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Article

Associations of MicroRNAs, Angiogenesis-Regulating Factors and CFH Y402H Polymorphism—An Attempt to Search for Systemic Biomarkers in Age-Related Macular Degeneration

by
Zofia Ulańczyk
1,
Anna Sobuś
1,
Karolina Łuczkowska
1,
Aleksandra Grabowicz
2,
Katarzyna Mozolewska-Piotrowska
2,
Krzysztof Safranow
3,
Miłosz Piotr Kawa
1,
Andrzej Pałucha
4,
Mariusz Krawczyk
4,
Piotr Sikora
4,
Ewa Matczyńska
4,
Bogusław Machaliński
1 and
Anna Machalińska
2,*
1
Department of General Pathology, Pomeranian Medical University, 70-111 Szczecin, Poland
2
First Department of Ophthalmology, Pomeranian Medical University, 70-111 Szczecin, Poland
3
Department of Biochemistry and Medical Chemistry, Pomeranian Medical University, 70-111 Szczecin, Poland
4
Genomed SA, 02-971 Warsaw, Poland
*
Author to whom correspondence should be addressed.
Int. J. Mol. Sci. 2019, 20(22), 5750; https://doi.org/10.3390/ijms20225750
Submission received: 24 October 2019 / Revised: 8 November 2019 / Accepted: 8 November 2019 / Published: 15 November 2019

Abstract

:
Age-related macular degeneration (AMD) remains the leading cause of blindness in elderly people, but the pathophysiology of this disease is still largely unknown. We investigated the systemic expression of angiogenesis-regulating growth factors and selected miRNAs known to regulate angiogenesis in AMD patients. We also focused on possible correlations of their expression with the presence of CFH Y402H or ARMS A69S risk variants. A total of 354 AMD patients and 121 controls were enrolled in this study. The levels of angiogenesis-regulating factors were analyzed in plasma samples using Luminex technology. The expression of selected miRNAs was analyzed in peripheral blood plasma using real-time qPCR. The genetic analysis was performed with an Illumina NextSeq500 system. AMD was an independent factor associated with lower levels of angiogenin (β = −0.29, p < 0.001), endostatin (β = −0.18, p < 0.001), FGF-basic (β = −0.18, p < 0.001), PlGF (β = −0.24, p < 0.001), miRNA-21-3p (β = −0.13, p = 0.01) and miRNA-155-5p (β = −0.16, p = 0.002); and with higher levels of FGF-acidic (β = 0.11, p = 0.03), miRNA-23a-3p (β = 0.17, p < 0.001), miRNA-126-5p (β = 0.13, p = 0.009), miRNA-16-5p (β = 0.40, p < 0.001), miRNA-17-3p (β = 0.13, p = 0.01), miRNA-17-5p (β = 0.17, p < 0.001), miRNA-223-3p (β = 0.15, p = 0.004), and miRNA-93 (β = 0.11, p = 0.04). The expression of analyzed miRNA molecules significantly correlated with the levels of tested angiogenesis-regulating factors and clinical parameters in AMD patients, whereas such correlations were not observed in controls. We also found an association between the CFH Y402H polymorphism and miRNA profiles, whereby TT homozygotes showed evidently higher expression of miRNA-16-5p than CC homozygotes or TC heterozygotes (p = 0.0007). Our results suggest that the balance between systemic pro- and anti-angiogenic factors and miRNAs is vital in multifactorial AMD pathogenesis.

1. Introduction

Age-related macular degeneration (AMD) is a common ocular condition characterized by progressive visual impairment [1]. AMD currently remains the leading cause of blindness in the elderly population, which profoundly disrupts quality of life [2,3].
AMD has two main forms: exudative/wet and non-exudative/dry [4]. The prevalence of dry AMD is higher than that of wet AMD, comprising 80–85% of all cases, and dry AMD is associated with retinal pigment epithelium (RPE) and photoreceptor degeneration [5]. The advanced form of AMD, the so-called ‘wet’ AMD, is associated with choroidal neovascularization (CNV) and results in rapid visual acuity loss, accounting for 90% of all clinical cases with loss of sight [6,7]. The new vessels that are formed during neovascularization are largely malformed and account for improper vascular integrity [8]. This leads to undesirable blood and fluid leakage within the disrupted tissue, which stimulates inflammation and scar formation and results in retinal damage [9]. This damage to the retina accounts for central vision loss and, if not treated, eventually blindness [6,10]. Unfortunately, the complex pathogenesis of this disease is not fully understood, and currently, there is no established biomarker for early AMD detection.
AMD has a strong genetic component; linkage studies have found two major AMD loci mapped on chromosomes 1q32 and 10q26 [11]. The first locus harbors complement factor H (CFH), whose polymorphism (Y402H) is considered the “risk variant”, accounting for a population attributable risk fraction for early and late AMD of approximately 10% and 53% [12], respectively. The ARMS A69S polymorphism at 10q26 is thought to cause misfolding of the mitochondrial-associated protein encoded in this region [13]. While the pathogenetic role of CFH Y402H is through the complement system, the exact role of ARMS A69S in AMD susceptibility remains unclear.
Although the exact causes of AMD remain an active research area, it is known that angiogenesis and vascular imbalance play a crucial role in this disease, with vascular endothelial growth factor (VEGF), a potent pro-angiogenic factor, likely being a pivotal point [2,10]. Several eye cells produce VEGF, including RPE cells, endothelial cells, glial cells, pericytes, Muller cells, and ganglion cells [14]. Apart from blood vessel growth stimulation, VEGF also stimulates endothelial cells to produce matrix metalloproteinases (MMPs), a family of enzymes that proteolytically degrade various components of the extracellular matrix and thus allow new vessels to grow [15]. A considerable number of studies have shown that inhibition of VEGF production can suppress CNV in the eye, and anti-VEGF therapeutics have been developed [16]. Although widely used, VEGF inhibitors show some detrimental side effects (including stroke) [17] and are apparently ineffective in a subset of AMD patients [18]. Recently, Keir et al. provided an interesting link between VEGF and CFH, showing that VEGF inhibition decreases local CFH complement regulators in the eye through reduced VEGFR2/PKC-α/CREB signaling [19]. In that study, RPE cells carrying disease-associated CFH genetic variants had more alternative complement pathway deposits than controls, and these deposits were increased by VEGF antagonism. Apart from VEGF, other growth factors regulate angiogenesis and could play a role in AMD, including platelet-derived growth factor (PDGF), fibroblast growth factors (FGFs), pigment epithelium-derived growth factor (PEDF), and angiopoietins (ANGPTs) [6,20]. Recently, the presence of several angiogenesis inhibitors—including thrombospondin-1 (TSP1), PEDF, endostatin, and angiostatin—has been reported in the eye environment [14]. Therefore, it seems that a balanced production of negative and positive angiogenesis-regulating growth factors is essential for achieving ocular vascular homeostasis. Various stimuli—e.g., hypoxia, oxidative stress, ischemia, and inflammation (which all accumulate with age)—can influence the production of those growth factors and skew this desirable balance, leading to AMD development or progression [6].
A major role in governing various pathological processes that contribute to AMD pathogenesis, including angiogenesis, has recently been attributed to microRNAs (miRNAs, miRs) [21]. These small, noncoding RNAs of approximately 20 nucleotides are potent gene expression regulators that have been found in a variety of body fluids, i.e., blood, saliva, and urine [22,23]. Changes in miRNA expression have been implicated in common human disorders including AMD, and the potential use of miRNAs as biomarkers seems encouraging [21,24,25]. Several researchers have shown that certain miRNAs are abundant in the vasculature and play an important role in angiogenesis regulation [3,26]. Numerous miRNAs—including the miRNA-17-92 cluster and also miRNA-21, miRNA-93, miRNA-126, miRNA-221, and others—have also been linked specifically with ocular angiogenic processes [3,27,28]. In fact, it seems that miRNAs are also closely associated with CFH risk variants in AMD. Interestingly, in a study by Lukiw et al., four miRNAs (miRNA-9, miRNA-125b, miRNA-146a, and miRNA-155) were upregulated in whole retina samples from AMD patients compared to healthy controls [29]; all of those miRNAs have been shown to specifically bind to the 3′UTR of the CFH gene, thus possibly being major regulators of its expression. It seems that the involvement of miRNAs in angiogenesis and CFH expression in AMD is substantial, making miRNAs presumably major governing forces in AMD pathogenesis.
In the present study, we aimed to explore the expression of systemic angiogenesis-regulating growth factors and selected peripheral blood plasma miRNAs that regulate angiogenesis in AMD patients. We also focused on possible correlations of their expression with the presence of CFH Y402H or ARMS A69S risk variants in our patients.

2. Results

2.1. Characteristics of the Study Subjects

We enrolled 354 patients with AMD (175 dry AMD, 179 wet AMD) and 121 healthy controls in the study. The clinical characteristics of the patients and controls are summarized in Table 1. We analyzed vascular-related risk factors in the study groups because epidemiological data collected so far show that AMD is associated with atherosclerosis. The AMD and control groups did not present with significant differences in age or well-known atherosclerotic risk factors, namely, hypertension, history of ischemic heart disease, cardiac infarction, cerebral stroke, peripheral artery disease, and aortic aneurysm. The proportion of past smokers and the number of smoking pack-years was significantly higher in the AMD group than in controls (p  =  0.0004 and p < 0.0001, respectively).

