|
|
||||||||
REVIEW |
Breast Cancer Biology Group, Kings College London School of Medicine, Guys Hospital, 3rd Floor, Thomas Guy House, London SE1 9RT, UK
(Requests for offprints should be addressed to M J Grimshaw; Email: matthew.grimshaw{at}cancer.org.uk)
| Abstract |
|---|
|
|
|---|
| Endothelins and cancer |
|---|
|
|
|---|
The endothelin (ET) family (Table 1
) consists of three 21 amino acid (aa) peptides (ET-1, ET-2 and ET-3), two G-protein-coupled receptors (ET-RA and ET-RB) and two membrane-bound ET-converting enzymes (ECE-1 and ECE-2; Kedzierski & Yanagisawa 2001). ET-1 was initially found in the conditioned medium of cultured endothelial cells and its activity as a potent vasoconstrictive peptide was described (Itoh et al. 1988); ET-2 and ET-3 were rapidly described following discovery of ET-1 (Inoue et al. 1989), and further potential roles in a variety of tissues have been described (Kedzierski & Yanagisawa 2001). The three ET isoforms, which are highly conserved in human, rat and mouse (Saida et al. 2000), derive from three separately regulated genes yet have a similar structure (Inoue et al. 1989): 21 aa peptides with a hydrophobic C-terminus and two cysteine bridges at the N-terminus (Fig. 1
). The peptide sequences of ET-2 and ET-3 differ from ET-1 by two and six residues respectively.
|
|
A novel endothelin peptide, ET-1(131), comprises 31 aa and is derived from hydrolysis of big ET-1 by chymase. Although ET-1(131) has been reported to have biological activity via direct or indirect mechanisms, the role of ET-1(131) is as yet relatively unknown. It is of note, however, that ET-1(131) may be chemotactic for both neutrophils and monocytes (Cui et al. 2001).
The gene for each endothelin has a distinct pattern of tissue expression: ET-1 is expressed by endothelial cells of many organs (Kedzierski & Yanagisawa 2001); ET-2 in the ovary (Ko et al. 2006) and intestine (Uchide et al. 1999) and ET-3 is found in the brain (Shinmi et al. 1989). Endothelins and their receptors are also expressed by mobile inflammatory cells such as monocytes and macrophages (Ehrenreich et al. 1990, Grimshaw et al. 2002a). There is a relatively low basal level of synthesis of endothelins but these genes are readily inducible by inflammatory stimuli.
Two receptors for endothelinshave been characterised: ET-RA (also known as EDNRA or ETAR) and ET-RB (EDNRB, ETBR). Each receptor contains transmembrane domains comprising seven stretches of 2027 aa hydrophobic residues and has an N-terminal signal sequence and long extracellular domain. Endothelins bind these receptors with varying affinity: ET-RA binds ET-1
ET-2>ET-3, but ET-RB shows no selective affinity for any ET subtype. Binding of the ligands to these g-protein-coupled receptors may modulate several overlapping signalling pathways resulting in the activation ofphospholipase C and MAPK (mitogen-activated protein kinase) pathways, an increase in intracellular calcium and the induction of immediate early genes (Masaki et al. 1999, Nelson et al. 2003).
Physiological roles of endothelins
Endothelins have a number of physiological roles including: i) blood vessels: they maintain vasoconstriction, ii) heart: they affect the force and rate of contraction of the heart, iii) lungs: they regulate the tone of airways and blood vessels, iv) kidney: they control water and sodium excretion, and acidbase balance and v) brain: they modulate cardio-respiratory centres and hormone release.
Roles of endothelins in cancer
Numerous tumours produce one or more of the endothelins and their receptors, and there are many potential roles in cancer: i) mitogenesis: endothelins have a mitogenic effect on both tumour and stromal cells and enhance tumour growth, ii) angiogenesis: endothelins modulate tumour angiogenesis, both directly through stimulation of endothelial cells, and indirectly through the induction of vascular endothelial growth factor (VEGF), iii) invasion and metastasis: stimulation of tumour cells with endothelins leads to an invasive phenotype via several autocrine and paracrine mechanisms including activation of matrix metalloproteinases (MMPs), iv) protection from apoptosis: endothelins can protect several cell types including tumour cells, macrophages and endothelial cells from apoptosis induced by cellular stresses including hypoxia and serum starvation and v) immune modulation: trafficking, differentiation and activation of tumour-infiltrating immune cells are all modulated by endothelins.
However, the expression and actions of endothelins in cancer are incompletely described and are tumour-type specific. Endothelin expression is increased in many types of tumour, yet in several types of tumour, expression of the endothelin receptors is decreased in neoplastic tissue. For instance, in carcinomas of the breast both ET-RA and ET-RB are increased, yet in prostate cancer ET-RB is decreased (Kopetz et al. 2002) and EDNRB is often methylated (Nelson et al. 1997), while in lung cancer, ET-RA is downregulated (Ahmed et al. 2000). The function of the ET-RB receptor in tumours is particularly enigmatic; in some cases, such as breast cancer, ligand-binding to ET-RB initiates several pro-tumour actions, such as promoting invasion (Grimshaw et al. 2004), yet in prostate cancer, the loss of ET-RB expression is postulated to increase ET-1 peptide in the tumour due to the loss of endothelin clearance function of ET-RB (Nelson et al. 1997).
Several different cell types within solid tumours may contribute to endothelin expression including not only the tumour cells but also fibroblasts, tumour-associated macrophages (TAMs) and endothelial cells. The tumour microenvironment, particularly hypoxia and inflammatory cytokines, may further influence endothelin expression by the tumour and stromal cells.
Endothelin receptor antagonists
The role of endothelins in vasoconstriction has led to the development of several antagonists of the endothelin receptors which are currently under investigation for the treatment of hypertension, heart failure and renal disease (Wessale et al. 2002). Bosentan, a mixed ET-RA/RB antagonist, is approved for treatment of pulmonary hypertension and is in clinical trials for malignancies including metastatic melanoma (Kefford et al. 2006). Of the antagonists available, it is the modified peptide-based ET-RA antagonist BQ123 (Ihara et al. 1992a,b) and ET-RB antagonist BQ788 (Ishikawa et al. 1994) that have been used extensively both in vitro and in vivo to study cancer, although these are not in clinical development. Atrasentan, a highly selective ET-RA antagonist, has been given to cancer patients in phase II trials for prostate cancer and delayed time to progression (Norman 2002). Phase III trials for hormone-refractory prostate cancer are underway (Jimeno & Carducci 2005).
Endothelin receptor antagonists inhibit proliferation of Kaposis sarcoma cells (Bagnato et al. 2001), Ewings sarcoma and neuroblastoma cells (Berry & Burchill 2002), melanoma cells (Lahav et al. 1999) and ovarian carcinoma cells (Bagnato et al. 1999).
