Immune aspects of systemic hypertension; a short-review to recent concepts
This review highlights the complex interaction between the renin-angiotensin-aldosterone system and the immune system in hypertension, involving immune cell infiltration and inflammation; further research is needed to clarify mechanisms and identify therapeutic targets.
The renin-angiotensin-aldosterone system (RAAS) and the immune system interact in hypertension through various mechanisms, including inflammation, immune cell infiltration, oxidative stress, and aldosterone-induced hypertension. Further research is needed to fully understand the complex interplay between the RAAS and the immune system in hypertension and to identify potential therapeutic targets. Additionally, T lymphocytes, monocytes, macrophages, dendritic cells, neutrophils, and B lymphocytes are some of the immune cells that have been implicated in hypertension. These immune cells can promote vascular inflammation and remodeling, produce reactive oxygen species and cytokines, and activate the adaptive immune response. Further research is needed to fully understand the role of the immune system in hypertension and to identify potential therapeutic targets.
- Research Article
260
- 10.1161/hypertensionaha.111.187021
- Dec 27, 2011
- Hypertension
Over the past few years noninvasive and invasive techniques have allowed a better appreciation of vascular changes in hypertensive humans and experimental animals.1 Large arteries undergo outward hypertrophic remodeling and increased stiffness with aging,2–4 and in hypertension there may be an acceleration of this process leading to enhanced pulse pressure. A reduced aortic diameter in middle-aged hypertensive subjects may also play a role in increases in pulse pressure through increased specific impedance,5 contradicting the classic hypertensive aortic phenotype characterized by vascular wall degeneration and calcification and increased aortic diameter. In advanced hypertension, however, the elastic laminae undergo duplication and fragmentation, with increased deposition of collagen and fetal (EIIIA) fibronectin, contributing to increased stiffness. Classically the remodeling of small arteries in hypertension has been associated with increased media thickness, but recent studies have demonstrated that 2 types of remodeling are found, inward eutrophic or inward hypertrophic remodeling, depending on whether the media cross-sectional area is enlarged (true hypertrophy).6–9 Although eutrophic remodeling is usually found in essential (primary) hypertension in humans and spontaneously hypertensive rats (SHRs); in secondary hypertension such as in renovascular hypertension, primary aldosteronism, or in pheochromocytoma10; in hypertension associated with diabetes mellitus11,12; and in acromegaly,13 hypertrophic remodeling has been described. In mineralocorticoid hypertension in rodents14,15 and in salt-sensitive Dahl rats,16 in both of which the endothelin (ET) system is activated, remodeling of small arteries is also hypertrophic (see below). Thus, when the renin-angiotensin system is even mildly activated (primary hypertension and SHRs), remodeling is usually eutrophic. In salt-dependent hypertension, diabetes mellitus, and malignant hypertension, all conditions in which the ET system is activated, remodeling is hypertrophic.17 Hyperplasia of vascular smooth muscle cells (VSMCs) is found in small arteries of …
- Research Article
8
- 10.1097/md.0000000000032548
- Jan 20, 2023
- Medicine
Laryngeal cancer (LC) is a malignant tumor that occurs in the head and neck. Laryngeal cancer is one of the most common cancers of the neck and head, and its prognosis has always been poor. The incidence of LC increased gradually and showed an early rising trend. Laryngeal cancer is rarely studied in relation to immunity, Malignant tumors will change the state of the human body in various ways to adapt to their own survival and avoid the immune system. This study aims to explore the immune molecular mechanism of laryngeal cancer through bioinformatics analysis. The gene expression data was downloaded for 3 microarray datasets: GSE27020, GSE59102, and GSE51985. CIBERSORT algorithm was performed to evaluate immune cell infiltration in tissues between LC and healthy control (HC). Differentially expressed genes (DEGs) were screened. Functional correlation of DEGs were analyzed by Gene Ontology, Gene Set Enrichment Analysis and Kyoto encyclopedia of genes and genomes. Candidate biomarkers were identified by cytoHubba of Cytoscape. Spearman correlations between the above biomarkers and infiltrating immune cells were explored using R software analysis. The immune cell types of LC and HC were significantly different. Twenty-one DEGs were obtained by cross-screening. The function of DEGs is closely related to the number of immune cells. Five central genes (TNNT3, TNNI2, Desmin, matrix metallopeptidase 9 and cytotoxic T lymphocyte antigen 4) were screened. The HUB gene was demonstrated to have the ability to diagnose LC and HC with good specificity and sensitivity. The correlation between immune cells and biomarkers showed that hub gene was positively correlated with macrophages and dendritic cells, and negatively correlated with CD4 + T cell. TNNT3, TNNI2, Desmin, matrix metallopeptidase 9 and cytotoxic T lymphocyte antigen 4 can be used as diagnostic biomarker for LC. Macrophages, dendritic cells and CD4 + T cell may participate in the occurrence and development of LC.