2.2. Levels of Angiogenesis-Regulating Factors

To assess the systemic levels of angiogenesis-related factors, we chose 10 for analysis in plasma: angiogenin, angiopoietin-1, endostatin, FGF-basic, FGF-acidic, PDGF-AA, PlGF, thrombospondin-2, VEGF, and VEGF-D. The AMD group presented with lower levels of four tested cytokines (angiogenin, endostatin, FGF-basic, PlGF) in comparison with the control group (Table 2(a)). Multivariate analysis of patients and controls adjusted for age, sex, and smoking status (pack-years) revealed that AMD was an independent factor associated with lower levels of angiogenin (β = −0.29, p < 0.001), endostatin (β = −0.18, p < 0.001), FGF-basic (β = −0.18, p < 0.001), and PlGF (β = −0.24, p < 0.001) and with higher concentration of FGF-acidic (β = 0.11, p = 0.03). AMD subtype analysis did not reveal any statistically significant differences in the concentrations of the tested factors (Table 2(b)).

2.3. Plasma miRNA Expression Profiles

As a next part of our study we analysed the expression of several miRNAs in AMD and control patients’ blood plasma samples using qRT-PCR. For this part, we chose 14 miRNAs (miRNA-9-5p, -16-5p, -17-3p, -17-5p, -21-3p, -23a-3p, -30b, -93, -126-5p, -146a, -150-5p, -155-5p, -191-5p, and -223-3p) targeting angiogenic, inflammatory, and cell survival processes in response to oxidative stress with documented link to AMD pathogenesis [3,21,30]. Seven analyzed miRNAs (miRNA-16-5p, miRNA-17-3p, miRNA-17-5p, miRNA-23a-3p, miRNA-126-5p, miRNA-146a, and miRNA-223-3p) showed higher expression and three (miRNA-21-3p, miRNA-155-5p, and miRNA-191-5p) showed lower expression in AMD patients in comparison with controls (Table 3(a)). In multivariate analysis, AMD was an independent factor associated with higher expression of miRNA-23a-3p (β = 0.17, p < 0.001), miRNA-126-5p (β = 0.13, p = 0.009), miRNA-16-5p (β = 0.40, p < 0.001), miRNA-17-3p (β = 0.13, p = 0.01), miRNA-17-5p (β = 0.17, p < 0.001), miRNA-223-3p (β = 0.15, p = 0.004), and miRNA-93 (β = 0.11, p = 0.04); and lower expression of miRNA-21-3p (β = −0.13, p = 0.01) and miRNA-155-5p (β = −0.16, p = 0.002). Wet and dry AMD patients also showed slight differences between their plasma miRNA profiles (Table 3(b)).
Next, we aimed to investigate if and how severity of underlying disease could impact miRNA profile. In order to do that, we studied the association between miRNAs expression and selected clinical parameters. We observed significant relationship between miRNA profile and retinal and choroidal parameters: positive correlations were observed for central choroidal thickness values and miRNA-93 expression (Rs = +0.119, p = 0.03) and thickness of the central retina and the expression of miRNA-16-5p (Rs = +0.159, p = 0.004) and miRNA-223-3p (Rs = +0.129, p = 0.02). A negative correlation was observed between visual acuity and miRNA-23a-3p (Rs = −0.141, p = 0.01). Remarkably, no such correlations were found in the control group.

2.4. miRNA Correlations

To more accurately characterize the role of the analyzed miRNA profiles in AMD patients, we evaluated the association between the expression of miRNA molecules and levels of angiogenesis-regulating factors in plasma. We aimed to investigate whether certain miRNAs are linked with angiogenic factors and whether these correlations are specific for AMD patients or wet/dry AMD subtypes. In general, we found that the expression of analyzed miRNA molecules significantly correlated with the levels of tested angiogenesis-regulating factors in AMD patients, whereas such correlations were not observed in controls (Table 4 and Table 5). The only miRNA whose statistically significant correlations with angiogenesis-regulating factors were only negative was miRNA-17-3p. In fact, a negative correlation between PlGF levels and miRNA-17-3p expression (Rs = −0.147) corresponded with a significant reduction in PlGF levels and increase in the expression of this miRNA observed in AMD patients. The complementary strand of this miRNA, miRNA-17-5p, showed a negative correlation with FGF-acidic, just as miRNA-17-3p did, and a unique positive correlation with endostatin. Only two other miRNAs correlated positively with endostatin (miRNA-93 and miRNA-150-5p), and neither of them showed a difference in expression between AMD patients and controls. Interestingly, the miRNAs that correlated negatively with endostatin showed elevated expression in the plasma of AMD patients (miRNA-23a-3p, miRNA-146a, and miRNA-223-3p). A similar situation was observed for angiogenin, whose levels were lower in the AMD group and correlated negatively with the same three miRNAs (miRNA-23a-3p, miRNA-146a, and miRNA-223-3p), which were elevated in the AMD group. In the case of miRNA-223-3p, this correlation also occurred in the controls; however, the remaining miRNA correlations were unique to the AMD group. This could suggest that these miRNAs are negative regulators of angiogenin and endostatin in AMD patients. Overall, the observed diversity of miRNA-angiogenesis factor correlations reflects the vast variety of biological processes that these miRNAs regulate.

2.5. Genotypes and miRNAs

We analyzed associations between plasma miRNAs and genotypes with regard to polymorphisms in genes previously linked with AMD: CFH Y402H and ARMS A69S. The only statistically significant associations were observed for CFH Y402H (Table 6). Two miRNAs showed significantly lower expression in patients with the C allele (miRNA-16-5p and miRNA-17-5p); however, when correction for multiple testing was applied, only the association of miRNA-16-5p with the C allele remained statistically significant. TT homozygotes showed evidently higher expression of miRNA-16-5p (median = 16.3) than CC homozygotes (median = 12.25) or TC heterozygotes (median = 11.70) (Table 6).