Endothelins and HIF-1
Transcriptional regulation of numerous hypoxia-responsive genes, including VEGF and ET-1, is via the critical mediator of hypoxia-induced transcription, hypoxia-inducible factor (HIF)-1, which is a dimer of
and ß subunits; HIF-1ß is present in all cells and is stable under normoxia, but HIF-1
is rapidly ubiqui-tinated and degraded in the presence of oxygen. Hypoxia stabilises the HIF-1
monomer, leading to heterodimerisation and the formation of the HIF-1 complex that can then initiate transcription of genes whose promoter contains a hypoxia response element (HRE; Wenger 2000). There is a reciprocal relationship between endothelin expression and HIF activity: not only does HIF mediate transcription of endothelins, but endothelins stabilise the HIF-1
monomer during normoxia leading to HIF-mediated transcription of angiogenic genes and chemokine receptors.
Hypoxia induces endothelin transcription in several cell types including endothelial cells (Kourembanas et al. 1991) and tumour cells (Koong et al. 2000, Grimshaw et al. 2002b). There is a functioning proximal HRE in the antisense strand of the promoter of ET-1 (Aversa et al. 1997, Hu et al. 1998) and induction of endothelin expression by hypoxia is via HIF-1 (Minchenko & Caro 2000). ET-2 is stimulated by hypoxia in squamous cell carcinoma cells (Koong et al. 2000) and breast carcinoma cells, and in vivo endothelin expression co-localises with hypoxic areas of murine breast tumours (Grimshaw et al. 2002b). The upregulation of ET-2 bears the characteristics of being HIF-dependent (i.e. it is also induced by the iron chelator cobalt chloride) but HIF-1
stabilisation and HIF/HRE binding has not yet been conclusively proven.
No HRE has yet been described in the promoter of either endothelin receptor, but in certain cell types, both receptors may be induced by hypoxia (Shibaguchi et al. 2000, Grimshaw et al. 2002b). This may, however, be a secondary effect due to the increase in endothelin production seen under hypoxic conditions: endothelins themselves induce endothelin receptor production by breast carcinoma cells (Grimshaw et al. 2004). It is also possible that one or more of the cytokines induced by hypoxia stimulate receptor production. It has been reported that ET-RA mRNA and protein is induced by cobalt chloride (an iron chelator which inhibits the HIF-degradation pathway) in several breast cancer cell lines (Wulfing et al. 2005c).
Although hypoxia is the major factor that stabilises HIF-1
, other stimuli such as growth factors, hormones and nitric oxide may stabilise HIF-1
and induce transcription of HIF-dependent genes. One such factor that stabilises HIF-1
is, in fact, ET-1 which in vitro induces VEGF transcription via ET-RA in normoxic ovarian carcinoma cells in a HIF-1-dependent manner by an extent comparable with hypoxia (Spinella et al. 2002); these effects are inhibited by BQ123 (Fig. 2
). Inhibition of human ovarian tumour growth in nude mice after treatment with Atrasentan is associated with reduced VEGF and microvessel density (Spinella et al. 2004b).
|
protein and subsequently upregulates VEGF, COX-1/COX-2 (cyclo-oxygenase) protein expression and COX-2 promoter activity, PGE2 production, and does so to a greater extent under hypoxia (Spinella et al. 2007). Silencing HIF-1
by siRNA prevents ET-mediated COX-2 transcriptional activity, PGE2 and VEGF production, and MMP activation. COX-1/COX-2 inhibitors block ET-induced PGE2 and VEGF secretion, MMP activation and cell invasion, indicating that both enzymes function as downstream mediators of ET-induced invasive properties. In melanoma xenografts, the ET-RB antagonist A-192621 suppresses HIF-1
accumulation, tumour growth, neovascularisation, VEGF expression and MMP-2.
In human breast tumour cells, CCR7 (C-C chemokine receptor 7) is upregulated by ET-1 stimulation via ET-RA and this is HIF-dependent (Wilson et al. 2006). Endothelin-mediated induction of CCR7 leads to increased chemotaxis and invasion towards the CCR7 ligands CCL19 and CCL21. Release of CCL21 (C-C chemokine 21) by the lymph nodes in conjunction with CCR7 expression by tumour cells is thought to modulate the organ specificity of breast cancer metastases (Muller et al. 2001). Expression of ET-1 and CCR7 correlate in primary breast tumours and are associated with the presence of lymph node metastases (Wilson et al. 2006). A high level of HIF-1
is a poor prognostic factor in several malignancies including breast cancer (Bos et al. 2001) as is expression of the endothelin system (Wulfing et al. 2003).
| Advances in endothelin-based therapeutic strategies |
|---|
|
|
|---|
The role of endothelins has been studied in both the normal and transformed prostate. Endothelins are produced in the prostate gland by epithelial cells and are found in high concentrations in seminal fluid (up to 5 µg/l; Casey et al. 1992). ET-RA and ET-RB are found in the normal tissue, but in the malignant prostate, there is a loss of ET-RB and increased levels of ET-1 (Nelson et al. 1997). Proposed roles include growth promotion, apoptosis inhibition, bone formation and stimulation of nociceptive receptors. ET-1 can act alone as a mitogen, but its effects are the greatest as a co-mitogen with a variety of growth factors, including bFGF, IGFs and PDGF (basic fibroblast growth factor, insulin-like growth factor, platelet-derived growth factor; Kopetz et al. 2002). ET-1 also alters the balance of osteoblasts and osteoclasts to favour new bone formation, which is a characteristic of the metastatic disease (Guise et al. 2003). In the PC3 human prostate cancer cell line, ET-1 is upregulated by IL-1ß (interleukin-1ß), tumour necrosis factor-
and transforming growth factor-ß (Le Brun et al. 1999), all of which may be found in the tumour microenvironment.
Phase III clinical trials indicate that ET-RA antagonists used in prostate cancer are well tolerated but with mild side effects related to vasoconstrictive effects of ET-1 (Lassiter & Carducci 2003). Atrasentan delays time to progression in prostate cancer in phase III clinical trials (Jimeno & Carducci 2005). A randomised phase II study of Atrasentan alone or in combination with zoledronic acid in men with metastatic prostate cancer showed no evidence for additive or synergistic effects of combination therapy with Atrasentan and zoledronic acid on bone turnover markers (Michaelson et al. 2006). However, ET-RA blockade enhances taxane effects in prostate cancer in vitro and in vivo (Akhavan et al. 2006). Endothelins modulate nociception and have been implicated in pain associated with prostate carcinoma; peripheral ET-RA antagonism attenuates carcinoma-induced pain (Schmidt et al. 2007).
Ovarian carcinoma
Ovarian carcinomas secrete ET-1, which acts as an autocrine growth factor for ovarian carcinoma cells via ET-RA (Bagnato et al. 1995, Moraitis et al. 1997) and also has a paracrine growth effect on the fibroblastic cells of ovarian cancer (Moraitis et al. 1999). Such fibroblasts express both receptors, and antagonism of either inhibits endothelin-stimulated growth. However, these fibroblast cell lines do not secrete ET-1, and mitogenesis requires a source of endothelin; co-culture of fibroblasts with carcinoma cells increases growth of both populations of cells when compared with either grown in isolation (Moraitis et al. 1999).