- Research Article
194
- 10.1161/hypertensionaha.118.10266
- Mar 26, 2018
- Hypertension
Angiotensin II is the most important endocrine ligand in the renin–angiotensin system (RAS), contributing to the development of several cardiovascular diseases including hypertension.1 Angiotensin II mediates its signal transduction and functions via the angiotensin II receptors.2 Historically, the presence of 2 subtypes of angiotensin II receptors were pharmacologically recognized based on the sensitivity to the first orally active nonpeptide angiotensin II receptor antagonist, losartan. The losartan-sensitive receptor was termed AT1 (angiotensin II receptor type 1) receptor. It was assumed to be a heterotrimeric GPCR (G protein–coupled receptor) because it generates inositol triphosphate and diacylglycerol, leading to intracellular Ca2+ elevation and protein kinase C activation, respectively. Most known physiological and pathophysiological functions of angiotensin II, including stimulation of vasoconstriction and salt and water reabsorption, are mediated through the AT1 receptor. The losartan-insensitive receptor was termed AT2 receptor, whereas its G protein coupling remains unclear.1,3,4 In 1991, 2 research groups in the United States independently isolated cDNA (termed AGTR1) encoding the mammalian AT1 receptor.5,6 Subsequently, rat AT2 receptor cDNA (AGTR2) was cloned in 1993.7,8 This pioneer work revealed complete amino acid sequences of the angiotensin II receptor subtypes belonging to the 7-transmembrane GPCR superfamily. In the early 1990s, several studies reported that AT1 receptor elicits tyrosine phosphorylation of multiple proteins and activation of MAPK (mitogen-activated protein kinase; eg, p42/p44 MAPK)/ERK (extracellular signal–regulated kinase; eg, ERK1/2) in various cell types including vascular smooth muscle cells (VSMC). The early 1990s also saw the establishment of the concept that angiotensin II via the AT1 receptor has a direct action on cardiac myocytes, fibroblasts, and VSMCs causing hypertrophic and fibrotic cardiovascular remodeling.9,10 The cardiovascular remodeling caused by angiotensin II seemed to be …
- Research Article
13
- 10.1161/hypertensionaha.118.11782
- Mar 1, 2019
- Hypertension
Paying the Toll for Inflammation
- Abstract
3
- 10.1182/blood-2024-201812
- Nov 5, 2024
- Blood
W-NK1 Choreographs Innate and Adaptive Immune Responses to Provide a Robust and Durable Anti-AML Response
- Research Article
263
- 10.1053/j.gastro.2007.02.043
- Feb 22, 2007
- Gastroenterology
T84-Intestinal Epithelial Exosomes Bear MHC Class II/Peptide Complexes Potentiating Antigen Presentation by Dendritic Cells
- Research Article
149
- 10.1111/j.1365-2796.2008.01945.x
- Apr 10, 2008
- Journal of Internal Medicine
Atherosclerosis is a chronic inflammatory disease characterized by accumulation of oxidized lipoproteins, increased cell death and hypertrophic degeneration of the arterial intima. The disease process is associated with local formation of modified self antigens that are targeted by both innate and adaptive immune responses. Although it remains to be firmly established it is likely that these autoimmune responses initially have a beneficial effect facilitating the removal of potentially harmful rest products from oxidized LDL and dying cells. However, studies performed on hypercholesterolaemic mice deficient in different components of the immune system uniformly suggest that the net effect of immune activation is pro-atherogenic and that atherosclerosis, at least to some extent, should be regarded as an autoimmune disease. These observations point to the possibility of developing new treatments for atherosclerosis based on modulation of immune responses against plaque antigens, an approach presently tested clinically for several other chronic inflammatory diseases with autoimmune components. Pilot studies in animals have provided promising results for both parental and oral vaccines based on oxidized LDL antigens. The time when this concept is ready for clinical testing is rapidly approaching but it will be important not to underestimate the difficulties that will be encountered in transferring the promising results from experimental animals into humans.