3. Discussion

AMD is a multifactorial disease of the central retina involving a range of genetic and environmental influences. All of the changes associated with ageing in the outer retina weaken the nutrition of photoreceptors and RPE and create a favorable environment for the development of choroidal neovascularization (CNV) [31]. The shift in balance between pro- and anti-angiogenic factors is thought to play a key role in CNV development [9]. This balance could be regulated by miRNAs, which have taken prominent positions in our understanding of the control of various biological processes, including angiogenesis [21]. Thus, in the present study, we aimed to explore the pathological angiogenesis in AMD by studying the expression of systemic angiogenesis-regulating growth factors, selected genetic predispositions and peripheral blood plasma miRNAs.
First, we assessed the systemic levels of angiogenesis regulators in peripheral blood plasma and found that the central mediator of angiogenesis, VEGF, did not show differences between the tested groups, whereas four other factors presented with lower levels in the AMD group: angiogenin, endostatin, FGF-basic, and PlGF. Since anti-VEGF agents are widely used in the treatment of neovascular or exudative AMD, it is not surprising that VEGF plasma levels are extensively studied as a measure of response to therapy [32,33]. Similar to Carneiro et al. [34], we could not confirm that patients with exudative AMD had higher levels of VEGF plasma compared to age-matched controls, as previously reported by Tsai et al. [35]. This confirms the importance of patient selection: whereas Tsai et al. reported data from patients with an Asian background, the patients presented here and in the Carneiro et al. studies are Caucasian. VEGF signaling is downregulated by endostatin, which targets thrombin receptors, Stats, and HIF-1 and simultaneously upregulates antiangiogenic genes (vasostatin and kininogen) in human microvascular endothelial cells (EC) [10,36,37]. In 2006, Tatar et al. showed that endostatin is expressed in human choroidal neovascular membranes (CNV) secondary to age-related macular degeneration [38]. Intravitreal or intravenous delivery of endostatin by viral vectors was also shown to inhibit diabetic retinopathy and CNV in experimental studies [39,40]. It is possible that endostatin delivery could be beneficial to our AMD patients, who presented with lower levels of endostatin in comparison to controls. However, we found no differences in endostatin levels between dry and wet AMD types, which requires further study. In contrast to anti-angiogenic endostatin, angiogenin, FGF-basic, and PlGF had pro-angiogenic properties and decreased levels in our AMD patients. These growth factors have been implicated in various diseases, including cancer, but little is known about their expression and role in ocular neovascular disorders [41,42,43,44]. Angiogenin, FGF-basic and PlGF levels were previously shown to be elevated in the vitreous of proliferative diabetic retinopathy patients, CNV membranes from patients with AMD and/or mouse models of laser-induced CNV [45,46]. Targeted disruption of ANG, FGF-2, or PlGF genes gave discrepant results in reducing experimental CNV [47,48], which supports the notion that a single factor is not sufficient to induce CNV in the absence of additional stimuli. The reduction of systemic FGF-basic and PlGF observed in our study are particularly interesting, since both factors have been shown to act in cooperation with VEGF to accelerate neovascularization and dual blockade of VEGF with either FGF-basic or PlGF has shown potent anti-angiogenic effects [49,50,51,52,53]. Our results correspond with the ongoing research on the role of PlGF and FGF-basic in coordination with VEGF in CNV progression. However, our finding on PlGF downregulation stands in contrary to recent results by Ioanna et al. who have shown elevated plasma levels of PlGF in wet AMD [54]. On the other hand, Zhou et al. have recently suggested [55], based on their study on neovascular glaucoma, local PlGF and VEGF production directly in the eye as opposed to transudation of these factors from blood into the vitreous. Although the decrease in the levels of pro-angiogenic factors in our study might be a result of ongoing AMD processes in the eye, with quick turnover of selected angiogenesis-stimulating factors, rather than a cause of those disturbances, this requires further in-depth studies.
The association between miRNA dysregulation and AMD pathogenesis is becoming evident; both vitreous miRNA expression profiles and miRNA serum/plasma signatures characteristics of AMD patients are being researched [56,57]. Our study provides further evidence that miRNA assessment in peripheral blood plasma is feasible to distinguish between wet and dry AMD types. In the present study, four miRNAs (miRNA-16-5p, miRNA-23a-3p, miRNA-30b, and miRNA-191-5p) were differentially expressed between those groups. The number of correlations found in our study between miRNAs and angiogenesis-regulating factors confirms the wide involvement of miRNAs in regulating this process. Not only are miRNAs key regulators of angiogenesis (a group of miRNAs called ‘angiomiRs’, either pro-angiomiRs or anti-angiomiRs), but they can be regulated by pro- or anti-angiogenic stimuli, including hypoxia, or can have a dual function in angiogenesis [58]. The miR-17-92 cluster is an important regulator of the angiogenic switch [59], and we tested the two strands of one of its family members, miRNA-17. This miRNA is predicted to target the HIF-1α and VEGF-A genes [60], although in our study we only found significant correlations with VEGF-D concentration. This cluster is highly expressed in ECs and is upregulated by ischemia [61]. It shows vast anti-angiogenic action; thus, it is possible that an increase in miRNA-17 in our AMD group is a systemic attempt to rescue the ocular tissue from increased angiogenesis. Similarly, miRNA-21-3p is induced by hypoxia and has been shown to inhibit neovascularization [30]. However, there are some discrepancies regarding miRNA-21-3p function, as some researchers have suggested that miRNA-21 promotes the tube-forming capacity of endothelial cells [62], and some studies have argued that, in fact, miRNA-21 reduces EC the proliferation, migration, and ability to form tubes of these cells [63]. Our results of decreased miRNA-21 levels in AMD patients are in concordance with the report by Ertekin et al. [64], where the authors studied nAMD patients in comparison to controls. Contradictory functions have also been described for miRNA-126, suggesting that it probably plays dual roles and cell-dependent functions in regulating angiogenesis [65]. Our results could also be interpreted in two ways: either miRNA-126 promotes angiogenesis, which is more profound in the AMD group; hence, the increased expression of miRNA-126, or it is a protective mechanism, similar to the miRNA-17-92 cluster. Recently, Wang et al. reported that miRNA-126 is profoundly decreased in a laser-induced CNV model [66]. MiR-126 levels were also decreased in diabetic retinopathy or retinopathy of prematurity cases [67,68]; however, none of these studies were performed on human subjects. MiRNA-146a and miRNA-155 are equal candidates for AMD biomarkers since their recognition sites in the CFH mRNA 3′UTR overlap, and they showed similar expression patterns in mouse models and ocular tissue [29]. In our study, these two miRNAs correlated with similar angiogenesis-regulating factors, but their expression differed (miRNA-146a increased and miRNA-155 decreased) in the AMD group. MiR-146a has been linked to progressive, age-related, inflammatory neurodegenerative disorders [69]. MiR-146a has been hypothesized to modulate innate immune responses, inflammation, and the microglial activation state; however, it remains to be established whether the induction of miR-146a is protective or detrimental to the cell [70]. Several studies have shown that miR-146a upregulation in stressed human neural cells results in the downregulation of CFH, a major repressor of the innate immune and inflammatory responses and key player in AMD pathogenesis [71]. Contrary to our findings, miRNA-155 is upregulated during AMD [72]; several studies have shown its upregulation in AMD retina and macula, in oxygen-induced retinopathy (OIR) in mouse retina, and in rat retinas after light-induced retinal degeneration [27]. In fact, miRNA-155 deficiency does not seem to bring any protective effects. When Yan et al. subjected miR-155 knockout mice to OIR, it induced rapid revascularization and prevented the development of aberrant neovascularization [73]. Our finding of miRNA-16-5p and CFH Y402H association has not been previously described in the literature. MiRNA-16 is one of the first miRNAs to be linked to human malignancies and has several important targets: the anti-apoptotic gene Bcl-2 (B-cell lymphoma 2); numerous genes involved in the G1-S transition, such as cyclin D1, cyclin D3, cyclin E1, and CDK6 (cyclin-dependent kinase 6); and genes involved in the Wnt signaling pathway, such as WNT3A (wingless-type MMTV integration site family, member 3A) [74]. In our study, the C allele in CFH Y402H, which is considered a risk allele in AMD [75], was linked with lower expression of miRNA-16. This might be interpreted as insufficient cell cycle control by low miRNA-16 expression in patients harboring the risk allele (although the expression is still evidently higher than that in controls); however, this novel hypothesis requires further investigation.
The role of miRNA in human physiology and pathology, including age-related macular degeneration, seems crucial. They could serve as potential biomarkers, helpful in diagnosing the disease and monitoring treatment effect, but also being a starting point for development of personalized therapy [76,77,78,79]. The potential application of the research includes differentiating the etiopathogenetic pathways leading to various forms of AMD as well as the development of type-specific panel of AMD risk variables. The ongoing research on miRNA involvement in AMD will provide not only promising therapeutic options, but also enable better understanding of this disease mechanisms.

4. Conclusions

AMD is a complex disease of the retina, and its pathophysiology remains unclear. Our study provides evidence that miRNAs could serve as potential biomarkers for distinguishing between wet and dry AMD. Our novel finding of lower miRNA-16-5p expression in CFH risk allele carriers provides a presumed link between miRNA expression profiles and AMD pathogenetics; however, this needs further clarification. The dual role of some miRNAs in angiogenesis makes it challenging to draw conclusions about their exact actions; however, it seems that a proper balance between systemic pro- and anti-angiogenic factors and miRNAs is vital for the maintenance of retinal homeostasis. It remains to be further elucidated whether the systemic response observed in our in vivo study reflects ongoing degenerative processes or whether it is a protective attempt to diminish excessive retinal neovascularization.

5. Materials and Methods

5.1. Study Group Characteristics

We recruited 354 patients with newly diagnosed AMD from the outpatient population of the First Department of Ophthalmology of Pomeranian Medical University in Szczecin, Poland for participation in this study. As a control group, 121 age-matched participants with no symptoms or signs of macular degeneration (defined as the absence of drusen, pigmentary abnormalities, or neovascularization) were included in the study. All patients from AMD and control group were subjected to a complete ophthalmic examination including optical coherence tomography (OCT) analysis (Spectralis, Heidelberg Engineering, Heidelberg, Germany), visual acuity (VA), and intraocular pressure measurements and dilated fundus examination using slit-lamp biomicroscopy. Snellen letter chart was used to measure VA, which was later transformed to LogMAR (Logarithm of the minimum angle of resolution) for statistical analyses.
From all enrolled AMD subjects, 179 patients had a clinical diagnosis of wet AMD, with newly diagnosed CNV (subretinal neovascular membrane, subretinal hemorrhage, serous or hemorrhagic retinal pigment epithelium detachment, fibrous scar). The remaining 175 AMD patients were diagnosed with dry AMD, with visible alterations in RPE (geographic retinal atrophy and macular drusen). If different disease stages were diagnosed in each eye, the severity of changes in the worse eye were a deciding factor for assigning a patient to a wet/dry group. Patients presenting with significant chronic systemic conditions (collagen/neoplastic disease, diabetes mellitus, renal failure, hepatic dysfunction) or any evidence of retinal disease except AMD (in AMD groups)—i.e., glaucoma or intraocular inflammatory diseases—were excluded from the study.
In all patients enrolled in the study, we assessed waist circumference (cm), waist/hip ratio (WHR), and body mass index (BMI) [weight (kg)/height (m)2]. All data regarding medical history, working conditions, smoking, and current drug use were collected from laboratory data, pathology tests, and other information. The reported average number of cigarettes smoked per day and the number of years of smoking were used for calculating cumulative pack-years. Before ophthalmic examination, in all subjects we measured the actual arterial blood pressure (BP) using a noninvasive blood pressure system with a manual aneroid manometer; three measurements obtained with 5-min resting intervals gave the mean result. From the obtained BP data, the systemic mean arterial pressure (MAP) was calculated as follows: MAP = diastolic BP + 1/3 (systolic BP-diastolic BP) mmHg.
The study adhered to the tenets of the Declaration of Helsinki, and approval was obtained from the Local Research Ethics Committee. Each patient enrolled in this study provided written informed consent for his or her involvement.

5.2. Blood Sample Collection

From each patient enrolled in this study, a sample of venous blood (~7.5 mL) was collected in EDTA tubes, then centrifuged (2000 rpm, 4 °C, 10 min) to collect plasma, which was stored at −20 °C to −80 °C until further assayed.

5.3. DNA Isolation

First, red blood cells were lysed using ammonium chloride-based lysing buffer (BD Biosciences, Franklin Lakes, NJ, USA). Nucleated cells were then counted and subsequently DNA isolation was performed with total DNA isolation kit (Macherey-Nagel, Düren, Germany), according to manufacturer’s protocol.

5.4. Genetic Analysis

5.4.1. Exon Capturing with Molecular Inversion Probes (MIPs)

Molecular Inversion Probes (MIPs) were designed for two AMD-related genes (CFH and ARMS2) with the MIPgen program [80] that has the ability to integrate unique molecular identifiers sequences (UMI) to the designed probes, enabling reliable removal of PCR duplicates in downstream analyses. Additional 3′ and 5′ flanking sequences were added to the probes to facilitate the PCR amplification. The probes were synthesized by CustomArray Inc. (Bothell, WA, USA) and subsequently amplified to generate active probes at higher amounts for high-throughput applications. MIP amplification and capturing of targeted exons with MIPs was carried out according to the protocol published by the Sanger Institute with slight modifications (manuscript in preparation). The final library was purified with Agencourt AMPure XP (Beckman Coulter, Brea, CA, USA), quantified with Picogreen (ThermoFisher), pooled and run on the 2100 Bioanalyzer (Agilent, Santa Clara, CA, USA). The final library was sequenced on NextSeq500 (Illumina, San Diego, CA, USA) in the PE150 read mode.