ET-1 promotes epithelial-to-mesenchymal transition (EMT) in human ovarian cancer cells (Rosano et al. 2005). An ET-1/ET-RA autocrine pathway drives the EMT in ovarian tumour cells by inducing a fibroblastoid mesenchymal phenotype via an integrin-linked kinase (ILK)-mediated signalling pathway leading to glycogen synthase kinase-3ß inhibition, downregulation of E-cadherin, increased levels of ß-catenin and Snail and suppression of E-cadherin promoter activity.
As well as affecting growth, endothelins acting through ET-RA promote invasion of ovarian tumour cells by upregulating secretion and activation of MMP-2, MMP-9, MMP-3, MMP-7, MMP-13 and MMP-14 (Rosano et al. 2001). In addition, ET-1 increases expression of urokinase-type plasminogen activator, its receptor and plasminogen activator inhibitor type-1 and type-2. ILK functions as a downstream mediator of ET-1 to promote invasive behaviour in ovarian carcinoma (Rosano et al. 2006).
ET-RA is found in both tumour cells and intratumoural vessels, whereas ET-RB is expressed mainly in endothelial cells; a further action of endothelins in ovarian cancer is the induction of angiogenesis via HIF-1
and VEGF (Salani et al. 2000, Spinella et al. 2002). In primary and metastatic ovarian tumours, ET-1 expression correlates with neovascularisation and VEGF expression, while high levels of ET-1 are detected in the ascitic fluids and correlate with VEGF ascitic concentration (Salani et al. 2000). Atrasentan decreases growth of ovarian xenografts in mice and this is associated with decreased VEGF and MMP-2 expression, decreased microvessel density and increased apoptotic tumour cells (Rosano et al. 2003b). Combined treatment of Atrasentan/paclitaxel produces additive apoptotic and anti-angiogenic effects.
COX-1 and COX-2 are involved in the production of prostaglandins and play a role in the regulation of tumour progression in several malignancies, including ovarian carcinomas. ET-1 significantly increases the expression of COX-1 and COX-2, the activity of the COX-2 promoter, and the release of PGE2 from ovarian carcinoma cell lines. A COX-2 inhibitor, NS-398, decreases the endothelin-induced PGE2 production and VEGF upregulation. Endothelin-induced COX-2 and PGE2 release are dependent upon the activation of ET-RA and multiple MAPK signal pathways, including ERK1/2 kinase, p38 MAPK and the transactivation of the epidermal growth factor receptor. In human ovarian xenografts, levels of COX-2 are reduced following treatment with Atrasentan (Spinella et al. 2004c). As well as inducing PGE2 in ovarian carcinoma cells, ET-1 increases the expression of PGE2 receptor type 2 (EP2) and type 4 (EP4) via ET-RA (Spinella et al. 2004a); ET-1 and PGE2 stimulate VEGF production principally through EP2 and EP4 receptors.
Breast cancer
In keeping with the polyfunctional nature of endothelins, there are numerous potential consequences of endothelin expression in breast tumours that may lead to a more aggressive tumour cell phenotype. There is increased expression of several members of the endothelin network in invasive ductal carcinoma (IDC) of the breast when compared with the normal breast or non-invasive ductal carcinoma in situ; lymph node metastases of breast cancer have higher a higher degree of endothelin staining still (Alanen et al. 2000, Grimshaw et al. 2002b). Elevated expression of ET-1 is more common in IDCs with larger size, high histological grade and the presence of lymphovascular invasion (Wulfing et al. 2003), and there is increased endothelin in the serum of breast cancer patients with lymph node metastases when compared with those with no lymph node involvement (Hagemann et al. 2005).
Cells expressing endothelins and their receptors in IDC include the tumour cells (Grimshaw et al. 2002b), the CD68+ macrophage infiltrate (Grimshaw et al. 2002a) and the endothelial cells (Bagnato & Spinella 2002).
Endothelins have a role in recruiting TAMs: macrophages express both endothelin receptors and chemotaxis towards endothelins via ET-RB and a MAPK-mediated signalling pathway (Grimshaw et al. 2002a). As with classical chemokines, migration towards endothelins is inhibited by hypoxia and pertussis toxin. Exposure of macrophages to endothelins in vitro leads to increased cell surface HLA-ABC (human leukocyte antigen) indicating an activated phenotype, whilst in patient breast cancer biopsies, foamy activated macrophages accumulate in regions containing tumour cells that express endothelins (Grimshaw et al. 2002a,b). Macrophages not only react to endothelins but also produce endothelins themselves and the TAMs contribute to the endothelins in the breast tumour microenvironment; in contrast, no immunoreactive endothelin can be detected in cell extracts from human neutrophils and lymphocytes (Ehrenreich et al. 1990).
Exposure of tumour cells to endothelins leads to an invasive breast tumour cell phenotype in vitro via both ET-RA and ET-RB (Grimshaw et al. 2004). In vitro, the invasive capacity of breast tumour cell lines correlates with the level of expression of the endothelins and receptors (Hagemann et al. 2005). However, expression of the endothelins and their receptors by benign mammary epithelial cells is not sufficient to elicit an invasive phenotype and it is likely that the endothelins are acting in concert with other factors to induce invasion in tumour cells.
The signalling pathways involved in endothelin-mediated induction of invasion of breast tumour cells are yet to be fully described. However, the induction of invasion involves both receptors and JNK (cJun N=terminal kinase) inhibitors abolish endothelin-mediated invasion of human breast cancer cell line MCF7 cells; however, in co-culture of tumour cells with macrophages, JNK inhibition has only a partial effect (Hagemann et al. 2005). Other inhibitors such as PD98059 (MAPKK inhibitor) and pertussis toxin (G-protein inhibitor) only partially inhibit endothelin-mediated invasion. This indicates that multiple overlapping pathways are activated and that factors in co-culture cooperate with endothelin stimulation to induce invasion.
The increase in invasion stimulated by endothelins involves increased activity of MMPs: endothelins induce MMP-1, MMP-2, MMP-9 and MMP-14 activity in macrophage culture and MMP-14 activity in MCF7 culture. Tissue inhibitor of matrix metalloproteinases-1 release by macrophages and MCF7 cells is also reduced by endothelins. Induction of macrophage MMP activity is modulated via both receptors and can be inhibited by either BQ123 or BQ788, while MMP-14 is induced via ET-RA in MCF7 cells. The non-selective MMP inhibitor FN439 blocks endothelin-mediated invasion (Grimshaw et al. 2004).
The spread and trafficking of tumour cells to potentially metastatic sites is controlled by the expression of chemokines by organs and chemokine receptors by tumour cells (Muller et al. 2001). ET-1 induces CCR7 mRNA and protein expression by breast tumour cells via ET-RA and HIF-1 leading to increased invasion towards the CCR7 ligands CCL19 and CCL21 (Wilson et al. 2006). Further, not only do endothelins induce chemotaxis of tumour cells towards chemo-kines by upregulating the chemokine receptor, but also they increase chemotaxis towards the C-X-C chemokine CXCL12, which is involved in breast cancer metastasis, without increasing expression of the C-X-C chemokine receptor CXCR4 (Grimshaw et al. 2004). The mechanism by which endothelins potentiate the response to chemokines is yet unknown.
