Peptidyl-prolyl isomerase, NIMA-interacting 1 (PIN1) plays a significant role in the brain and is implicated in numerous cellular processes related to Alzheimer's disease (AD) and other neurodegenerative conditions. There are confounding results concerning PIN1 activity in AD brains. Also PIN1 genetic variation was inconsistently associated with AD risk.
Methods
We performed analysis of coding and promoter regions of PIN1 in early- and late-onset AD and frontotemporal dementia (FTD) patients in comparison with healthy controls.
Results
Analysis of eighteen PIN1 common polymorphisms and their haplotypes in EOAD, LOAD and FTD individuals in comparison with the control group did not reveal their contribution to disease risk.
In six unrelated familial AD patients four novel PIN1 sequence variants were detected. c.58+64C>T substitution that was identified in three patients, was located in an alternative exon. In silico analysis suggested that this variant highly increases a potential affinity for a splicing factor and introduces two intronic splicing enhancers. In the peripheral leukocytes of one living patient carrying the variant, a 2.82 fold decrease in PIN1 expression was observed.
Conclusion
Our data does not support the role of PIN1 common polymorphisms as AD risk factor. However, we suggest that the identified rare sequence variants could be directly connected with AD pathology, influencing PIN1 splicing and/or expression.
Background
PIN1 is a ubiquitously expressed protein, belonging to the evolutionarily conserved peptidyl-prolyl isomerase (PPIase) family. PIN1 isomerizes p(Ser/Thr)-Pro motifs in the target proteins, which leads to the alteration of their structure, function, intracellular localization and/or stability [1]. Previous studies have demonstrated that PIN1 plays a crucial role in multiple cellular processes and, likewise, it has been implicated in pathogenesis of several diseases, including cancer, inflammation to neurodegenerative diseases [2-8].
The gene encoding PIN1 maps to chromosome 19p13.2, a region associated with late-onset Alzheimer's disease (LOAD) [9]. Moreover, PIN1 is the only known gene whose knockout in mice can cause both Tau and Aβ-related pathologies in an age-dependent manner [4,10]. It was shown that PIN1-catalysed conformation change of pT668 could prevent amyloidogenic processing of APP [10]. Additionally, in a similar manner PIN1 may indirectly reverse the hyperphosphorylation of Tau, restoring its ability to bind microtubules, as well as inhibit GSK3β phosphorylation [5,11]. As overexpression of PIN1 in vitro induced a reduction in amyloidogenic processing of APP, it has been proposed that functional PIN1 could prevent or slow down AD onset [10]. On the other hand, PIN1 dysfunction or down-regulation e.g. under the oxidative stress, would favor cis form of pT668 APP and toxic Aβ production, leading finally to neurodegeneration [5,12,13]. However, there are confounding results considering the activity and the role of PIN1 in AD [14]. PIN1 protein was depleted in hippocampi of AD patients [2,15]. However, others showed that in the cortex of the frontal lobes of MCI and AD patients PIN1 levels and activity were increased compared to healthy controls [16].
Recently, PIN1 expression has been shown to increase during neuronal differentiation, which led to suggestion that PIN1 dysfunction or downregulation could favor cell cycle re-entry [17-19]. This could result in aneuploidy observed in AD patients brains [20]. Indeed, several lines of evidence indicate that disturbed maintenance and segregation of chromosomes, DNA damage and impaired repair could contribute to AD [21-23].
PIN1 downregulation or dysfunction could result not only from oxidative stress, but also could be connected with genetic variability [10,12,15,17,24]. Segat et al. demonstrated that the carriers of PIN1 -842C allele and/or -842C/-667C haplotype have an increased risk of AD, lower age of onset, and reduced PIN1 levels in peripheral mononuclear cells [12]. Moreover, individuals with amnestic MCI recruited from the same population showed a similar genotype distribution of -842 SNP as AD patients in Segat et al. (2007) study [12,25]. However, other studies on the role of PIN1 genetic variants in AD did not repeat the initial findings [26-28].
To our knowledge, a thorough analysis of haplotypes that are formed by a set of PIN1 SNPs has not been described yet. Moreover, there were no studies on the involvement of PIN1 variants in early onset AD (EOAD), familial AD, and FTD, despite the fact that decreased PIN1 expression and depletion of neuronal nuclear PIN1 has been suggested to be a common feature in AD and FTD [7]. Given supporting evidence for PIN1 role in the brain, and yet unresolved influence of PIN1 sequence variation in AD and FTD, we decided to perform an exhaustive analysis of PIN1 in a group of Polish AD and FTD patients.