5.4.2. Bioinformatic Analysis

Sequencing adapters were trimmed with Cutadapt v1.14 [81] and resulting sequences were aligned to the human reference genome (hg19 version) using Burrows-Wheeler Aligner (BWA v0.7.10) [82]. Deduplication of read pairs with same UMIs, along with primer sequences removal, was performed with custom in-house scripts and verified by manual inspection. Variant calling was based on the GATK package v3.5 [83]. Both HaplotypeCaller (HC) and UnifiedGenotyper (UG) were used, preceded by best practice indel realignment and base recalibration. Variants obtained from the HC joint calling GVCF mode were subjected to additional quality filtering with the following criteria: the genotype for particular locus was possible to ascertain in at least 94% of samples and 80% of genotypes for particular variant were called with minimal coverage of 10x. The final set of variants was annotated with Ensembl Variant Effect Predictor (VEP v92.0) [84] and formatted conveniently for the statistical analysis.

5.5. Luminex Assay

Angiogenin, FGF-basic, endostatin, FGF-acidic, PDGF-aa, PIGF, thrombospondin-2, VEGF-d, angiopoietin-1, and VEGF concentrations were measured in plasma by multiplex fluorescent bead-based immunoassays (Luminex Corporation, Austin, TX, USA) using commercial R&D Systems Human Angiogenesis A Premixed Mag Luminex Performance Assay (R&D Systems, Minneapolis, MN, USA), according to manufacturer’s protocol. In brief, 100 μL of blank, standards and samples were added together with Microparticle Cocktail to the plate and then incubated for 2 h in the dark at room temperature (RT) on horizontal orbital microplate shaker set at 800rpm. Next, the wells were washed three times with 100 µL of wash buffer using a hand-held magnet. The plate was incubated with agitation at RT for 60 min in the dark with biotin-antibody cocktail (50 µL). After washing, Streptavidin–PE (50 µL per well) was added and the plate was incubated for 30 min in the dark on a plate shaker. After next washing step, the microspheres were resuspended in 100 µL wash buffer and shaken for 2 min at RT. Luminex 200 analyzer was used for reading and analyzing the plate and angiogenic factors concentrations were determined from seven different standard curves showing median fluorescence intensity vs. protein concentration.

5.6. MiRNA Analysis

Circulating miRNA was isolated from 300 µL of plasma using NucleoSpin miRNA Plasma (Macherey-Nagel, Germany) following the manufacturer’s protocol. Before isolation 25 fm of synthetic miR-39 from C. elegans miRNA (Institute of Biochemistry and Biophysics, Polish Academy of Sciences) was added to each sample. qScript microRNA cDNA Synthesis Kit (Quantabio, MA, USA) was used for first strand cDNA synthesis; we used 4 µL of each sample for cDNA synthesis. miRNA expression was assessed using qPCR performed with Bio-Rad CFX96 Real-Time Detection System (Bio-Rad, CA, USA). Reaction solution was as follows: 1 µL of cDNA sample, iQ SYBR Green Supermix (Bio-Rad, CA, USA), Universal Primer from qScript micrRNA Synthesis Kit, specific forward primer for analyzed miRNA. Quantification of the target miRNA expression value was expressed as 2∆Ct and NormFinder algorithm was used to find the best reference gene. Ct results were normalized to spike-in C. elegans miRNA and miR-223-5p.

5.7. Statistical Analysis

Prior to further analysis, quantitative parameters measured in both eyes were averaged. We used nonparametric Mann–Whitney test to compare values between groups, and Spearman’s rank correlation coefficient (Rs) to measure the strength of associations between them, as the distribution of quantitative variables differed from the normal distribution in most cases. To compare qualitative variables between groups we used Fisher’s exact test. Polymorphisms in genes previously linked with AMD including CFH His402Tyr and ARMS2 Ala69Ser were analyzed. Associations between genotype and plasma miRNAs expression were analyzed with Kruskal–Wallis test comparing three genotypes followed by Mann–Whitney test comparing TT + TC vs. CC genotypes (dominant model) and TT vs. TC + CC (recessive model). Multivariate analysis of AMD as an independent variable associated with concentrations of angiogenesis-regulating factors and miRNAs was performed using a general linear model (GLM) adjusted for age, sex, and smoking status (pack-years), with logarithmic transformation applied to the dependent variables to normalize their distributions. p < 0.05 was considered statistically significant. In genotype-phenotype association analysis Bonferroni correction for multiple tests was applied: since 14 mRNAs were analyzed in two genetic models, the corrected p-value threshold level for Mann–Whitney test was 0.05/14/2 = 0.0018.

Author Contributions

A.M. designed the study; A.S., K.Ł., A.P., M.P.K., M.K., P.S., and E.M. performed the experiments and analysis; A.G. and K.M.-P. provided and cared for study patients; A.P. and M.K. designed MIPS panel; K.S. provided statistical analysis; E.M. provided bioinformatical analysis; A.P., M.K., and E.M. wrote the genetic analysis part of the manuscript; Z.U. wrote the manuscript; A.M. and B.M. supervised the study and edited the manuscript.

Funding

This work was supported by Polish National Science Center Grant no. UMO-2013/09/B/NZ7/04031 (to AM), Polish National Centre for Research and Development (grant number: STRATEGMED1/234261/2NCBR/2014), European Union funds from the European Union Regional Development Fund, Interreg Cooperation Program V A Mecklenburg-Western Pomerania/Brandenburg/Poland for 2014-2020: “Consolidating cross-border cooperation through exchange of knowledge and skills in the field of modern diagnostic imaging methods in ophthalmology”. Ijms 20 05750 i001

Conflicts of Interest

The authors declare no conflict of interest.

Abbreviations

AMDAge-related macular degeneration
ANGPTAngiopoietin
CNVChoroidal neovascularization
ECEndothelial cells
FGFFibroblast growth factor
MAPMean arterial pressure
MIPMolecular inversion probes
MMPMatrix metalloproteinase
NSAIDNon-steroidal anti-inflammatory drugs
OCTOptical coherence tomography
OIROxygen-induced retinopathy
PDGFPlatelet-derived growth factor
PEDFPigment epithelium-derived growth factor
RPERetinal pigment epithelium
SDStandard deviation
UMIUnique molecular identifiers sequences
VEGFVascular endothelial growth factor
WHRWaist–hip ratio