In biopsies of invasive breast cancer, the expression of ET-1, ET-RA and ET-RB is associated with increased VEGF expression and vascularity (Wulfing et al. 2004a). Bosentan inhibits tumour vascularisation and bone metastasis in an immunocompetent skinfold chamber model of breast carcinoma cell metastasis (Dreau et al. 2006). In patients with locally advanced breast cancer receiving high-dose neoadjuvant chemotherapy of epirubicin and cyclophosphamide, increased expression of ET-RA in breast carcinomas is associated with resistance to chemotherapy (Wulfing et al. 2004b). ET-RA status may serve as a predictive marker for identifying patients less likely to be responsive to conventional chemotherapy.
Melanoma
Melanoma is an aggressive tumour that can metastasise early in the course of the disease and is resistant to most current therapeutic regimens. Endothelins and ET-RB play a role in melanocyte transformation and melanoma progression. Expression profiling of human melanoma biopsies and cell lines indicates that ET-RB is over-expressed, associated with an aggressive phenotype (Bittner et al. 2000) and is a tumour progression marker (Demunter et al. 2001). ET-1 promotes melanocyte survival and inhibits u.v.-induced apoptosis by activating the phosphatidylinositol 3-kinase (PI3K)-Akt pathway (Kadekaro et al. 2005). Downregulation of E-cadherin expression by u.v.-induced ET-1 (Jamal & Schneider 2002) results into an enhancement of melanoma invasive capability (Hsu et al. 2000). Associated with loss of E-cadherin, activation of ET-RB increases the expression of N-cadherin, MMP-2, MMP-9, and
vß3 and
2ß1 integrins and inhibits intercellular communication by inducing phosphorylation of the gap junction protein connexin 43 (Bagnato et al. 2004). Downstream of ET-RB, activation of focal adhesion kinase and MAPK signalling pathways occurs leading to enhanced cell proliferation, adhesion, migration and MMP-dependent invasion.
In melanoma, upregulation of HIF-1
is associated with neovascularisation, VEGF expression, poor prognosis and resistance to therapy (Giatromanolaki et al. 2003, Postovit et al. 2006). Hypoxia and HIF-1
are essential for melanocyte transformation: only in hypoxic conditions, can the PI3K-Akt pathway transform melanocytes (Bedogni et al. 2005, Michaylira & Nakagawa 2006).
Activation of ET-RB in cultured melanocyte precursors promotes cell proliferation, while inhibiting differentiation, and BQ788 inhibits growth of melanoma cell lines, and this is associated with increases in pigmentation and in the dendritic shape that is characteristic of mature melanocytes (Lahav et al. 1999). In vivo, BQ788 significantly slows growth of human melanoma tumours in nude mice including a complete growth arrest in half of the mice treated. In several melanoma cell lines, inhibition of ET-RB leads to an increase in apoptosis, particularly in metastatic melanoma cells (Lahav et al. 2004); microarray analysis showed that BQ788 treatment leads to a reduction in the expression of survival factors including DNA repair enzymes.
In another study, exogenous ET-1 was found to not be a growth factor for human melanoma cells, but blockade of receptors with Bosentan decreased proliferation, induced apoptosis and potentiated the effects of anti-cancer agents, suggesting that combination therapy of endothelin receptor antagonists with alkylating agents may improve their efficacy (Berger et al. 2006).
Endothelins are also involved in angiogenesis in mouse models of melanoma; inhibition of ET-RB by BQ788 is accompanied by a strong induction of VEGF expression and repression of the angiogenic suppressor gravin (Lahav et al. 2004); these changes correlated with increased angiogenesis in tumours injected with the ET-RB antagonist. ET-1 induces CXCL1 and CXCL8 secretion in melanoma cells via ET-RB (Mangahas et al. 2005). In human melanoma xenografts in mice, the ET-RB antagonist A-192621 suppresses HIF-1
accumulation, tumour growth, neovascularisation, VEGF expression and MMP-2.
A phase II study of Bosentan, a dual endothelin receptor antagonist, as monotherapy in patients with stage IV metastatic melanoma showed disease stabilisation in 6 out of 32 patients (Kefford et al. 2006).
Lung cancer
ET-1 has been proposed as a prognostic marker in non-small cell lung carcinoma (NSCLC; Arun et al. 2004). There is higher expression of ET-1, ET-RA and ECE-1 in lung tumours when compared with the normal tissue, whilst ET-RB is decreased. ET-1 expression is related to both VEGF expression and poor prognosis in NSCLC (Boldrini et al. 2005). Interestingly, ET-1 is increased in the breath condensate of NSCLC patients and this could potentially be used as a non-invasive test for early detection of NSCLC (Carpagnano et al. 2004). Whilst the interactions between endothelins and HIF-1 in lung cancer have not yet been studied, HIF-1 has a pivotal role in lung cancer (Swinson et al. 2004) and endothelin expression is increased in the lungs during episodes of hypoxia (Earley & Resta 2002, Earley et al. 2002).
Bladder cancer
The endothelin system, particularly ET-RB, is over-expressed in bladder cancer. Patients with ET-RB expression tend to have organ-confined tumours and no vascular invasion, and as such are associated with favourable disease-free survival (Wulfing et al. 2005a,b). When metastatic bladder carcinoma cells were injected into mice treated with Atrasentan, there was a dramatic reduction of metastases to the lungs (Titus et al. 2005). HIF-1
expression correlates with angiogenesis and unfavourable prognosis in bladder cancer (Theodoropoulos et al. 2004).
Nasopharyngeal carcinoma
Elevated plasma big ET-1 is associated with distant failure in patients with advanced-stage nasopharyngeal carcinoma (Mai et al. 2006), and there is frequent promoter hypermethylation of the EDNRB gene (Lo et al. 2002).
Kaposis sarcoma
Kaposis sarcoma is a highly angiogenic tumour that expresses endothelins. Both of the endothelin receptors are expressed in the tumour cells and the intratumoural vessels found in Kaposis sarcoma tissue (Bagnato et al. 2001). ET-1 has mitogenic activity for a tumourigenic Kaposis sarcoma cell line: ET-1 induces a dose-dependent increase in 3Hthymidine incorporation and addition of either BQ123 or BQ788 blocks the mitogenic response and reduces the basal growth rate of unstimulated cells, suggesting that both receptors mediate the proliferative signal (Bagnato et al. 2001). ET-1 induces migration and invasion of Kaposi sarcoma cell lines in vitro via both ET-RA and ET-RB, and induction of MMP-2, MMP-3, MMP-7, MMP-9 and MMP-13, as well as MMP-14 (Rosano et al. 2003a).
Neuroblastoma
Human neuroblastoma cells express the ECE-1 (Fisk et al. 2006), which has been suggested to play an important role in amyloid-ß peptide metabolism as one of the amyloid-degrading enzymes. Hypoxia and oxidative stress decrease expression of ECE-1 at the protein level. Serum withdrawal from the incubation medium as well as addition of carbachol or PMA leads to a reduction of the levels of ECE-1 protein in NB7 cells. BQ123 inhibits neuroblastoma cell line proliferation in vitro (Berry & Burchill 2002).
