Locus Coeruleus and neurovascular unit: From its role in physiology to its potential role in Alzheimer's disease pathogenesis

被引:49
作者
Giorgi, Filippo Sean [1 ,2 ]
Galgani, Alessandro [2 ]
Puglisi-Allegra, Stefano [3 ]
Limanaqi, Fiona [1 ]
Busceti, Carla Letizia [3 ]
Fornai, Francesco [1 ,3 ]
机构
[1] Univ Pisa, Dept Translat Res & New Technol Med & Surg, Pisa, Italy
[2] Pisa Univ Hosp, Neurol Unit, Pisa, Italy
[3] IRCCS INM Neuromed, Pozzilli, Italy
关键词
Alzheimer's disease; astrocytes; blood-brain barrier; locus coeruleus; neuroinflammation; neurovascular coupling; neurovascular unit; noradrenaline; BLOOD-BRAIN-BARRIER; ADRENERGIC-RECEPTOR ACTIVATION; AMYLOID PRECURSOR PROTEIN; GROWTH-FACTOR SYNTHESIS; NERVOUS-SYSTEM; BASEMENT-MEMBRANE; SUBSTANTIA-NIGRA; IN-VIVO; NORADRENERGIC STIMULATION; MATRIX METALLOPROTEINASES;
D O I
10.1002/jnr.24718
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Locus coeruleus (LC) is the main noradrenergic (NA) nucleus of the central nervous system. LC degenerates early during Alzheimer's disease (AD) and NA loss might concur to AD pathogenesis. Aside from neurons, LC terminals provide dense innervation of brain intraparenchymal arterioles/capillaries, and NA modulates astrocyte functions. The term neurovascular unit (NVU) defines the strict anatomical/functional interaction occurring between neurons, glial cells, and brain vessels. NVU plays a fundamental role in coupling the energy demand of activated brain regions with regional cerebral blood flow, it includes the blood-brain barrier (BBB), plays an active role in neuroinflammation, and participates also to the glymphatic system. NVU alteration is involved in AD pathophysiology through several mechanisms, mainly related to a relative oligoemia in activated brain regions and impairment of structural and functional BBB integrity, which contributes also to the intracerebral accumulation of insoluble amyloid. We review the existing data on the morphological features of LC-NA innervation of the NVU, as well as its contribution to neurovascular coupling and BBB proper functioning. After introducing the main experimental data linking LC with AD, which have repeatedly shown a key role of neuroinflammation and increased amyloid plaque formation, we discuss the potential mechanisms by which the loss of NVU modulation by LC might contribute to AD pathogenesis. Surprisingly, thus far not so many studies have tested directly these mechanisms in models of AD in which LC has been lesioned experimentally. Clarifying the interaction of LC with NVU in AD pathogenesis may disclose potential therapeutic targets for AD.
引用
收藏
页码:2406 / 2434
页数:29
相关论文
共 238 条
[1]  
Abbas A.K., 2017, Cellular and Molecular Immunology E-Book
[2]   The role of brain barriers in fluid movement in the CNS: is there a 'glymphatic' system? [J].
Abbott, N. Joan ;
Pizzo, Michelle E. ;
Preston, Jane E. ;
Janigro, Damir ;
Thorne, Robert G. .
ACTA NEUROPATHOLOGICA, 2018, 135 (03) :387-407
[3]   Structure and function of the blood-brain barrier [J].
Abbott, N. Joan ;
Patabendige, Adjanie A. K. ;
Dolman, Diana E. M. ;
Yusof, Siti R. ;
Begley, David J. .
NEUROBIOLOGY OF DISEASE, 2010, 37 (01) :13-25
[4]   Astrocyte-endothelial interactions at the blood-brain barrier [J].
Abbott, NJ ;
Rönnbäck, L ;
Hansson, E .
NATURE REVIEWS NEUROSCIENCE, 2006, 7 (01) :41-53
[5]   The β2-adrenergic receptor controls inflammation by driving rapid IL-10 secretion [J].
Agac, Didem ;
Estrada, Leonardo D. ;
Maples, Robert ;
Hooper, Lora V. ;
Farrar, J. David .
BRAIN BEHAVIOR AND IMMUNITY, 2018, 74 :176-185
[6]   Locus coeruleus at asymptomatic early and middle Braak stages of neurofibrillary tangle pathology [J].
Andres-Benito, P. ;
Fernandez-Duenas, V. ;
Carmona, M. ;
Escobar, L. A. ;
Torrejon-Escribano, B. ;
Aso, E. ;
Ciruela, F. ;
Ferrer, I. .
NEUROPATHOLOGY AND APPLIED NEUROBIOLOGY, 2017, 43 (05) :373-392
[7]   Optogenetic stimulation of GABA neurons can decrease local neuronal activity while increasing cortical blood flow [J].
Anenberg, Eitan ;
Chan, Allen W. ;
Xie, Yicheng ;
LeDue, Jeffrey M. ;
Murphy, Timothy H. .
JOURNAL OF CEREBRAL BLOOD FLOW AND METABOLISM, 2015, 35 (10) :1579-1586
[8]  
Arimura K, 2012, CURR NEUROVASC RES, V9, P1
[9]   Rat brain pericyte cell lines expressing β2-adrenergic receptor, angiotensin II receptor type 1A, klotho, and CXCR4 mRNAs despite having endothelial cell markers [J].
Asashima, T ;
Iizasa, H ;
Terasaki, T ;
Nakashima, E .
JOURNAL OF CELLULAR PHYSIOLOGY, 2003, 197 (01) :69-76
[10]   Locus coeruleus: From global projection system to adaptive regulation of behavior [J].
Aston-Jones, G. ;
Waterhouse, B. .
BRAIN RESEARCH, 2016, 1645 :75-78