References

  1. Nowak, J.Z. Age-related macular degeneration (AMD): Pathogenesis and therapy. Pharm. Rep. 2006, 58, 353–363. [Google Scholar]
  2. Al-Zamil, W.M.; Yassin, S.A. Recent developments in age-related macular degeneration: A review. Clin. Interv. Aging 2017, 12, 1313–1330. [Google Scholar] [CrossRef] [PubMed]
  3. Wang, L.; Lee, A.Y.; Wigg, J.P.; Peshavariya, H.; Liu, P.; Zhang, H. miRNA involvement in angiogenesis in age-related macular degeneration. J. Physiol. Biochem. 2016, 72, 583–592. [Google Scholar] [CrossRef] [PubMed]
  4. Machalinska, A.; Kawa, M.P.; Marlicz, W.; Machalinski, B. Complement system activation and endothelial dysfunction in patients with age-related macular degeneration (AMD): Possible relationship between AMD and atherosclerosis. Acta Ophthalmol. 2012, 90, 695–703. [Google Scholar] [CrossRef]
  5. Ayoub, T.; Patel, N. Age-related macular degeneration. J. R. Soc. Med. 2009, 102, 56–61. [Google Scholar] [CrossRef]
  6. Bhise, N.S.; Shmueli, R.B.; Sunshine, J.C.; Tzeng, S.Y.; Green, J.J. Drug delivery strategies for therapeutic angiogenesis and antiangiogenesis. Expert Opin. Drug Deliv. 2011, 8, 485–504. [Google Scholar] [CrossRef]
  7. Heiferman, M.J.; Fawzi, A.A. Progression of subclinical choroidal neovascularization in age-related macular degeneration. PLoS ONE 2019, 14, e0217805. [Google Scholar] [CrossRef]
  8. Senger, D.R.; Davis, G.E. Angiogenesis. Cold Spring Harb. Perspect. Biol. 2011, 3, a005090. [Google Scholar] [CrossRef]
  9. Witmer, A.N.; Vrensen, G.F.; Van Noorden, C.J.; Schlingemann, R.O. Vascular endothelial growth factors and angiogenesis in eye disease. Prog. Retin Eye Res. 2003, 22, 1–29. [Google Scholar] [CrossRef]
  10. Farnoodian, M.; Wang, S.; Dietz, J.; Nickells, R.W.; Sorenson, C.M.; Sheibani, N. Negative regulators of angiogenesis: Important targets for treatment of exudative AMD. Clin. Sci. (Lond.) 2017, 131, 1763–1780. [Google Scholar] [CrossRef]
  11. Jabbarpoor Bonyadi, M.H.; Yaseri, M.; Bonyadi, M.; Soheilian, M.; Karimi, S. Association of Combined Complement Factor H Y402H and ARMS/LOC387715 A69S Polymorphisms with Age-related Macular Degeneration: A Meta-analysis. Curr. Eye Res. 2016, 41, 1519–1525. [Google Scholar] [CrossRef] [PubMed]
  12. Lambert, N.G.; ElShelmani, H.; Singh, M.K.; Mansergh, F.C.; Wride, M.A.; Padilla, M.; Keegan, D.; Hogg, R.E.; Ambati, B.K. Risk factors and biomarkers of age-related macular degeneration. Prog. Retin. Eye Res. 2016, 54, 64–102. [Google Scholar] [CrossRef] [PubMed]
  13. Kanda, A.; Chen, W.; Othman, M.; Branham, K.E.; Brooks, M.; Khanna, R.; He, S.; Lyons, R.; Abecasis, G.R.; Swaroop, A. A variant of mitochondrial protein LOC387715/ARMS2, not HTRA1, is strongly associated with age-related macular degeneration. Proc. Natl. Acad. Sci. USA 2007, 104, 16227–16232. [Google Scholar] [CrossRef] [PubMed]
  14. Bhutto, I.A.; Uno, K.; Merges, C.; Zhang, L.; McLeod, D.S.; Lutty, G.A. Reduction of endogenous angiogenesis inhibitors in Bruch’s membrane of the submacular region in eyes with age-related macular degeneration. Arch. Ophthalmol. 2008, 126, 670–678. [Google Scholar] [CrossRef]
  15. Vempati, P.; Popel, A.S.; Mac Gabhann, F. Extracellular regulation of VEGF: Isoforms, proteolysis, and vascular patterning. Cytokine Growth Factor Rev. 2014, 25, 1–19. [Google Scholar] [CrossRef]
  16. Cheung, G.C.M.; Lai, T.Y.Y.; Gomi, F.; Ruamviboonsuk, P.; Koh, A.; Lee, W.K. Anti-VEGF Therapy for Neovascular AMD and Polypoidal Choroidal Vasculopathy. Asia Pac. J. Ophthalmol. (Phila) 2017, 6, 527–534. [Google Scholar] [CrossRef]
  17. Amoaku, W.M.; Chakravarthy, U.; Gale, R.; Gavin, M.; Ghanchi, F.; Gibson, J.; Harding, S.; Johnston, R.L.; Kelly, S.P.; Lotery, A.; et al. Defining response to anti-VEGF therapies in neovascular AMD. Eye (Lond) 2015, 29, 721–731. [Google Scholar] [CrossRef]
  18. Yang, S.; Zhao, J.; Sun, X. Resistance to anti-VEGF therapy in neovascular age-related macular degeneration: A comprehensive review. Drug Des. Devel. 2016, 10, 1857–1867. [Google Scholar] [CrossRef]
  19. Keir, L.S.; Firth, R.; Aponik, L.; Feitelberg, D.; Sakimoto, S.; Aguilar, E.; Welsh, G.I.; Richards, A.; Usui, Y.; Satchell, S.C.; et al. VEGF regulates local inhibitory complement proteins in the eye and kidney. J. Clin. Investig. 2017, 127, 199–214. [Google Scholar] [CrossRef]
  20. Abdollahi, A.; Folkman, J. Evading tumor evasion: Current concepts and perspectives of anti-angiogenic cancer therapy. Drug Resist Updat. 2010, 13, 16–28. [Google Scholar] [CrossRef]
  21. Kawa, M.; Machalińska, A. The role of microRNA in the pathogenesis of age-related macular degeneration: Its pathophysiology and potential pharmacological aspects. J. Biochem. Pharmacol. Res. 2014, 2, 21–32. [Google Scholar]
  22. Engels, B.M.; Hutvagner, G. Principles and effects of microRNA-mediated post-transcriptional gene regulation. Oncogene 2006, 25, 6163–6169. [Google Scholar] [CrossRef] [PubMed]
  23. Litwińska, Z.; Machaliński, B. miRNAs in chronic myeloid leukemia: Small molecules, essential function. Leuk. Lymphoma 2017, 58, 1297–1305. [Google Scholar] [CrossRef]
  24. Ardekani, A.M.; Naeini, M.M. The Role of MicroRNAs in Human Diseases. Avicenna J. Med. Biotechnol. 2010, 2, 161–179. [Google Scholar] [PubMed]
  25. Szemraj, M.; Bielecka-Kowalska, A.; Oszajca, K.; Krajewska, M.; Gos, R.; Jurowski, P.; Kowalski, M.; Szemraj, J. Serum MicroRNAs as Potential Biomarkers of AMD. Med. Sci. Monit. 2015, 21, 2734–2742. [Google Scholar] [CrossRef] [PubMed]
  26. Caporali, A.; Emanueli, C. MicroRNA regulation in angiogenesis. Vasc. Pharm. 2011, 55, 79–86. [Google Scholar] [CrossRef]
  27. Berber, P.; Grassmann, F.; Kiel, C.; Weber, B.H.F. An Eye on Age-Related Macular Degeneration: The Role of MicroRNAs in Disease Pathology. Mol. Diagn. Ther. 2017, 21, 31–43. [Google Scholar] [CrossRef] [PubMed]
  28. Katoh, M. Therapeutics targeting angiogenesis: Genetics and epigenetics, extracellular miRNAs and signaling networks (Review). Int. J. Mol. Med. 2013, 32, 763–767. [Google Scholar] [CrossRef]
  29. Lukiw, W.J.; Surjyadipta, B.; Dua, P.; Alexandrov, P.N. Common micro RNAs (miRNAs) target complement factor H (CFH) regulation in Alzheimer’s disease (AD) and in age-related macular degeneration (AMD). Int. J. Biochem. Mol. Biol. 2012, 3, 105–116. [Google Scholar] [PubMed]
  30. Sun, L.L.; Li, W.D.; Lei, F.R.; Li, X.Q. The regulatory role of microRNAs in angiogenesis-related diseases. J. Cell Mol. Med. 2018, 22, 4568–4587. [Google Scholar] [CrossRef]
  31. Ng, E.W.; Adamis, A.P. Targeting angiogenesis, the underlying disorder in neovascular age-related macular degeneration. Can J. Ophthalmol. 2005, 40, 352–368. [Google Scholar] [CrossRef]
  32. Zehetner, C.; Kralinger, M.T.; Modi, Y.S.; Waltl, I.; Ulmer, H.; Kirchmair, R.; Bechrakis, N.E.; Kieselbach, G.F. Systemic levels of vascular endothelial growth factor before and after intravitreal injection of aflibercept or ranibizumab in patients with age-related macular degeneration: A randomised, prospective trial. Acta Ophthalmol. 2015, 93, e154–e159. [Google Scholar] [CrossRef] [PubMed]
  33. Wang, X.; Sawada, T.; Sawada, O.; Saishin, Y.; Liu, P.; Ohji, M. Serum and plasma vascular endothelial growth factor concentrations before and after intravitreal injection of aflibercept or ranibizumab for age-related macular degeneration. Am. J. Ophthalmol. 2014, 158, 738–744.e731. [Google Scholar] [CrossRef] [PubMed]
  34. Carneiro, A.M.; Costa, R.; Falcao, M.S.; Barthelmes, D.; Mendonca, L.S.; Fonseca, S.L.; Goncalves, R.; Goncalves, C.; Falcao-Reis, F.M.; Soares, R. Vascular endothelial growth factor plasma levels before and after treatment of neovascular age-related macular degeneration with bevacizumab or ranibizumab. Acta Ophthalmol. 2012, 90, e25–e30. [Google Scholar] [CrossRef]
  35. Tsai, D.C.; Charng, M.J.; Lee, F.L.; Hsu, W.M.; Chen, S.J. Different plasma levels of vascular endothelial growth factor and nitric oxide between patients with choroidal and retinal neovascularization. Ophthalmologica 2006, 220, 246–251. [Google Scholar] [CrossRef]
  36. O’Reilly, M.S.; Boehm, T.; Shing, Y.; Fukai, N.; Vasios, G.; Lane, W.S.; Flynn, E.; Birkhead, J.R.; Olsen, B.R.; Folkman, J. Endostatin: An endogenous inhibitor of angiogenesis and tumor growth. Cell 1997, 88, 277–285. [Google Scholar] [CrossRef] [Green Version]
  37. Dixelius, J.; Cross, M.J.; Matsumoto, T.; Claesson-Welsh, L. Endostatin action and intracellular signaling: Beta-catenin as a potential target? Cancer Lett. 2003, 196, 1–12. [Google Scholar] [CrossRef]
  38. Tatar, O.; Shinoda, K.; Adam, A.; Rohrbach, J.M.; Lucke, K.; Henke-Fahle, S.; Bartz-Schmidt, K.U.; Grisanti, S. Expression of endostatin in human choroidal neovascular membranes secondary to age-related macular degeneration. Exp. Eye Res. 2006, 83, 329–338. [Google Scholar] [CrossRef]
  39. Mori, K.; Ando, A.; Gehlbach, P.; Nesbitt, D.; Takahashi, K.; Goldsteen, D.; Penn, M.; Chen, C.T.; Melia, M.; Phipps, S.; et al. Inhibition of choroidal neovascularization by intravenous injection of adenoviral vectors expressing secretable endostatin. Am. J. Pathol. 2001, 159, 313–320. [Google Scholar] [CrossRef] [Green Version]
  40. Pechan, P.; Wadsworth, S.; Scaria, A. Gene Therapies for Neovascular Age-Related Macular Degeneration. Cold Spring Harb. Perspect. Med. 2015, 5, a017335. [Google Scholar] [CrossRef] [Green Version]
  41. Cabral, T.; Mello, L.G.M.; Lima, L.H.; Polido, J.; Regatieri, C.V.; Belfort, R., Jr.; Mahajan, V.B. Retinal and choroidal angiogenesis: A review of new targets. Int. J. Retin. Vitr. 2017, 3, 31. [Google Scholar] [CrossRef] [PubMed]
  42. Miyake, M.; Goodison, S.; Lawton, A.; Gomes-Giacoia, E.; Rosser, C.J. Angiogenin promotes tumoral growth and angiogenesis by regulating matrix metallopeptidase-2 expression via the ERK1/2 pathway. Oncogene 2015, 34, 890–901. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  43. Korc, M.; Friesel, R.E. The role of fibroblast growth factors in tumor growth. Curr. Cancer Drug Targets. 2009, 9, 639–651. [Google Scholar] [CrossRef] [PubMed]