Osteosarcoma
ET-1 promotes MMP-2 and MMP-9 induction involving the transcription factor NF-B (nuclear factor
B) in human osteosarcoma (Felx et al. 2006).
Cervical cancer
In human papillomavirus-positive cervical cancer cells, ET-RA mediates an ET-1-induced mitogenic effect. Atrasentan inhibits growth and angiogenesis in cervical cancer xenografts (Bagnato & Spinella 2002). Reducing ET-1 in the medium of cervical carcinoma cells by overexpressing neutral endopeptidase, which enzymatically inactivates several bioactive peptides including ET-1, decreases proliferation and invasion of these cells (Terauchi et al. 2005).
| Conclusions |
|---|
|
|
|---|
| References |
|---|
|
|
|---|
Akhavan A, McHugh KH, Guruli G, Bies RR, Zamboni WC, Strychor SA, Nelson JB & Pflug BR 2006 Endothelin receptor a blockade enhances taxane effects in prostate cancer. Neoplasia 8 725732.[CrossRef][Web of Science][Medline]
Alanen K, Deng DX & Chakrabarti S 2000 Augmented expression of endothelin-1, endothelin-3 and the endothelin-B receptor in breast carcinoma. Histopathology 36 161167.[CrossRef][Web of Science][Medline]
Arun C, DeCatris M, Hemingway DM, London NJ & OByrne KJ 2004 Endothelin-1 is a novel prognostic factor in non-small cell lung cancer. International Journal of Biological Markers 19 262267.[Web of Science][Medline]
Aversa CR, Oparil S, Caro J, Li H, Sun SD, Chen YF, Swerdel MR, Monticello TM, Durham SK, Minchenko A et al. 1997 Hypoxia stimulates human preproendothelin-1 promoter activity in transgenic mice. American Journal of Physiology 273 L848L855.[Web of Science][Medline]
Bagnato A & Spinella F 2002 Emerging role of endothelin-1 in tumor angiogenesis. Trends in Endocrinology and Metabolism 14 4450.[Web of Science]
Bagnato A, Tecce R, Moretti C, Di Castro V, Spergel D & Catt KJ 1995 Autocrine actions of endothelin-1 as a growth factor in human ovarian carcinoma cells. Clinical Cancer Research 1 10591066.[Abstract]
Bagnato A, Salani D, Di Castro V, Wu-Wong JR, Tecce R, Nicotra MR, Venuti A & Natali PG 1999 Expression of endothelin 1 and endothelin A receptor in ovarian carcinoma: evidence for an autocrine role in tumor growth. Cancer Research 59 720727.
Bagnato A, Rosano L, Di Castro V, Albini A, Salani D, Varmi M, Nicotra MR & Natali PG 2001 Endothelin receptor blockade inhibits proliferation of Kaposis sarcoma cells. American Journal of Pathology 158 841847.
Bagnato A, Rosano L, Spinella F, Di Castro V, Tecce R & Natali PG 2004 Endothelin B receptor blockade inhibits dynamics of cell interactions and communications in melanoma cell progression. Cancer Research 64 14361443.
Bedogni B, Welford SM, Cassarino DS, Nickoloff BJ, Giaccia AJ & Powell MB 2005 The hypoxic micro-environment of the skin contributes to Akt-mediated melanocyte transformation. Cancer Cell 8 443454.[CrossRef][Web of Science][Medline]
Berger Y, Bernasconi CC & Juillerat-Jeanneret L 2006 Targeting the endothelin axis in human melanoma: combination of endothelin receptor antagonism and alkylating agents. Experimental Biology and Medicine 231 11111119.
Berry P & Burchill S 2002 Endothelins may modulate invasion and proliferation of Ewings sarcoma and neuroblastoma. Clinical Science 103 (Suppl 1) 322S326S.[Web of Science][Medline]
Bittner M, Meltzer P, Chen Y, Jiang Y, Seftor E, Hendrix M, Radmacher M, Simon R, Yakhini Z, Ben-Dor A et al. 2000 Molecular classification of cutaneous malignant melanoma by gene expression profiling. Nature 406 536540.[CrossRef][Medline]
Boldrini L, Gisfredi S, Ursino S, Faviana P, Lucchi M, Melfi F, Mussi A, Basolo F & Fontanini G 2005 Expression of endothelin-1 is related to poor prognosis in non-small cell lung carcinoma. European Journal of Cancer 41 28282835.[CrossRef][Web of Science][Medline]
Bos R, Zhong H, Hanrahan CF, Mommers EC, Semenza GL, Pinedo HM, Abeloff MD, Simons JW, van Diest PJ & van der Wall E 2001 Levels of hypoxia-inducible factor-1 alpha during breast carcinogenesis. Journal of the National Cancer Institute 93 309314.
Le Brun G, Aubin P, Soliman H, Ropiquet F, Villette JM, Berthon P, Creminon C, Cussenot O & Fiet J 1999 Upregulation of endothelin 1 and its precursor by IL-1beta, TNF-alpha, and TGF-beta in the PC3 human prostate cancer cell line. Cytokine 11 157162.[CrossRef][Web of Science][Medline]
Carpagnano GE, Foschino-Barbaro MP, Resta O, Gramiccioni E & Carpagnano F 2004 Endothelin-1 is increased in the breath condensate of patients with non-small-cell lung cancer. Oncology 66 180184.[Web of Science][Medline]
Casey ML, Byrd W & MacDonald PC 1992 Massive amounts of immunoreactive endothelin in human seminal fluid. Journal of Clinical Endocrinology and Metabolism 74 223225.[Abstract]
Cui P, Tani K, Kitamura H, Okumura Y, Yano M, Inui D, Tamaki T, Sone S & Kido H 2001 A novel bioactive 31-amino acid endothelin-1 is a potent chemotactic peptide for human neutrophils and monocytes. Journal of Leukocyte Biology 70 306312.
Demunter A, De Wolf-Peeters C, Degreef H, Stas M & van den Oord JJ 2001 Expression of the endothelin-B receptor in pigment cell lesions of the skin. Evidence for its role as tumor progression marker in malignant melanoma. Virchows Archive 438 485491.[CrossRef]
Dreau D, Karaa A, Culberson C, Wyan H, McKillop IH & Clemens MG 2006 Bosentan((R)) inhibits tumor vascularization and bone metastasis in an immunocompetent skin-fold chamber model of breast carcinoma cell metastasis. Clinical and Experimental Metastasis 23 4153.[CrossRef]
Earley S & Resta TC 2002 Estradiol attenuates hypoxia-induced pulmonary endothelin-1 gene expression. American Journal of Physiology. Lung Cellular and Molecular Physiology 283 L86L93.
Earley S, Nelin LD, Chicoine LG & Walker BR 2002 Hypoxia-induced pulmonary endothelin-1 expression is unaltered by nitric oxide. Journal of Applied Physiology 92 11521158.
Ehrenreich H, Anderson RW, Fox CH, Rieckmann P, Hoffman GS, Travis WD, Coligan JE, Kehrl JH & Fauci AS 1990 Endothelins, peptides with potent vasoactive properties, are produced by human macrophages. Journal of Experimental Medicine 172 17411748.