Methods
111 late onset (mean age of onset ± SD: 73.2 ± 5.0 years, range 66-88; 69.4% females) and 49 early onset AD patients (mean age of onset ± SD: 52.6 ± 9.8 years; 57.1% females), and 57 frontotemporal dementia (FTD) patients (mean age of onset: 59.3 ± 12.3 years; 43.9% females) were recruited for the study. Twenty-six patients in the EOAD group have a family history of AD recorded, and 70 patients in the LOAD group claim a family history of dementia. The control group consisted of 104 healthy, non-demented individuals (mean age ± SD: 75.1 ± 5.2 years, range: 68-90; 71.15% females). AD diagnosis fulfilled the criteria of National Institute of Neurological and Communicative Disorders and Stroke - Alzheimer's Disease and Related Disorders Association (NINCDS-ADRDA) for probable AD, whereas FTD was diagnosed according to Lund and Manchester Groups (1994) and Neary (1998) criteria [29,30]. The control subjects had normal mental status test scores and no clinical evidence of cognitive deficits in neurological examination.
All participants or their relatives provided written, informed consent and the study was approved by the Ethics Committee of the MSWiA Hospital in Warsaw in accordance with the principles of the Helsinki Declaration.
PIN1 promoter (1545 kb upstream the ATG translation initiation codon; NCBI GenBank AF501321) and coding regions (4 exons with flanking intronic regions of about 100 nt; NCBI GenBank NM_006221, NC_000019.8) were amplified (primers are listed in Additional file 1). Analyzed fragments covered 18 annotated DNA variations (rs7247933, rs4804459, rs2233678, rs35794537, rs2233679, rs2233680, rs7250788, rs35973416, rs28589723, rs2233681, rs2233682, rs2233683, rs2010457, rs11540415, rs34412035, rs11540414, rs3178950, rs35575918).
APOE genotypes were determined as described previously [31]. Patients and controls were stratified into two subgroups, according to APOE status: those carrying at least one APOE4 allele (APOE4+) and APOE4 non-carriers (APOE4-).
First, sequencing of PIN1 in DNA samples from EOAD and FTD patients was performed. Four identified variants in EOAD patients were screened in the control group and LOAD patients using denaturing high performance liquid chromatography (dHPLC). DHPLC analysis was performed as described previously (for DHPLC temperature for the analysis of PIN1 gene fragments see Additional file 2) [32,33]. Both groups were also screened for SNPs heterozygous in the Polish population (rs4804459, rs2233678, rs2233679, rs2233682, rs2233683, rs2010457).
The identified promoter DNA substitution was examined for introducing potential differences in transcription factor binding sites using MatInspector (Geneomatix software, Germany, [34]) and Mapper http://bio.chip.org/mapper. The possible effect of identified DNA variants on splicing was investigated using ESEfinder (release 3.0) [35,36] and Automated Splice Site Analyses [37,38]. ESEfinder identifies putative exon splicing enhancers responsive to the human serine/arginine-rich (SR) proteins, whereas Automated Splice Site Analyses evaluates changes in splice site strength based on information theory based models. Analysis of intronic sequences containing mutations were done also with application of RegRNA: A Regulatory RNA Motifs and Elements Finder http://regrna.mbc.nctu.edu.tw/index.html. ConSeq http://conseq.bioinfo.tau.ac.il/ program was used to evaluate the degree of conservation of mutated residue in the protein coding sequence.
Total RNA was isolated from leukocytes of the patient with c.58+64C>T variant and four healthy individuals, using standard TRI Reagent® method, according to manufacturer's procedure (Ambion). The SuperScript First-Strand Synthesis System for RT-PCR (Invitrogen) was used to synthesize first-strand cDNA, using oligo-dT primers and equal amount of RNA from the samples. Then all samples were adjusted to 20 ng/μl cDNA. qPCR was performed in triplicates in a 25 μl reaction mix with 3 μl of diluted cDNA template, using standard SYBR Green protocol on ABI 7500 Sequence Detection System (Applied Biosystems). The thermal cycling conditions comprised an initial denaturation step at 95°C, then 40 cycles of 95°C for 15 s and 60°C for 1 min. The temperature range used for the melting curve generation was from 60°C to 95°C. The dissociation plots indicated a single peak in all reactions.