  44. Dewerchin, M.; Carmeliet, P. Placental growth factor in cancer. Expert Opin. Targets. 2014, 18, 1339–1354. [Google Scholar] [CrossRef]
  45. Skeie, J.M.; Zeng, S.; Faidley, E.A.; Mullins, R.F. Angiogenin in age-related macular degeneration. Mol. Vis. 2011, 17, 576–582. [Google Scholar]
  46. Ozaki, H.; Hayashi, H.; Oshima, K. Angiogenin levels in the vitreous from patients with proliferative diabetic retinopathy. Ophthalmic Res. 1996, 28, 356–360. [Google Scholar] [CrossRef]
  47. Tobe, T.; Ortega, S.; Luna, J.D.; Ozaki, H.; Okamoto, N.; Derevjanik, N.L.; Vinores, S.A.; Basilico, C.; Campochiaro, P.A. Targeted disruption of the FGF2 gene does not prevent choroidal neovascularization in a murine model. Am. J. Pathol. 1998, 153, 1641–1646. [Google Scholar] [CrossRef] [Green Version]
  48. Sheibani, N. Placental growth factor inhibition for choroidal neovascularization. J. Ophthalmic Vis. Res. 2013, 8, 1–3. [Google Scholar]
  49. Wong, C.G.; Taban, M.; Osann, K.; Ross-Cisneros, F.N.; Bruice, T.C.; Zahn, G.; You, T. Subchoroidal Release of VEGF and bFGF Produces Choroidal Neovascularization in Rabbit. Curr. Eye Res. 2017, 42, 237–243. [Google Scholar] [CrossRef]
  50. Frank, R.N. Growth factors in age-related macular degeneration: Pathogenic and therapeutic implications. Ophthalmic Res. 1997, 29, 341–353. [Google Scholar] [CrossRef]
  51. De Oliveira Dias, J.R.; Rodrigues, E.B.; Maia, M.; Magalhaes, O., Jr.; Penha, F.M.; Farah, M.E. Cytokines in neovascular age-related macular degeneration: Fundamentals of targeted combination therapy. Br. J. Ophthalmol. 2011, 95, 1631–1637. [Google Scholar] [CrossRef] [PubMed]
  52. Huo, X.; Li, Y.; Jiang, Y.; Sun, X.; Gu, L.; Guo, W.; Sun, D. Inhibition of ocular neovascularization by co-inhibition of VEGF-A and PLGF. Cell Physiol. Biochem. 2015, 35, 1787–1796. [Google Scholar] [CrossRef] [PubMed]
  53. Li, D.; Xie, K.; Zhang, L.; Yao, X.; Li, H.; Xu, Q.; Wang, X.; Jiang, J.; Fang, J. Dual blockade of vascular endothelial growth factor (VEGF) and basic fibroblast growth factor (FGF-2) exhibits potent anti-angiogenic effects. Cancer Lett. 2016, 377, 164–173. [Google Scholar] [CrossRef]
  54. Ioanna, Z.; Christian, S.; Christian, G.; Daniel, B. Plasma levels of hypoxia-regulated factors in patients with age-related macular degeneration. Graefes. Arch. Clin. Exp. Ophthalmol. 2018, 256, 325–332. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  55. Zhou, M.; Wang, J.; Wang, W.; Huang, W.; Ding, X.; Zhang, X. Placenta Growth Factor in Eyes with Neovascular Glaucoma Is Decreased after Intravitreal Ranibizumab Injection. PLoS ONE 2016, 11, e0146993. [Google Scholar] [CrossRef] [PubMed]
  56. Ménard, C.; Rezende, F.A.; Miloudi, K.; Wilson, A.; Tétreault, N.; Hardy, P.; SanGiovanni, J.P.; De Guire, V.; Sapieha, P. MicroRNA signatures in vitreous humour and plasma of patients with exudative AMD. Oncotarget 2016, 7, 19171–19184. [Google Scholar] [CrossRef] [Green Version]
  57. Rusanova, I.; Diaz-Casado, M.E.; Fernandez-Ortiz, M.; Aranda-Martinez, P.; Guerra-Librero, A.; Garcia-Garcia, F.J.; Escames, G.; Manas, L.; Acuna-Castroviejo, D. Analysis of Plasma MicroRNAs as Predictors and Biomarkers of Aging and Frailty in Humans. Oxid. Med Cell Longev. 2018, 2018, 7671850. [Google Scholar] [CrossRef] [Green Version]
  58. Landskroner-Eiger, S.; Moneke, I.; Sessa, W.C. miRNAs as modulators of angiogenesis. Cold Spring Harb. Perspect. Med. 2013, 3, a006643. [Google Scholar] [CrossRef] [Green Version]
  59. Chamorro-Jorganes, A.; Lee, M.Y.; Araldi, E.; Landskroner-Eiger, S.; Fernandez-Fuertes, M.; Sahraei, M.; Quiles Del Rey, M.; van Solingen, C.; Yu, J.; Fernandez-Hernando, C.; et al. VEGF-Induced Expression of miR-17-92 Cluster in Endothelial Cells Is Mediated by ERK/ELK1 Activation and Regulates Angiogenesis. Circ. Res. 2016, 118, 38–47. [Google Scholar] [CrossRef]
  60. Nunes, D.N.; Dias-Neto, E.; Cardó-Vila, M.; Edwards, J.K.; Dobroff, A.S.; Giordano, R.J.; Mandelin, J.; Brentani, H.P.; Hasselgren, C.; Yao, V.J.; et al. Synchronous down-modulation of miR-17 family members is an early causative event in the retinal angiogenic switch. Proc. Natl. Acad. Sci. USA 2015, 112, 3770–3775. [Google Scholar] [CrossRef] [Green Version]
  61. Fiedler, J.; Thum, T. New Insights Into miR-17-92 Cluster Regulation and Angiogenesis. Circ. Res. 2016, 118, 9–11. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  62. Guduric-Fuchs, J.; O’Connor, A.; Cullen, A.; Harwood, L.; Medina, R.J.; O’Neill, C.L.; Stitt, A.W.; Curtis, T.M.; Simpson, D.A. Deep sequencing reveals predominant expression of miR-21 amongst the small non-coding RNAs in retinal microvascular endothelial cells. J. Cell Biochem. 2012, 113, 2098–2111. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  63. Sabatel, C.; Malvaux, L.; Bovy, N.; Deroanne, C.; Lambert, V.; Gonzalez, M.L.; Colige, A.; Rakic, J.M.; Noel, A.; Martial, J.A.; et al. MicroRNA-21 exhibits antiangiogenic function by targeting RhoB expression in endothelial cells. PLoS ONE 2011, 6, e16979. [Google Scholar] [CrossRef]
  64. Ertekin, S.; Yildirim, O.; Dinc, E.; Ayaz, L.; Fidanci, S.B.; Tamer, L. Evaluation of circulating miRNAs in wet age-related macular degeneration. Mol. Vis. 2014, 20, 1057–1066. [Google Scholar] [PubMed]
  65. Zhou, Q.; Anderson, C.; Hanus, J.; Zhao, F.; Ma, J.; Yoshimura, A.; Wang, S. Strand and Cell Type-specific Function of microRNA-126 in Angiogenesis. Mol. Ther. 2016, 24, 1823–1835. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  66. Wang, L.; Lee, A.Y.W.; Wigg, J.P.; Peshavariya, H.; Liu, P.; Zhang, H. miR-126 Regulation of Angiogenesis in Age-Related Macular Degeneration in CNV Mouse Model. Int. J. Mol. Sci. 2016, 17, 895. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  67. Bai, Y.; Bai, X.; Wang, Z.; Zhang, X.; Ruan, C.; Miao, J. MicroRNA-126 inhibits ischemia-induced retinal neovascularization via regulating angiogenic growth factors. Exp. Mol. Pathol. 2011, 91, 471–477. [Google Scholar] [CrossRef]
  68. Ye, P.; Liu, J.; He, F.; Xu, W.; Yao, K. Hypoxia-induced deregulation of miR-126 and its regulative effect on VEGF and MMP-9 expression. Int. J. Med. Sci. 2014, 11, 17–23. [Google Scholar] [CrossRef] [Green Version]
  69. Alexandrov, P.N.; Dua, P.; Lukiw, W.J. Up-Regulation of miRNA-146a in Progressive, Age-Related Inflammatory Neurodegenerative Disorders of the Human CNS. Front. Neurol. 2014, 5, 181. [Google Scholar] [CrossRef] [Green Version]
  70. Testa, U.; Pelosi, E.; Castelli, G.; Labbaye, C. miR-146 and miR-155: Two Key Modulators of Immune Response and Tumor Development. Non-Coding RNA 2017, 3, 22. [Google Scholar] [CrossRef]
  71. He, F.; Liu, B.; Meng, Q.; Sun, Y.; Wang, W.; Wang, C. Modulation of miR-146a/complement factor H-mediated inflammatory responses in a rat model of temporal lobe epilepsy. Biosci. Rep. 2016, 36, e00433. [Google Scholar] [CrossRef]
  72. Romano, G.L.; Platania, C.B.M.; Drago, F.; Salomone, S.; Ragusa, M.; Barbagallo, C.; Di Pietro, C.; Purrello, M.; Reibaldi, M.; Avitabile, T.; et al. Retinal and Circulating miRNAs in Age-Related Macular Degeneration: An In vivo Animal and Human Study. Front. Pharm. 2017, 8, 168. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  73. Yan, L.; Lee, S.; Lazzaro, D.R.; Aranda, J.; Grant, M.B.; Chaqour, B. Single and Compound Knock-outs of MicroRNA (miRNA)-155 and Its Angiogenic Gene Target CCN1 in Mice Alter Vascular and Neovascular Growth in the Retina via Resident Microglia. J. Biol. Chem. 2015, 290, 23264–23281. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  74. Liu, Q.; Fu, H.; Sun, F.; Zhang, H.; Tie, Y.; Zhu, J.; Xing, R.; Sun, Z.; Zheng, X. miR-16 family induces cell cycle arrest by regulating multiple cell cycle genes. Nucleic Acids Res. 2008, 36, 5391–5404. [Google Scholar] [CrossRef] [PubMed]
  75. Baird, P.N.; Islam, F.M.; Richardson, A.J.; Cain, M.; Hunt, N.; Guymer, R. Analysis of the Y402H variant of the complement factor H gene in age-related macular degeneration. Investig. Ophthalmol. Vis. Sci. 2006, 47, 4194–4198. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  76. Grassmann, F.; Schoenberger, P.G.A.; Brandl, C.; Schick, T.; Hasler, D.; Meister, G.; Fleckenstein, M.; Lindner, M.; Helbig, H.; Fauser, S.; et al. A circulating microrna profile is associated with late-stage neovascular age-related macular degeneration. PLoS ONE 2014, 9, e107461. [Google Scholar] [CrossRef] [PubMed]
  77. Cascella, R.; Strafella, C.; Caputo, V.; Errichiello, V.; Zampatti, S.; Milano, F.; Potenza, S.; Mauriello, S.; Novelli, G.; Ricci, F.; et al. Towards the application of precision medicine in Age-Related Macular Degeneration. Prog. Retin Eye Res. 2018, 63, 132–146. [Google Scholar] [CrossRef] [PubMed]
  78. Cascella, R.; Strafella, C.; Longo, G.; Ragazzo, M.; Manzo, L.; De Felici, C.; Errichiello, V.; Caputo, V.; Viola, F.; Eandi, C.M.; et al. Uncovering genetic and non-genetic biomarkers specific for exudative age-related macular degeneration: Significant association of twelve variants. Oncotarget 2017, 9. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  79. Blasiak, J.; Watala, C.; Tuuminen, R.; Kivinen, N.; Koskela, A.; Uusitalo-Jarvinen, H.; Tuulonen, A.; Winiarczyk, M.; Mackiewicz, J.; Zmorzynski, S.; et al. Expression of VEGFA-regulating miRNAs and mortality in wet AMD. J. Cell. Mol. Med. 2019. [Google Scholar] [CrossRef] [Green Version]
  80. Boyle, E.A.; O’Roak, B.J.; Martin, B.K.; Kumar, A.; Shendure, J. MIPgen: Optimized modeling and design of molecular inversion probes for targeted resequencing. Bioinformatics 2014, 30, 2670–2672. [Google Scholar] [CrossRef]
  81. Martin, M. Cutadapt removes adapter sequences from high-throughput sequencing reads. EMBnet.J. 2011, 17. [Google Scholar] [CrossRef]
  82. Li, H.; Durbin, R. Fast and accurate short read alignment with Burrows-Wheeler transform. Bioinformatics 2009, 25, 1754–1760. [Google Scholar] [CrossRef] [PubMed] [Green Version]
  83. Van der Auwera, G.A.; Carneiro, M.O.; Hartl, C.; Poplin, R.; Del Angel, G.; Levy-Moonshine, A.; Jordan, T.; Shakir, K.; Roazen, D.; Thibault, J.; et al. From FastQ data to high confidence variant calls: The Genome Analysis Toolkit best practices pipeline. Curr. Protoc. Bioinform. 2013, 43, 11.10.1–11.10.33. [Google Scholar] [CrossRef]