Felx M, Guyot MC, Isler M, Turcotte RE, Doyon J, Khatib AM, Leclerc S, Moreau A & Moldovan F 2006 Endothelin-1 (ET-1) promotes MMP-2 and MMP-9 induction involving the transcription factor NF-
B in human osteosarcoma. Clinical Science 110 645654.[Web of Science][Medline]
Fisk L, Nalivaeva NN & Turner AJ 2006 Regulation of endothelin-converting enzyme-1 expression in human neuroblastoma cells. Experimental Biology and Medicine 231 10481053.
Giatromanolaki A, Sivridis E, Kouskoukis C, Gatter KC, Harris AL & Koukourakis MI 2003 Hypoxia-inducible factors 1alpha and 2alpha are related to vascular endothelial growth factor expression and a poorer prognosis in nodular malignant melanomas of the skin. Melanoma Research 13 493501.[CrossRef][Web of Science][Medline]
Grimshaw MJ, Wilson JL & Balkwill FR 2002a Endothelin-2 is a macrophage chemoattractant: implications for macrophage distribution in tumors. European Journal of Immunology 32 23932400.[CrossRef][Web of Science][Medline]
Grimshaw MJ, Naylor S & Balkwill FR 2002b Endothelin-2 is a hypoxia-induced autocrine survival factor for breast tumor cells. Molecular Cancer Therapeutics 1 12731281.
Grimshaw MJ, Hagemann T, Ayhan A, Gillett CE, Binder C & Balkwill FR 2004 A role for endothelin-2 and its receptors in breast tumor cell invasion. Cancer Research 64 24612468.
Guise TA, Yin JJ & Mohammad KS 2003 Role of endothelin-1 in osteoblastic bone metastases. Cancer 97 779784.
Hagemann T, Binder C, Binder L, Pukrop T, Trumper L & Grimshaw MJ 2005 Expression of endothelins and their receptors promotes an invasive phenotype of breast tumor cells but is insufficient to induce invasion in benign cells. DNA and Cell Biology 24 777787.[CrossRef][Web of Science][Medline]
Hsu MY, Meier FE, Nesbit M, Hsu JY, Van Belle P, Elder DE & Herlyn M 2000 E-cadherin expression in melanoma cells restores keratinocyte-mediated growth control and down-regulates expression of invasion-related adhesion receptors. American Journal of Pathology 156 15151525.
Hu J, Discher DJ, Bishopric NH & Webster KA 1998 Hypoxia regulates expression of the endothelin-1 gene through a proximal hypoxia-inducible factor-1 binding site on the antisense strand. Biochemical and Biophysical Research Communications 245 894899.[CrossRef][Web of Science][Medline]
Ihara M, Ishikawa K, Fukuroda T, Saeki T, Funabashi K, Fukami T, Suda H & Yano M 1992a In vitro biological profile of a highly potent novel endothelin (ET) antagonist BQ-123 selective for the ETA receptor. Journal of Cardiovascular Pharmacology 20 S11S14.
Ihara M, Noguchi K, Saeki T, Fukuroda T, Tsuchida S, Kimura S, Fukami T, Ishikawa K, Nishikibe M & Yano M 1992b Biological profiles of highly potent novel endothelin antagonists selective for the ETA receptor. Life Sciences 50 247255.[CrossRef][Web of Science][Medline]
Inoue A, Yanagisawa M, Kimura S, Kasuya Y, Miyauchi T, Goto K & Masaki T 1989 The human endothelin family: three structurally and pharmacologically distinct isopep-tides predicted by three separate genes. PNAS 86 28632867.
Ishikawa K, Ihara M, Noguchi K, Mase T, Mino N, Saeki T, Fukuroda T, Fukami T, Ozaki S, Nagase T et al. 1994 Biochemical and pharmacological profile of a potent and selective endothelin B-receptor antagonist, BQ-788. PNAS 91 48924896.
Itoh Y, Yanagisawa M, Ohkubo S, Kimura C, Kosaka T, Inoue A, Ishida N, Mitsui Y, Onda H, Fujino M et al. 1988 Cloning and sequence analysis of cDNA encoding the precursor of a human endothelium-derived vasoconstrictor peptide, endothelin: identity of human and porcine endothelin. FEBS Letters 231 440444.[CrossRef][Web of Science][Medline]
Jamal S & Schneider RJ 2002 UV-induction of keratinocyte endothelin-1 downregulates E-cadherin in melanocytes and melanoma cells. Journal of Clinical Investigation 110 443452.[CrossRef][Web of Science][Medline]
Jimeno A & Carducci M 2005 Atrasentan: a novel and rationally designed therapeutic alternative in the management of cancer. Expert Review of Anticancer Therapy 5 419427.[CrossRef][Web of Science][Medline]
Kadekaro AL, Kavanagh R, Kanto H, Terzieva S, Hauser J, Kobayashi N, Schwemberger S, Cornelius J, Babcock G, Shertzer HG et al. 2005 alpha-Melanocortin and endothelin-1 activate antiapoptotic pathways and reduce DNA damage in human melanocytes. Cancer Research 65 42924299.
Kedzierski RM & Yanagisawa M 2001 Endothelin system: the double-edged sword in health and disease. Annual Review of Pharmacology and Toxicology 41 851876.[CrossRef][Web of Science][Medline]
Kefford R, Beith JM, Van Hazel GA, Millward M, Trotter JM , Wyld DK, Kusic R, Shreeniwas R, Morganti A, Ballmer A et al. 2006 A phase II study of bosentan, a dual endothelin receptor antagonist, as monotherapy in patients with stage IV metastatic melanoma. Investigational New Drugs [in press].
Ko C, Gieske MC, Al-Alem L, Hahn Y, Su W, Gong MC, Iglarz M & Koo Y 2006 Endothelin-2 in ovarian follicle rupture. Endocrinology 147 17701779.
Koong AC, Denko NC, Hudson KM, Schindler C, Swiersz L, Koch C, Evans S, Ibrahim H, Le QT, Terris DJ et al. 2000 Candidate genes for the hypoxic tumor phenotype. Cancer Research 60 883887.
Kopetz ES, Nelson JB & Carducci MA 2002 Endothelin-1 as a target for therapeutic intervention in prostate cancer. Investigational New Drugs 20 173182.[CrossRef][Web of Science][Medline]
Kourembanas S, Marsden PA, McQuillan LP & Faller DV 1991 Hypoxia induces endothelin gene expression and secretion in cultured human endothelium. Journal of Clinical Investigation 88 10541057.[Web of Science][Medline]
Lahav R, Heffner G & Patterson PH 1999 An endothelin receptor B antagonist inhibits growth and induces cell death in human melanoma cells in vitro and in vivo. PNAS 96 1149611500.
Lahav R, Suva ML, Rimoldi D, Patterson PH & Stamenkovic I 2004 Endothelin receptor B inhibition triggers apoptosis and enhances angiogenesis in melanomas. Cancer Research 64 89458953.
