Abnormal Regulation of the Sympathetic Nervous System in α2A-Adrenergic Receptor Knockout Mice

1999 ◽  
Vol 56 (1) ◽  
pp. 154-161 ◽  
Author(s):  
John D. Altman ◽  
Anne U. Trendelenburg ◽  
Leigh MacMillan ◽  
Dan Bernstein ◽  
Lee Limbird ◽  
...  
Cell Reports ◽  
2019 ◽  
Vol 28 (12) ◽  
pp. 3120-3130.e5 ◽  
Author(s):  
Leandro Pires Araujo ◽  
Juliana Terzi Maricato ◽  
Marcia Grando Guereschi ◽  
Maisa Carla Takenaka ◽  
Vanessa M. Nascimento ◽  
...  

2019 ◽  
Vol 133 (9) ◽  
pp. 1097-1113 ◽  
Author(s):  
Ken Chen ◽  
Dongdong Sun ◽  
Shuang Qu ◽  
Yue Chen ◽  
Jialiang Wang ◽  
...  

Abstract Environmental temperature plays a role in the variation of blood pressure. Maternal cold stress could affect the physiological phenotype of the offspring, including blood pressure elevation. In the present study, we found that adult offspring of dams exposed to cold have increased systolic and diastolic blood pressure, and decreased urine volume and sodium excretion, accompanied by increased heart rate and heart rate variability, secondary to increased activity of the sympathetic nervous system. Renal denervation or adrenergic receptor blockade decreased blood pressure and increased sodium excretion. The increase in peripheral sympathetic nerve activity can be ascribed to the central nervous system because administration of clonidine, a centrally acting α2 adrenergic receptor agonist, lowered blood pressure to a greater degree in the prenatal cold-exposed than control offspring. Moreover, these prenatal cold-exposed offspring had hypothalamic paraventricular nucleus (PVN) disorder because magnetic resonance spectroscopy showed decreased N-acetylaspartate and increased choline and creatine ratios in the PVN. Additional studies found that prenatal cold exposure impaired the balance between inhibitory and excitatory neurons. This led to PVN overactivation that was related to enhanced PVN-angiotensin II type 1 (AT1) receptor expression and function. Microinjection of the AT1 receptor antagonist losartan in the PVN lowered blood pressure to a greater extent in prenatal cold-exposed that control offspring. The present study provides evidence for overactive peripheral and central sympathetic nervous systems in the pathogenesis of prenatal cold-induced hypertension. Central AT1 receptor blockade in the PVN may be a key step for treatment of this type hypertension.


2002 ◽  
Vol 283 (5) ◽  
pp. H1838-H1845 ◽  
Author(s):  
Patricia C. Brum ◽  
Jon Kosek ◽  
Andrew Patterson ◽  
Daniel Bernstein ◽  
Brian Kobilka

α2A-Adrenergic receptors (ARs) in the midbrain regulate sympathetic nervous system activity, and both α2A-ARs and α2C-ARs regulate catecholamine release from sympathetic nerve terminals in cardiac tissue. Disruption of both α2A- and α2C-ARs in mice leads to chronically elevated sympathetic tone and decreased cardiac function by 4 mo of age. These knockout mice have increased mortality, reduced exercise capacity, decreased peak oxygen uptake, and decreased cardiac contractility relative to wild-type controls. Moreover, we observed significant abnormalities in the ultrastructure of cardiac myocytes from α2A/α2C-AR knockout mice by electron microscopy. Our results demonstrate that chronic elevation of sympathetic tone can lead to abnormal cardiac function in the absence of prior myocardial injury or genetically induced alterations in myocardial structural or functional proteins. These mice provide a physiologically relevant animal model for investigating the role of the sympathetic nervous system in the development and progression of heart failure.


2002 ◽  
Vol 282 (4) ◽  
pp. R1070-R1076 ◽  
Author(s):  
Sharyn M. Fitzgerald ◽  
Michael W. Brands

We demonstrated previously that induction of diabetes in rats that were treated chronically with the nitric oxide synthase inhibitor N G-nitro-l-arginine methyl ester (l-NAME) causes a severe, progressive increase in mean arterial pressure. This study tested the role of the sympathetic nervous system in that response. Rats were instrumented with chronic artery and vein catheters and assigned randomly to four diabetic groups pretreated with vehicle (D), l-NAME (D+L), the α1- and β-adrenergic receptor antagonists terazosin and propranolol (D+B), or l-NAME, terazosin, and propranolol (D+LB). After baseline measurements were taken, rats were pretreated; 6 days later, streptozotocin was administered and 3 wk of diabetes ensued. D+L rats had a marked, progressive increase in arterial pressure that by day 20 was ∼60 mmHg greater than in D rats. The pressor response to l-NAME was significantly attenuated in diabetic rats cotreated with adrenergic blockers. During week 1 of diabetes, plasma renin activity (PRA) increased and then returned to control levels in D rats. PRA increased progressively in D+L rats, and chronic adrenergic receptor blockade restored the biphasic renin response in D+LB rats. These results suggest that the sympathetic nervous system may be involved in the hypertensive response to onset of diabetes inl-NAME-treated rats, possibly through control of renin secretion.