- Research Article
99
- 10.3389/fimmu.2017.00231
- Mar 8, 2017
- Frontiers in Immunology
In addition to locally controlling the tumor, hypofractionated radiotherapy (RT) particularly aims to activate immune cells in the RT-modified microenvironment. Therefore, we examined whether hypofractionated RT can activate dendritic cells (DCs), induce immune cell infiltration in tumors, and how the chronology of immune cell migration into tumors occurs to gain knowledge for future definition of radiation breaks and inclusion of immunotherapy. Colorectal cancer treatments offer only limited survival benefit, and immunobiological principles for additional therapies need to be explored with preclinical models. The impact of hypofractionated RT on CT26 colon cancer tumor cell death, migration of DCs toward supernatants (SN) of tumor cells, and activation of DCs by SN were analyzed. The subcutaneous tumor of a BALB/c-CT26 mouse model was locally irradiated with 2 × 5 Gy, the tumor volume was monitored, and the infiltration of immune cells in the tumor was determined by flow cytometry daily. Hypofractionated RT induced a mixture of apoptotic and necrotic CT26 cells, which is known to be in particular immunogenic. DCs that migrated toward SN of CT26 cells particularly upregulated the activation markers CD80 and CD86 when in contact with SN of irradiated tumor cells. After hypofractionated RT, the tumor outgrowth was significantly retarded and in the irradiated tumors an increased infiltration of macrophages (CD11bhigh/F4-80+) and DCs (MHC-II+), but only between day 5 and 10 after the first irradiation, takes place. While CD4+ T cells migrated into non-irradiated and irradiated tumors, CD8+ T cells were only found in tumors that had been irradiated and they were highly increased at day 8 after the first irradiation. Myeloid-derived suppressor cells and regulatory T cells show regular turnover in irradiated and non-irradiated tumors. Tumor cell-specific anti-IgM antibodies were enhanced in the serum of animals with irradiated tumors. We conclude that hypofractionated RT suffices to activate DCs and to induce infiltration of innate and adaptive immune cells into solid colorectal tumors. However, the presence of immune cells in the tumor which are beneficial for antitumor immune responses is timely restricted. These findings should be considered when innovative multimodal tumor treatment protocols of distinct RT with immune therapies are designed and clinically implemented.
- Peer Review Report
- 10.7554/elife.74915.sa0
- Dec 30, 2021
The ovarian immune system ages while coping with the two main challenges of the aging ovary before menopause, the inflammatory stimulations due to repeated cycles and the increasing need for clearance of accumulating atretic follicles.