Lambert GL, Barker S, Lees DM & Corder R 2000 Endothelin-2 synthesis is stimulated by the type-1 tumour necrosis factor receptor and cAMP: comparison with endothelin-converting enzyme-1 expression. Journal of Molecular Endocrinology 24 273283.[Abstract]
Lassiter LK & Carducci MA 2003 Endothelin receptor antagonists in the treatment of prostate cancer. Seminars in Oncology 30 678688.[CrossRef][Web of Science][Medline]
Lo KW, Tsang YS, Kwong J, To KF, Teo PM & Huang DP 2002 Promoter hypermethylation of the EDNRB gene in nasopharyngeal carcinoma. International Journal of Cancer 98 651655.[CrossRef][Web of Science][Medline]
Mai HQ, Zeng ZY, Zhang CQ, Feng KT, Guo X, Mo HY, Deng MQ, Min HQ & Hong MH 2006 Elevated plasma big ET-1 is associated with distant failure in patients with advanced-stage nasopharyngeal carcinoma. Cancer 106 15481553.
Mangahas CR, dela Cruz GV, Friedman-Jimenez G & Jamal S 2005 Endothelin-1 induces CXCL1 and CXCL8 secretion in human melanoma cells. Journal of Investigative Dermatology 125 307311.[Web of Science][Medline]
Masaki T, Miwa S, Sawamura T, Ninomiya H & Okamoto Y 1999 Subcellular mechanisms of endothelin action in vascular system. European Journal of Pharmacology 375 133138.[CrossRef][Web of Science][Medline]
Michaelson MD, Kaufman DS, Kantoff P, Oh WK & Smith MR 2006 Randomized phase II study of atrasentan alone or in combination with zoledronic acid in men with metastatic prostate cancer. Cancer 107 530535.
Michaylira CZ & Nakagawa H 2006 Hypoxic microenvir-onment as a cradle for melanoma development and progression. Cancer Biology and Therapy 5 476479.
Minchenko A & Caro J 2000 Regulation of endothelin-1 gene expression in human microvascular endothelial cells by hypoxia and cobalt: role of hypoxia responsive element. Molecular and Cellular Biochemistry 208 5362.[CrossRef][Web of Science][Medline]
Moraitis S, Langdon SP & Miller WR 1997 Endothelin expression and responsiveness in human ovarian carcinoma cell lines. European Journal of Cancer 33 661668.[CrossRef][Medline]
Moraitis S, Miller WR, Smyth JF & Langdon SP 1999 Paracrine regulation of ovarian cancer by endothelin. European Journal of Cancer 35 13811387.[CrossRef][Web of Science][Medline]
Muller A, Homey B, Soto H, Ge N, Catron D, Buchanan ME, McClanahan T, Murphy E, Yuan W, Wagner SN et al. 2001 Involvement of chemokine receptors in breast cancer metastasis. Nature 410 5056.[CrossRef][Medline]
Nelson JB, Lee WH, Nguyen SH, Jarrard DF, Brooks JD, Magnuson SR, Opgenorth TJ, Nelson WG & Bova GS 1997 Methylation of the 5' CpG island of the endothelin B receptor gene is common in human prostate cancer. Cancer Research 57 3537.
Nelson J, Bagnato A, Battistini B & Nisen P 2003 The endothelin axis: emerging role in cancer. Nature Reviews. Cancer 3 110116.[CrossRef][Web of Science][Medline]
Norman P 2002 Atrasentan abbott. Current Opinion in Investigational Drugs 3 12401248.[Medline]
Opgenorth TJ, Wu-Wong JR & Shiosaki K 1992 Endothelin-converting enzymes. FASEB Journal 6 26532659.[Abstract]
Postovit LM, Seftor EA, Seftor RE & Hendrix MJ 2006 Influence of the microenvironment on melanoma cell fate determination and phenotype. Cancer Research 66 78337836.
Rosano L, Varmi M, Salani D, Di Castro V, Spinella F, Natali PG & Bagnato A 2001 Endothelin-1 induces tumor proteinase activation and invasiveness of ovarian carcinoma cells. Cancer Research 61 83408346.
Rosano L, Spinella F, Di Castro V, Nicotra MR, Albini A, Natali PG & Bagnato A 2003a Endothelin receptor blockade inhibits molecular effectors of Kaposis sarcoma cell invasion and tumor growth in vivo. American Journal of Pathology 163 753762.
Rosano L, Spinella F, Salani D, Di Castro V, Venuti A, Nicotra MR, Natali PG & Bagnato A 2003b Therapeutic targeting of the endothelin a receptor in human ovarian carcinoma. Cancer Research 63 24472453.
Rosano L, Spinella F, Di Castro V, Nicotra MR, Dedhar S, de Herreros AG, Natali PG & Bagnato A 2005 Endothelin-1 promotes epithelial-to-mesenchymal transition in human ovarian cancer cells. Cancer Research 65 1164911657.
Rosano L, Spinella F, Di Castro V, Dedhar S, Nicotra MR, Natali PG & Bagnato A 2006 Integrin-linked kinase functions as a downstream mediator of endothelin-1 to promote invasive behavior in ovarian carcinoma. Molecular Cancer Therapeutics 5 833842.
Saida K, Kometani N, Masuda H, Oka S & Uchide T 2000 Structure of mouse preproendothelin-3 and phylogenetic analysis of the endothelins. Journal of Cardiovascular Pharmacology 36 S1S4.[CrossRef][Web of Science][Medline]
Salani D, Di Castro V, Nicotra MR, Rosano L, Tecce R, Venuti A, Natali PG & Bagnato A 2000 Role of endothelin-1 in neovascularization of ovarian carcinoma. American Journal of Pathology 157 15371547.
Schmidt BL, Pickering V, Liu S, Quang P, Dolan J, Connelly ST & Jordan RC 2007 Peripheral endothelin A receptor antagonism attenuates carcinoma-induced pain. European Journal of Pain 11 406414.[CrossRef][Web of Science][Medline]
Shibaguchi H, Himeno A, Shigematsu K, Kataoka Y & Niwa M 2000 Transient hypoxia/hypoglycemia upregulates endothelin B receptors in cultured rat astrocytes. Glia 31 9194.
Shinmi O, Kimura S, Sawamura T, Sugita Y, Yoshizawa T, Uchiyama Y, Yanagisawa M, Goto K, Masaki T & Kanazawa I 1989 Endothelin-3 is a novel neuropeptide: isolation and sequence determination of endothelin-1 and endothelin-3 in porcine brain. Biochemical and Biophysical Research Communications 164 587593.[CrossRef][Web of Science][Medline]
Spinella F, Rosano L, Di Castro V, Natali PG & Bagnato A 2002 Endothelin-1 induces vascular endothelial growth factor by increasing hypoxia-inducible factor-1alpha in ovarian carcinoma cells. Journal of Biological Chemistry 277 2785027855.
Spinella F, Rosano L, Di Castro V, Natali PG & Bagnato A 2004a Endothelin-1-induced prostaglandin E2-EP2, EP4 signaling regulates vascular endothelial growth factor production and ovarian carcinoma cell invasion. Journal of Biological Chemistry 279 4670046705.