  84. McLaren, W.; Gil, L.; Hunt, S.E.; Riat, H.S.; Ritchie, G.R.; Thormann, A.; Flicek, P.; Cunningham, F. The Ensembl Variant Effect Predictor. Genome Biol. 2016, 17, 122. [Google Scholar] [CrossRef] [Green Version]
Table 1. Characteristics of the study groups.
Table 1. Characteristics of the study groups.
ParameterAMD GroupControl Groupp-Value *
Number of subjects354121
Sex (male/female)135/21932/890.02
Patient’s age (years) (mean ± SD)73.4 ± 8.073.1 ± 6.00.41
BMI (kg/m2) (mean ± SD)26.93 ± 4.2226.56 ± 3.660.43
WHR (arbitrary units) (mean ± SD)0.90 ± 0.090.88 ± 0.090.13
Waist circumference (cm) (mean ± SD)103.25 ± 9.09102.10 ± 7.260.33
MAP (mmHg) (mean ± SD)98.30 ± 11.1098.72 ± 9.660.86
Current smokers (%)13.62%6.25%0.0503
Former smokers (%)51.39%30.93%0.0004
Smoking pack-years (mean ± SD)13.58 ± 18.916.00 ± 13.090.00007
Period without smoking (years) (mean ± SD)6.79 ± 10.905.30 ± 10.230.055
Iris color (dark/light)91/26126/950.39
Outdoor/indoor working conditions40.11/59.89%33.06/66.94%0.19
Hypertension (%)64.71%71.13%0.27
Duration of hypertension (years) (mean ± SD)8.17 ± 9.459.15 ± 9.860.27
History of ischemic heart disease (%)16.15%11.34%0.33
Duration of ischemic heart disease (years) (mean ± SD)1.23 ± 4.170.81 ± 3.280.26
History of cardiac infarction (%)6.21%6.19%1.00
History of cerebral stroke (%)2.81%3.09%1.00
History of peripheral artery disease (%)4.97%6.19%0.61
History of aortic aneurysm (%)1.57%0.00%0.59
Hypotensive drugs/vasodilators65.02%70.10%0.39
Hormonal drugs17.13%20.62%0.45
Thyroxine13.71%20.62%0.11
Steroids1.87%1.03%1.00
Other hormonal drugs1.25%0.00%0.58
Statins26.63%36.08%0.07
NSAIDs20.19%19.59%1.00
Cardiac medications/antiarrhythmic drugs13.93%14.43%0.87
Antiasthmatic drugs7.43%3.09%0.16
Antidepressants4.66%5.15%0.79
* Mann–Whitney test/Fisher’s exact test. In bold, p-value < 0.05, which was considered statistically significant.
Table 2. (a) Comparison of the levels of angiogenesis-regulating factors in AMD patients (both dry and wet) and controls. (b) Comparison of the levels of angiogenesis-regulating factors in dry and wet AMD patients.
(a)
(a)
AMD GroupControl Groupp-Value *
NMean ± SDNMean ± SD
Angiogenin (pg/mL)3123802.28 ± 2396.121195341.18 ± 3800.49<0.001
Angiopoietin-13137371.09 ± 4735.691198032.73 ± 5305.490.338
Endostatin (pg/mL)31334,804.05 ± 11,909.8611940,891.63 ± 13,835.72<0.001
FGF-basic (pg/mL)313162.13 ± 72.68118188.32 ± 86.490.002
FGF-acidic (pg/mL)31398.53 ± 65.1411986.52 ± 38.860.117
PDGF-AA (pg/mL)313623.55 ± 392.73119559.00 ± 328.330.261
PlGF (pg/mL)31310.45 ± 4.3211913.30 ± 6.86<0.001
Thrombospondin-2 (pg/mL)3139557.33 ± 5308.181198781.31 ± 4659.820.201
VEGF (pg/mL)31337.94 ± 22.7211946.69 ± 34.890.137
VEGF-D (pg/mL)313189.35 ± 81.74118196.68 ± 94.950.870
N: number of observations; * Mann–Whitney test. In bold, p-value < 0.05, which was considered statistically significant.
(b)
(b)
Dry AMD GroupWet AMD Groupp-Value *
NMean ± SDNMean ± SD
Angiogenin (pg/mL)1593908.10 ± 2493.551533692.32 ± 2293.480.553
Angiopoietin-11607060.17 ± 4163.041537696.25 ± 5262.750.622
Endostatin (pg/mL)16034,307.44 ± 11,932.4715335,323.38 ± 11,903.060.393
FGF-basic (pg/mL)160164.67 ± 62.95153159.48 ± 81.760.128
FGF-acidic (pg/mL)160101.54 ± 59.7515395.39 ± 70.400.241
PDGF-AA (pg/mL)160624.48 ± 384.43153622.59 ± 402.480.859
PlGF (pg/mL)16010.47 ± 3.5315310.44 ± 5.040.202
Thrombospondin-2 (pg/mL)1609614.22 ± 5704.431539497.83 ± 4877.540.747
VEGF (pg/mL)16039.49 ± 24.2715336.32 ± 20.920.184
VEGF-D (pg/mL)160190.05 ± 73.08153188.62 ± 90.140.359
N: number of observations; * Mann–Whitney test. In bold, p-value < 0.05, which was considered statistically significant.
Table 3. (a) Plasma miRNA profiles in AMD patients and controls. (b) Plasma miRNA profiles in wet and dry AMD.
(a)
(a)
AMD GroupControl Groupp-Value *
NMean ± SDNMean ± SD
miRNA-9-5p3312.078 ± 3.0501131.900 ± 0.8790.128
miRNA-16-5p33416.370 ± 12.21811410.159 ± 10.085<0.001
miRNA-17-3p3325.369 ± 3.5541144.428 ± 3.292<0.001
miRNA-17-5p3332.600 ± 2.4981131.560 ± 0.888<0.001
miRNA-21-3p3341.772 ± 1.4581132.408 ± 2.224<0.001
miRNA-23a-3p3332.005 ± 2.67751131.611 ± 2.080<0.001
miRNA-30b3321.274 ± 0.6061131.306 ± 0.9000.383
miRNA-933314.195 ± 3.5081143.882 ± 2.9920.860
miRNA-126-5p3311.262 ± 0.4001131.020 ± 0.290<0.001
miRNA-146a3320.712 ± 0.5871130.692 ± 0.8250.002
miRNA-150-5p3351.716 ± 6.5801143.318 ± 12.8300.265
miRNA-155-5p3341.551 ± 5.5481131.903 ± 2.224<0.001
miRNA-191-5p3330.963 ± 0.6851131.178 ± 1.0370.021
miRNA-223-3p3331.813 ± 6.4241131.691 ± 4.1810.019
N: number of observations; * Mann–Whitney test; Expression was calculated in relation to the expression of miR-93 as reference miRNA. In bold, p-value < 0.05, which was considered statistically significant.
(b)
(b)
Dry AMD GroupWet AMD Groupp-Value *
NMean ± SDNMean ± SD
miRNA-9-5p1642.344 ± 4.0851671.818 ± 1.4050.426
miRNA-16-5p16514.524 ± 11.30816918.172 ± 12.8230.002
miRNA-17-3p1655.082 ± 3.1821675.654 ± 3.8750.292
miRNA-17-5p1652.659 ± 2.5441682.542 ± 2.4580.839
miRNA-21-3p1651.851 ± 1.7271691.696 ± 1.1350.627
miRNA-23a-3p1652.105 ± 3.1761681.908 ± 2.0800.040
miRNA-30b1651.174 ± 0.5981671.373 ± 0.600<0.001
miRNA-931643.798 ± 3.1471674.585 ± 3.8020.099
miRNA-126-5p1641.278 ± 0.3361671.247 ± 0.4550.079
miRNA-146a1650.702 ± 0.5301670.722 ± 0.6400.922
miRNA-150-5p1651.569 ± 4.1421701.859 ± 8.2990.836
miRNA-155-5p1651.233 ± 0.7741691.862 ± 7.7610.431
miRNA-191-5p1650.877 ± 0.6361681.048 ± 0.7210.026
miRNA-223-3p1641.587 ± 4.2281692.033 ± 8.0080.291
N: number of observations; * Mann–Whitney test; Expression was calculated in relation to the expression of miR-93 as reference miRNA. In bold, p-value < 0.05, which was considered statistically significant.
Table 4. Spearman’s correlation coefficients for plasma miRNAs and angiogenesis-regulating factors in all AMD patients (both wet and dry AMD subtypes included).
Table 4. Spearman’s correlation coefficients for plasma miRNAs and angiogenesis-regulating factors in all AMD patients (both wet and dry AMD subtypes included).
miRNAAngiogeninAngiopoietin-1EndostatinFGF-BasicFGF-AcidicPDGF-AAPlGFThrombospondin-2VEGFVEGF_D
miRNA-9-5p0.0230.011−0.0200.044−0.008−0.0220.019−0.005−0.0360.038
miRNA-16-5p−0.031−0.0110.015−0.037−0.0820.098−0.070−0.0380.019−0.075
miRNA-17-3p0.098−0.0940.012−0.053−0.175−0.069−0.147−0.129−0.072−0.155
miRNA-17-5p0.2470.0310.2090.102−0.214−0.0540.051−0.015−0.073−0.083
miRNA-21-3p0.0140.057-0.0190.017−0.0020.0190.114−0.0380.0820.060
miRNA-23a-3p−0.2390.062−0.194−0.0660.2540.148−0.0270.0540.1250.111
miRNA-30b−0.1550.047−0.068−0.0150.0730.138−0.101−0.0340.113−0.030
miRNA-930.2180.0570.1920.066−0.237−0.0200.0490.013−0.137−0.085
miRNA-126-5p0.0540.0450.108−0.013−0.0960.0450.014−0.030−0.006−0.071
miRNA-146a−0.1940.071−0.208−0.0200.2450.084−0.0350.0410.0930.016
miRNA-150-5p0.2300.1400.2110.076−0.231−0.0640.1610.030−0.087−0.016
miRNA-155-5p−0.312−0.001−0.246−0.0730.2170.155−0.1590.0670.1390.073
miRNA-191-5p0.134−0.0340.1110.028−0.057−0.0620.057−0.010−0.087−0.005
miRNA-223-3p−0.3100.071−0.225−0.1350.2620.179−0.166−0.0690.1690.068
Statistically significant results (p < 0.05) are shown in bold. The grey background corresponds to unique correlations that were statistically significant only in the AMD group and not in controls.
Table 5. Spearman’s correlation coefficients for plasma miRNAs and angiogenesis-regulating factors in controls.
Table 5. Spearman’s correlation coefficients for plasma miRNAs and angiogenesis-regulating factors in controls.
miRNAAngiogeninAngiopoietin-1EndostatinFGF-BasicFGF-AcidicPDGF-AAPlGFThrombospondin-2VEGFVEGF_D
miRNA-9-5p0.1140.0040.1530.010−0.0270.010−0.186−0.179−0.0290.073
miRNA-16-5p−0.145−0.0350.0080.1220.114−0.026−0.062−0.0190.1060.040
miRNA-17-3p−0.046−0.0880.051−0.0040.026−0.032−0.159−0.0830.0390.001
miRNA-17-5p0.225−0.0180.162−0.0820.0100.098−0.028−0.1680.0790.019
miRNA-21-3p0.0100.0140.032−0.047−0.145−0.031−0.089−0.099−0.114−0.129
miRNA-23a-3p−0.035−0.2200.038−0.188−0.042−0.134−0.024−0.193−0.1580.009
miRNA-30b0.151−0.1390.115−0.1320.0350.008−0.052−0.2110.043−0.036
miRNA-93−0.007−0.1110.036−0.022−0.096−0.053−0.063−0.114−0.145−0.033
miRNA-126-5p−0.2280.031−0.0900.0920.1070.0110.1720.0640.0420.042
miRNA-146a−0.131−0.228−0.106−0.117−0.031−0.1290.037−0.155−0.150−0.010
miRNA-150-5p−0.131−0.0700.0040.0490.052−0.071−0.155−0.0940.0520.045
miRNA-155-5p−0.0460.026−0.1380.1140.0720.0050.216−0.0130.0150.138
miRNA-191-5p0.027−0.0370.052−0.0490.0160.1060.026−0.0820.025−0.009
miRNA-223-3p−0.210−0.0810.0010.1520.064−0.1600.003−0.088−0.0420.007
Statistically significant results (p < 0.05) are shown in bold.
Table 6. Plasma miRNA expression profiles in patients with different alleles in CFH Y402H.
Table 6. Plasma miRNA expression profiles in patients with different alleles in CFH Y402H.
p-Value 1TTTC + CCp-Value 2CCTT + TCp-Value 2
MeanMedianMeanMedian MeanMedianMeanMedian
miRNA-9-5p0.7762.2251.5331.9311.6720.9271.9101.5832.0361.7340.535
miRNA-16-5p0.00220.07916.30515.00412.0110.0007 *16.18712.25215.98112.5370.567
miRNA-17-3p0.1015.8055.2905.0564.4600.0495.1464.6955.2474.4900.960
miRNA-17-5p0.0123.3332.0982.4091.5270.0052.1391.5072.8441.6770.058
miRNA-21-3p0.5021.9161.2831.7311.2860.6541.6271.2481.8451.3240.241
miRNA-23a-3p0.0261.4471.1232.1191.3250.0571.6071.2852.1761.3020.288
miRNA-30b0.1191.3401.1961.2361.1030.0431.2431.0941.2661.1570.265
miRNA-930.2134.8523.8914.0152.6910.1093.8762.4344.3573.1990.204
miRNA-126-5p0.5621.2731.2211.2411.1790.7121.2041.1671.2711.1910.283
miRNA-146a0.2350.6130.4740.7270.6020.2300.6740.5060.7190.6040.499
miRNA-150-5p0.3831.2320.7441.8080.6670.2462.4140.6561.3050.6970.256
miRNA-155-5p0.4321.0910.9481.7601.0800.1952.3751.1541.2270.9940.648
miRNA-191-5p0.6280.9550.8830.9530.8630.9170.9140.7890.9750.8990.353
miRNA-223-3p0.0562.9190.7421.5201.0220.0451.8391.0091.7861.0210.628
Statistically significant results (p < 0.05) are shown in bold. 1 Kruskal-Wallis test, 2 Mann-Whitney test, * statistically significant when correction for multiple testing was applied (p < 0.0018).

