregory Lee ◽  
Luis Hernandez-Garcia ◽  
Elena Plante ◽  
...  

eLife ◽  
2022 ◽  
Vol 11 ◽  
Author(s):  
Osman Shabir ◽  
Ben Pendry ◽  
Llywelyn Lee ◽  
Beth Eyre ◽  
Paul S Sharp ◽  
...  

Neurovascular coupling is a critical brain mechanism whereby changes to blood flow accompany localised neural activity. The breakdown of neurovascular coupling is linked to the development and progression of several neurological conditions including dementia. In this study, we examined cortical haemodynamics in mouse preparations that modelled Alzheimer’s disease (J20-AD) and atherosclerosis (PCSK9-ATH) between 9 and 12 m of age. We report novel findings with atherosclerosis where neurovascular decline is characterised by significantly reduced blood volume, altered levels of oxyhaemoglobin and deoxyhaemoglobin, in addition to global neuroinflammation. In the comorbid mixed model (J20-PCSK9-MIX), we report a 3 x increase in hippocampal amyloid-beta plaques. A key finding was that cortical spreading depression (CSD) due to electrode insertion into the brain was worse in the diseased animals and led to a prolonged period of hypoxia. These findings suggest that systemic atherosclerosis can be detrimental to neurovascular health and that having cardiovascular comorbidities can exacerbate pre-existing Alzheimer’s-related amyloid-plaques.


2020 ◽  
Author(s):  
Pratish Thakore ◽  
Michael G. Alvarado ◽  
Sher Ali ◽  
Amreen Mughal ◽  
Paulo W. Pires ◽  
...  

Blood flow regulation in the brain is dynamically regulated to meet the metabolic demands of active neuronal populations. Recent evidence has demonstrated that capillary endothelial cells are essential mediators of neurovascular coupling that sense neuronal activity and generate a retrograde, propagating, hyperpolarizing signal that dilates upstream arterioles. Here, we tested the hypothesis that transient receptor potential ankyrin 1 (TRPA1) channels in capillary endothelial cells are significant contributors to functional hyperemic responses that underlie neurovascular coupling in the brain. Using an integrative ex vivo and in vivo approach, we demonstrate the functional presence of TRPA1 channels in brain capillary endothelial cells, and show that activation of these channels within the capillary bed, including the post-arteriole transitional region covered by ensheathing mural cells, initiates a retrograde signal that dilates upstream parenchymal arterioles. Notably, this signaling exhibits a unique biphasic mode of propagation that begins within the capillary network as a short-range, Ca2+ signal dependent on endothelial pannexin-1 channel/purinergic P2X receptor communication pathway and then is converted to a rapid, inward-rectifying K+ channel-mediated electrical signal in the post-arteriole transitional region that propagates upstream to parenchymal arterioles. Two-photon laser-scanning microscopy further demonstrated that conductive vasodilation occurs in vivo, and that TRPA1 is necessary for functional hyperemia within the somatosensory cortex of mice. Together, these data establish a role for endothelial TRPA1 channels as sensors of neuronal activity and show that they respond accordingly by initiating a vasodilatory response that redirects blood to regions of metabolic demand.


The Brain ◽  
2017 ◽  
pp. 105-130 ◽  
Author(s):  
Richard S. J. Frackowiak

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