Blood ◽  
2008 ◽  
Vol 112 (11) ◽  
pp. 4-4 ◽  
Author(s):  
Simon Mendez-Ferrer ◽  
Grigori N. Enikolopov ◽  
Sergio Lira ◽  
Paul S. Frenette

Abstract The identity of mesenchymal stem cells (MSCs) and their relationship to hematopoietic stem cells (HSCs) remain poorly defined. In addition, there are discrepancies regarding the cellular constituents of the HSC niche, with studies suggesting a role for bone-lining osteoblasts, and other data implicating sinusoidal endothelial and adventitial reticular cells. Previous work from our group has demonstrated that the sympathetic nervous system (SNS) is critical for both physiological and enforced egress of HSCs from the bone marrow (BM). HSC mobilization induced by G-CSF requires signals from the SNS (Katayama et al. 2006; Cell124:407–21). Physiological release of HSCs into the bloodstream follows circadian oscillations governed by the molecular clock and triggered by cyclical norepinephrine secretion by the SNS in the BM, activation of the β3-adrenergic receptor (encoded in Adrb3), degradation of Sp1 transcription factor and downregulation of Cxcl12 (Mendez-Ferrer et al. 2008; Nature452:442–7). Here, we have identified the cell targeted by the SNS in the BM as a perivascular stromal cell expressing Nestin, an intermediate filament protein characteristic of neuroectoderm-derived stem cells. Using transgenic mice expressing GFP under the regulatory elements of the Nestin promoter, we show that virtually all catecholaminergic fibers in the BM are associated with Nestin+ cells, which represent 4.0 ± 0.6% of BM CD45− cells and 0.08 ± 0.01% of total BM nucleated cells, as determined by FACS analyses. Quantitative real-time PCR (QPCR) analyses have revealed a ~30-fold higher expression of the gene encoding the chemokine CXCL12 in Nestin+ cells than in the rest of BM CD45− cells, whereas Adrb3 was exclusively expressed in Nestin+ cells and not detectable in Nestin− CD45− cells. Detailed immunofluorescence analyses of the spatial distribution of HSCs in longitudinal BM sections revealed that 60% of CD150+ CD48−/Lineage− cells were directly attached to Nestin+ cells, and 90% of HSCs were located within 5 cell diameters from Nestin+ cells in the endosteal or sinusoidal regions of the BM (n=30). In long-term BM cultures, Nestin+ cells were rare, but located near HSCs/progenitors-enriched cobblestone-forming areas. BM Nestin+ cells were associated with HSCs not only physically but also functionally, because core HSC retention signals (Cxcl12, Kitl, Vcam1, Angpt1, Il7) were highly expressed by Nestin+ cells and significantly downregulated during G-CSF-induced mobilization, whereas the expression of the same genes was significantly lower and was not downregulated by G-CSF in Nestin− CD45− cells, as measured by QPCR. A non-selective β- or a selective β3-adrenergic receptor agonist also downregulated these core HSC retention genes, underscoring the role of the SNS in regulating HSC adhesion in the BM niche. Cell sorting of Nestin+ CD45− and Nestin− CD45− cells revealed that all the mesenchymal progenitor activity of the bone marrow (CFU-F) was contained in the Nestin+ cell fraction. Further, Nestin+ cells could robustly differentiate into osteoblasts and adipocytes. Lineage-tracing studies using a Nestin-CRE transgenic line bred to R26R reporter mice have confirmed the contribution of Nestin+ cells to osteoblasts and chondrocytes during development. G-CSF, which induces proliferation of hematopoietic cells in the BM at the expense of non-hematopoietic lineages, significantly downregulated markers of osteoblastic and adipogenic differentiation in BM Nestin+ CD45− cells but not in Nestin− CD45− cells. By contrast, daily administration of parathyroid hormone over five weeks, a treatment previously shown to expand both the osteoblastic and HSC pools, induced proliferation of Nestin+ cells and favored their differentiation into Col1a1-LacZ+ osteoblasts. Finally, we have found that Nestin+ CD45− cells, but not Nestin− CD45− cells, can form self-renewing spheres in clonal density culture, with a frequency similar to other neural crest-derived stem cells. After two weeks in culture, clonal spheres showed spontaneous multilineage differentiation into adipocytes and Col1a1-LacZ+ osteoblasts. Altogether, these results suggest that the HSC niche is composed of a heterotypic MSC-HSC pairing that is tightly regulated by the SNS. This association may reconcile divergent views regarding the vascular and osteoblastic locations of the HSC niche, and its regulation by the SNS might explain the crosstalk between hematopoietic and mesenchymal lineages in the BM during health and disease.


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