- Discussion
8
- 10.1161/hypertensionaha.114.03688
- Jun 2, 2014
- Hypertension
See related article, pp 384–390 There is an ever expanding literature base implicating T lymphocytes in the development and progression of numerous cardiovascular diseases, including hypertension. T lymphocytes contribute to the development of hypertension in genetic, angiotensin II (Ang-II), and salt-sensitive male experimental animals.1 Among the most definitive studies implicating T lymphocytes in hypertension are studies conducted in Rag-1−/− mice, which lack B and T lymphocytes. Guzik et al2 were the first to demonstrate that these mice have a blunted hypertensive response to Ang-II infusion. Adoptive transfer of T lymphocytes into male Rag−/− mice restored the hypertensive response to Ang-II; adoptive transfer of B lymphocytes did not alter the blood pressure (BP) response. Although low-grade inflammation, and T lymphocytes in particular, are now a recognized hallmark of hypertension, the majority of basic science literature in this field has been conducted exclusively in males, despite the fact that females account for ≈50% of all hypertensive cases in the United States. Therefore, it was with great interest that we read the study by Pollow et al3 in the current issue of Hypertension , which was designed to determine (1) whether there are sex differences in the ability of T lymphocytes to induce Ang-II–dependent hypertension and (2) whether sex affects central or renal T lymphocytes infiltration after Ang-II hypertension. Of particular interest, they found that male mice exhibited a significant increase in BP and renal damage to Ang-II after the adoptive transfer of CD3+ T lymphocytes from wild-type male mice. In contrast, BP responses and renal injury to Ang-II were not significantly altered in female Rag−/− mice after adoptive transfer of T lymphocytes from males. Male Rag−/− mice also had greater renal CD3+, CD4+, CD8+, and T-regulatory cells (Tregs) …
- Research Article
50
- 10.1111/j.1439-0531.2012.02089.x
- Jul 25, 2012
- Reproduction in Domestic Animals
Life or Death Decisions in the Corpus Luteum
- Research Article
54
- 10.1046/j.1365-2265.2001.01345.x
- Jul 1, 2001
- Clinical endocrinology
In the past decade, it became apparent that immune mediated cell death in a number of autoimmune endocrine diseases was due to the induction of apoptosis in target organ cells. This was conclusively demonstrated for thyroid follicular cells in Hashimoto’s (destructive autoimmune) thyroiditis, but the mechanisms underlying this cell death were not clear. Several hypotheses were put forth involving the role of deathsignalling molecules expressed on thyroid cells. While many of these hypotheses did not hold up under close scrutiny, this stimulated work on the molecular mechanisms of thyroid destruction. Several apoptosis signalling pathways, initiated by molecules such as Fas ligand (FASL) and tumour necrosis factor (TNF)-related apoptosis-inducing ligand (TRAIL), have been shown to be active in thyroid cells and may be involved in destructive thyroiditis. In this review we will attempt to sort out the inconsistencies in published data on the mechanisms of death-receptor mediated thyroid destruction. We will also review recently proposed models of these mechanisms, and outline directions for research that we feel might lead to discoveries of benefit to the clinician in the treatment and prevention of destructive autoimmune thyroiditis.
- Research Article
77
- 10.1016/j.cger.2010.08.004
- Nov 18, 2010
- Clinics in Geriatric Medicine
The Frail Renin-Angiotensin System
- Research Article
27
- 10.1161/circulationaha.113.003364
- Dec 16, 2013
- Circulation
Cardiovascular diseases (CVDs) are one of the leading causes of mortality worldwide.1 It has been so for decades, notwithstanding a wide array of – mostly preventive – treatment modalities targeting known risk factors, such as hyperlipidemia, type 2 diabetes mellitus, hypertension, or obesity. Recent technical and conceptual advances have unveiled important contributions of the immune system in the pathophysiology of a variety of CVDs such as atherosclerosis, ischemic stroke, chronic heart failure, and other myocardial conditions like myocardial ischemia and reperfusion, viral myocarditis, and cardiac transplantation.2–4 In many of these disorders, so-called danger-associated molecular patterns (DAMPs), released from necrotic tissue and dying cells, can lead to the activation of certain immune cell populations such as monocytes/ macrophages, granulocytes, and T cells, thus aggravating ongoing inflammatory processes at the lesion site. Dendritic cells (DCs) are key modulators of immunity, pivotal in directing innate and adaptive immune responses against microbial, viral, but also modified self-antigens present at the sites of injury. Given the tissue trauma underlying various CVDs, it is not surprising that recent observations have allocated a regulatory role for DCs in CVD-associated immune responses. Interestingly, nondiseased arteries of young individuals were seen to host a network of resident vascular DCs (CD1a+ S100+ lag+ CD31− CD83− CD86−),5 representing a phenotype related to Langerhans cells in the skin. In agreement, monocyte-derived CD11c+ CD68+ dendritic cells could be detected in the atherosclerosis-prone lesser curvature and aortic sinus in inbred atherosclerosis-susceptible (C57Bl/6), but not resistant mouse strains (balb/c).6 Murine vascular resident DCs express an immature phenotype with low expression of costimulatory molecules, and are present in the subendothelial space with occasional probing into the vascular lumen. DCs have …
- Research Article
685
- 10.1016/j.neuron.2009.08.039
- Oct 1, 2009
- Neuron
Immune Activation in Brain Aging and Neurodegeneration: Too Much or Too Little?