The primer set for PIN1 was designed to span intron 3 in order to distinguish amplified cDNA from genomic DNA. No primer dimers were observed. The level of PIN1 mRNA was normalized to that of succinate dehydrogenase complex subunit A (SDHA). The relative quantification method was applied to analyze real-time PCR results. Similar efficiencies of target and reference genes allowed us to use the comparative Ct method (2-deltadeltaCt) to calculate relative expression of PIN1 in our patient in comparison with four healthy individuals.
Comparisons of allele and genotype frequencies between the affected and the control group were carried out using the chi-square or Fisher exact (2-tailed) tests. The Hardy-Weinberg equilibrium was tested using a chi-square goodness-of-fit test. Kruskal-Wallis test was used to compare age at onset of LOAD symptoms between genotype groups. Statistical difference was accepted at p < 0.05.
Haplotype assignment and linkage disequilibrium (LD) between each pair-wise combination of SNPs heterozygous in the studied groups as expressed by D' was calculated using the Haploview 4.0 (http://www.broad.mit.edu/mpg/haploview/, [39]). Haplotypes were inferred using EM algorithm, which was implemented in Haploview [40].
Results
Genotyping promoter region and 4 exons with adjacent flanking intron sequences of the PIN1 gene revealed six heterozygous polymorphisms (rs4804459, rs2233678, rs2233679, rs2233682, rs2233683, rs2010457) that were included in the further analysis. SNPs rs4804459, rs2233678, rs2233679 and rs2010457 were in linkage disequilibrium in LOAD, EOAD, FTD and control groups (Figure 1). SNPs rs2233682 and rs2233683 had low minor allele frequency.
Pairwise linkage disequilibrium between the six genotyped SNPs in a 14 kb region of PIN1 (Haploview 4.1) for combined group (n = 321) of all patients (LOAD, EOAD and FTD) and controls. Numbers inside the squares represent the D' value expressed as a percent. Squares without numbers represent D' values of 1.0, indicative of complete linkage disequilibrium. Darker-shaded squares represent pairs with LOD score for linkage disequilibrium of = 2, light grey squares represent D' = 1 but LOD <2, and white squares represent LOD <2 and D' <1.0.
Genotype and allele frequencies of investigated polymorphisms were similar in LOAD, EOAD, FTD patients in comparison with the controls. Distribution of polymorphisms heterozygous in the studied groups is presented in Table 1. All observed genotype frequencies in the affected and the control group were in the Hardy-Weinberg equilibrium (p > 0.05). The statistical power for comparison of the LOAD (n = 111) and the control (n = 104) groups was sufficient to detect with 80% probability true differences of the allele and haplotype frequencies in the range from 5% (for the most rare alleles) to 12% (for the most common alleles). The respective detectable differences were 6% to 17% for both EOAD (n = 49) and FTD (n = 57) groups when compared to the controls.
Frequencies of six heterozygous in the Polish population PIN1 polymorphisms
SNP
Genotype n (%)
Allele n (%)
rs4804459
GG
GC
CC
p-value
G
C
p-value
Controls
3 (2.88)
33 (31.73)
68 (65.38)
controls vs LOADpatients: p = 0.925
39 (18.75)
169 (81.25)
controls vs LOADpatients: p = 0.841
LOAD patients
2 (1.80)
36 (32.43)
73 (65.77)
40 (18.02)
182 (81.98)
EOAD patients
3 (6.12)
13 (26.53)
33 (67.35)
controls vs EOAD patients p = 0.504
19 (19.4)
79 (80.6)
controls vs EOADpatients: p = 0.887
FTD patients
1 (1.75)
22 (38.60)
34 (59.65)
controls vs FTDpatients: p = 0.462
24 (21.05)
90 (78.95)
controls vs FTDpatients: p = 0.617
Differences between 4 groups: p = 0.668
Differences between 4 groups: p = 0.925
rs2233678
GG
GC
CC
p-value
G
C
p-value
Controls