Spinella F, Rosano L, Di Castro V, Nicotra MR, Natali PG & Bagnato A 2004b Inhibition of cyclooxygenase-1 and -2 expression by targeting the endothelin a receptor in human ovarian carcinoma cells. Clinical Cancer Research 10 46704679.
Spinella F, Rosano L, Elia G, Di Castro V, Natali PG & Bagnato A 2004c Endothelin-1 stimulates cyclo-oxygenase-2 expression in ovarian cancer cells through multiple signaling pathways: evidence for involvement of transactivation of the epidermal growth factor receptor. Journal of Cardiovascular Pharmacology 44 S140S143.[CrossRef][Medline]
Spinella F, Rosano L, Di Castro V, Decandia S, Nicotra MR, Natali PG & Bagnato A 2007 Endothelin-1 and endothelin-3 promote invasive behavior via hypoxia-inducible factor-1
in human melanoma cells. Cancer Research 67 17251734.
Swinson DE, Jones JL, Cox G, Richardson D, Harris AL & OByrne KJ 2004 Hypoxia-inducible factor-1 alpha in non small cell lung cancer: relation to growth factor, protease and apoptosis pathways. International Journal of Cancer 111 4350.[CrossRef][Web of Science][Medline]
Terauchi M, Kajiyama H, Shibata K, Ino K, Mizutani S & Kikkawa F 2005 Anti-progressive effect of neutral endopeptidase 24.11 (NEP/CD10) on cervical carcinoma in vitro and in vivo. Oncology 69 5262.[CrossRef][Web of Science][Medline]
Theodoropoulos VE, Lazaris A, Sofras F, Gerzelis I, Tsoukala V, Ghikonti I, Manikas K & Kastriotis I 2004 Hypoxia-inducible factor 1 alpha expression correlates with angiogenesis and unfavorable prognosis in bladder cancer. European Urology 46 200208.[CrossRef][Web of Science][Medline]
Titus B, Frierson HF Jr, Conaway M, Ching K, Guise T, Chirgwin J, Hampton G & Theodorescu D 2005 Endothelin axis is a target of the lung metastasis suppressor gene RhoGDI2. Cancer Research 65 73207327.
Uchide T, Masuda H, Mitsui Y & Saida K 1999 Gene expression of vasoactive intestinal contractor/endothelin-2 in ovary, uterus and embryo: comprehensive gene expression profiles of the endothelin ligand-receptor system revealed by semi-quantitative reverse transcription-polymerase chain reaction analysis in adult mouse tissues and during late embryonic development. Journal of Molecular Endocrinology 22 161171.[Abstract]
Wenger RH 2000 Mammalian oxygen sensing, signalling and gene regulation. Journal of Experimental Biology 203 12531263.[Abstract]
Wessale JL, Adler AL, Novosad EI, Calzadilla SV, Dayton BD, Marsh KC, Winn M, Jae HS, von Geldern TW, Opgenorth TJ et al. 2002 Pharmacology of endothelin receptor antagonists ABT-627, ABT-546, A-182086 and A-192621: ex vivo and in vivo studies. Clinical Science 103 (Suppl 48) 112S117S.[Web of Science][Medline]
Wilson JL, Burchell J & Grimshaw MJ 2006 Endothelins induce CCR7 expression by breast tumor cells via endothelin receptor A and hypoxia-inducible factor-1. Cancer Research 66 1180211807.
Wulfing P, Diallo R, Kersting C, Wulfing C, Poremba C, Rody A, Greb RR, Bocker W & Kiesel L 2003 Expression of endothelin-1, endothelin-A, and endothelin-B receptor in human breast cancer and correlation with long-term follow-up. Clinical Cancer Research 9 41254131.
Wulfing P, Kersting C, Tio J, Fischer RJ, Wulfing C, Poremba C, Diallo R, Bocker W & Kiesel L 2004a Endothelin-1-, endothelin-A-, and endothelin-B-receptor expression is correlated with vascular endothelial growth factor expression and angiogenesis in breast cancer. Clinical Cancer Research 10 23932400.
Wulfing P, Tio J, Kersting C, Sonntag B, Buerger H, Wulfing C, Euler U, Boecker W, Tulusan AH & Kiesel L 2004b Expression of endothelin-A-receptor predicts unfavourable response to neoadjuvant chemotherapy in locally advanced breast cancer. British Journal of Cancer 91 434440.[CrossRef][Web of Science][Medline]
Wulfing C, Eltze E, Piechota H, Abol-Enein H, Wulfing P, Bode ME, Hertle L & Sievert KD 2005a Expression of endothelin-1 and endothelin-A and -B receptors in invasive bladder cancer. Oncology Reports 13 223228.[Web of Science][Medline]
Wulfing C, Eltze E, Yamini J, Wulfing P, Bierer S, Bocker W, Hertle L, Semjonow A & Sievert KD 2005b Expression of the endothelin axis in bladder cancer: relationship to clinicopathologic parameters and long-term survival. European Urology 47 593600.[CrossRef][Web of Science][Medline]
Wulfing P, Gotte M, Sonntag B, Kersting C, Schmidt H, Wulfing C, Buerger H, Greb R, Bocker W & Kiesel L 2005c Overexpression of endothelin-A-receptor in breast cancer: regulation by estradiol and cobaltchloride induced hypoxia. International Journal of Oncology 26 951960.[Web of Science][Medline]
This article has been cited by other articles:
![]() |
S. W. Watts Endothelin receptors: what's new and what do we need to know? Am J Physiol Regulatory Integrative Comp Physiol, February 1, 2010; 298(2): R254 - R260. [Abstract] [Full Text] [PDF] |
||||
![]() |
C. Clapp, S. Thebault, M. C. Jeziorski, and G. Martinez De La Escalera Peptide Hormone Regulation of Angiogenesis Physiol Rev, October 1, 2009; 89(4): 1177 - 1215. [Abstract] [Full Text] [PDF] |
||||
![]() |
C. Binder, T. Hagemann, S. Sperling, M. Schulz, T. Pukrop, M. J. Grimshaw, and H. Ehrenreich Stromal endothelin B receptor-deficiency inhibits breast cancer growth and metastasis Mol. Cancer Ther., August 1, 2009; 8(8): 2452 - 2460. [Abstract] [Full Text] [PDF] |
||||
![]() |
J. Kim, I. C. Bagchi, and M. K. Bagchi Signaling by Hypoxia-Inducible Factors Is Critical for Ovulation In Mice Endocrinology, July 1, 2009; 150(7): 3392 - 3400. [Abstract] [Full Text] [PDF] |
||||
![]() |
F. Spinella, E. Garrafa, V. Di Castro, L. Rosano, M. R. Nicotra, A. Caruso, P. G. Natali, and A. Bagnato Endothelin-1 Stimulates Lymphatic Endothelial Cells and Lymphatic Vessels to Grow and Invade Cancer Res., March 15, 2009; 69(6): 2669 - 2676. [Abstract] [Full Text] [PDF] |
||||
| ||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||
| HOME | HELP | FEEDBACK | SUBSCRIPTIONS | ARCHIVE | SEARCH | TABLE OF CONTENTS |