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Ulańczyk, Z.; Sobuś, A.; Łuczkowska, K.; Grabowicz, A.; Mozolewska-Piotrowska, K.; Safranow, K.; Kawa, M.P.; Pałucha, A.; Krawczyk, M.; Sikora, P.; et al. Associations of MicroRNAs, Angiogenesis-Regulating Factors and CFH Y402H Polymorphism—An Attempt to Search for Systemic Biomarkers in Age-Related Macular Degeneration. Int. J. Mol. Sci. 2019, 20, 5750. https://doi.org/10.3390/ijms20225750

AMA Style

Ulańczyk Z, Sobuś A, Łuczkowska K, Grabowicz A, Mozolewska-Piotrowska K, Safranow K, Kawa MP, Pałucha A, Krawczyk M, Sikora P, et al. Associations of MicroRNAs, Angiogenesis-Regulating Factors and CFH Y402H Polymorphism—An Attempt to Search for Systemic Biomarkers in Age-Related Macular Degeneration. International Journal of Molecular Sciences. 2019; 20(22):5750. https://doi.org/10.3390/ijms20225750

Chicago/Turabian Style

Ulańczyk, Zofia, Anna Sobuś, Karolina Łuczkowska, Aleksandra Grabowicz, Katarzyna Mozolewska-Piotrowska, Krzysztof Safranow, Miłosz Piotr Kawa, Andrzej Pałucha, Mariusz Krawczyk, Piotr Sikora, and et al. 2019. "Associations of MicroRNAs, Angiogenesis-Regulating Factors and CFH Y402H Polymorphism—An Attempt to Search for Systemic Biomarkers in Age-Related Macular Degeneration" International Journal of Molecular Sciences 20, no. 22: 5750. https://doi.org/10.3390/ijms20225750

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