82 (78.85)
21 (20.19)
1 (0.96)
controls vs LOADpatients: p = 0.715
185 (88.94)
23 (11.06)
controls vs LOADpatients: p = 0.439
LOAD patients
83 (74.77)
26 (23.42)
2 (1.80)
192 (86.48)
30 (13.51)
EOAD patients
34 (69.39)
15 (30.61)
0 (0.00)
controls vs EOADpatients: p = 0.323
83 (84.7%)
15 (15.3)
controls vs EOADpatients: p = 0.263
FTD patients
46 (80.70)
10 (17.54)
1 (1.75)
controls vs FTDpatients: p = 0.924
102 (89.47)
12 (10.53)
controls vs FTDpatients: p = 0.885
Differences between 4 groups: p = 0.673
Differences between 4 groups: p = 0.632
rs2233679
CC
CT
TT
p-value
C
T
p-value
Controls
9 (8.65)
45 (43.27)
50 (48.08)
controls vs LOADpatients: p = 0.928
63 (30.3)
145 (69.7)
controls vs LOADpatients: p = 0.708
LOAD patients
11 (9.91)
49 (44.14)
51 (45.95)
71 (31.98)
151 (68.02)
EOAD patients
5 (10.20)
25 (51.02)
19 (38.78)
controls vs EOADpatients: p = 0.560
35 (35.7)
63 (64.3)
controls vs EOADpatients: p = 0.343
FTD patients
3 (5.26)
30 (52.63)
24 (42.11)
controls vs FTDpatients: p = 0.460
36 (31.58)
78 (68.42)
controls vs FTDpatients: p = 0.806
Differences between 4 groups: p = 0.821
Differences between 4 groups: p = 0.823
rs2233682
GG
GA
AA
p-value
G
A
p-value
Controls
103 (99.04)
1 (0.96)
0 (0.00)
controls vs LOADpatients: p = 1.00
207 (99.52)
1 (0.48)
controls vs LOADpatients: p = 1.00
LOAD patients
110 (99.10)
1 (0.90)
0 (0.00)
221 (99.55)
1 (0.45)
EOAD patients
48 (97.96)
1 (2.04)
0 (0.00)
controls vs EOADpatients: p = 1.00
97 (98.98)
1 (1.02)
controls vs EOADpatients: p = 1.00
FTD patients
57 (100.00)
0 (0.00)
0 (0.00)
controls vs FTDpatients: p = 1.00
114 (100.00)
0 (0.00)
controls vs FTDpatients: p = 1.00
Differences between 4 groups: p = 0.654
Differences between 4 groups: p = 0.655
rs2233683
CC
CT
TT
p-value
C
T
p-value
Controls
100 (96.15)
4 (3.85)
0 (0.00)
controls vs LOADpatients: p = 0.540
204 (98.1)
4 (1.9)
controls vs LOADpatients: p = 0.617
LOAD patients
104 (93.69)
7 (6.31)
0 (0.00)
215 (96.85)
7 (3.15)
EOAD patients
49 (100.00)
0 (0.00)
0 (0.00)
controls vs EOADpatients: p = 0.306
98 (100.00)
0 (0.00)
controls vs EOADpatients: p = 0.310
FTD patients
57 (100.00)
0 (0.00)
0 (0.00)
controls vs FTDpatients: p = 0.298
114 (100.00)
0 (0.00)
controls vs FTDpatients: p = 0.301
Differences between 4 groups: p = 0.089
Differences between 4 groups: p = 0.095
rs2010457
AA
AG
GG
p-value
A
G
p-value
Controls
52 (50.00)
45 (43.27)
7 (6.73)
controls vs LOADpatients: p = 0.923
149 (71.6)
59 (28.4)
controls vs LOADpatients: p = 0.752
LOAD patients
54 (48.65)
48 (43.24)
9 (8.11)
156 (70.3)
66 (29.7)
EOAD patients
20 (40.82)
25 (51.02)
4 (8.16)
controls vs EOADpatients: p = 0.484
65 (66.3)
33 (33.7)
controls vs EOADpatients: p = 0.322
FTD patients
24 (42.11)
28 (49.12)
5 (8.77)
controls vs FTDpatients: p = 0.504
76 (66.7)
38 (33.3)
controls vs FTDpatients: p = 0.264
Differences between 4 groups: p = 0.926
Differences between 4 groups: p = 0.703
There were significantly more APOE4 carriers among the LOAD patients (63.06%) in comparison to the control group (21.15%) (χ2 = 38.52, df = 1, p < 0.00001). Stratification of the LOAD patients and the control group according to the APOE4 status had no influence on their allele or genotype distribution - there were no significant differences between the groups (p > 0.1, data not shown). In addition, none of the studied polymorphisms affected the age at onset of LOAD symptoms (p > 0.1, data not shown).
Polymorphisms heterozygous in the studied groups determined 3 major haplotypes (Table 2). Among them, the most frequent one, CGTGCA was present in >64% chromosomes. GGCGCG and CCCGCG had a frequency >17% and >9%, respectively. Other identified haplotypes had minor frequencies (<3%). None of the haplotypes was associated with disease status (Table 2).
Frequency of PIN1 haplotypes in LOAD, EOAD and FTD patients compared with the control group
Haplotype *
Controls (%)
All patients (LOAD, EOAD and FTD) together (%)
p value for all patients together vs controls
LOAD (%)
p value for LOAD vs controls
EOAD (%)
p value for EOAD vs controls
FTD (%)
p value for FTD vs controls
CGTGCA
68.7
66.1
0.510
67.1
0.717
64.3
0.438
65.8
0.588
GGCGCG
17.8
18.4
0.844
17.6
0.951
18.4
0.902
20.2
0.599
CCCGCG
8.7
11.3
0.307
9.9
0.654
15.3
0.080
10.5
0.581
CGTGCG
1.0
1.2
0.835
0.9
0.948
0.0
0.333
2.7
0.253
CCCGTA
1.0
1.2
0.838
2.3
0.294
0.0
0.329
0.0
0.291
GGCGCA
1.0
0.5
0.458
0.0
0.149
1.0
0.962
0.9
0.942
CCCGTG
0.9
0.5
0.459
0.9
0.954
0.0
0.331
0.0
0.296
CGCACA
0.5
0.5
0.972
0.5
0.963
1.0
0.585
0.0
0.458
CCCGCA
0.5
0.0
0.151
0.0
0.303
0.0
0.495
0.0
0.463
CGCGCA
0.0
0.2
0.488
0.5
0.332
0.0
-
0.0
-
GCCGCG
0.0
0.2
0.488
0.5
0.332
0.0
-
0.0
-
* The five haplotype loci correspond to SNPs 1-6 in Figure 1
The number of haplotypes within the 14 kb block was greater than the number of SNPs plus one. However, the excess of haplotypes (11 vs 6+1, respectively, Table 2) was still small, which could suggest relatively few recombination events in the past.
Four novel PIN1 variants were identified in six unrelated patients with familial AD (summarized in Table 3). All of identified variants were nucleotide substitutions absent in the control group. We detected one promoter mutation (g.9805834T>C, GenBank AF501321), localized 1187 bases upstream the translation start codon. In exon 1 a silent substitution was found (c.24C>T, GenBank NM_006221 and NC_000019.8), changing the third base of codon 8. Two other variants were localized in introns, c.58+64C>T in intron 1 and c.382+105C>T in intron 3. No sequence alterations were detected in the patients with FTD. As PIN1 was postulated to play an important role in oncogenesis, any recognized tumor or cancer in life history of analyzed patients with PIN1 variants was indicated in Table 3.
New sequence variants in PIN1 and brief description of their carriers.
Variant
Diagnosis
Gender
Age at onset (years)
family history of dementia (+/-)
APOE genotype
Tumors
g.9805834T>C
LOAD
male
70
+ (mother had memory and behavioral disturbances at the age of 60)
34
benign prostate hyperplasia
c.24G>T
EOAD
female
52
+ (mother and father's mother)
33
no data
c.58+64C>T
EOAD
female
51
+ (father)
44
goiter, benign thyroid tumor
LOAD
female
71
+ (mothers's brother suffered from dementia)
34
osteoma ossis frontalis
LOAD
female
70
+ (father in his eighties developed AD symptoms, sister at the age of 66 had psychiatric problems)
34
nodular goitre, breast cancer
c.382+105C>T
EOAD
male
48
+ (father had dementia and died at the age of 73)
34
none
Unfortunately, out of the six mutation carriers, only one was available for further investigation. The other five individuals died before the conduction of the study. As Fanghänel et al. (2006) suggested, Pin1 activity is mainly controlled by its expression level. Therefore, in order to asses PIN1 expression in the carrier of variant c.58+64C>T, we performed quantitative PCR. Relative quantification, using endogenous control gene, SDHA, and four healthy individuals for data normalization, revealed a 2.82 decreased PIN1 mRNA level in the patient (Additional file 3).
Discussion
Several lines of evidence indicate the importance of PIN1 in the nervous system. PIN1 is expressed in different brain regions at least three-fold higher than in other tissues [41] and has been postulated to be involved in neuronal differentiation and in maintaining normal neuronal functions and their postmitotic state [3,4]. Moreover, PIN1 was demonstrated to have a pivotal role in protecting against age-related neurodegeneration [4]. In Alzheimer's disease PIN1 depletion was related to exacerbated tau hyperphosphorylation, generation of NFT and neurotoxic Aβ and subsequent amyloid plaque formation. Additionally, PIN1 depletion was suggested to contribute to neuronal apoptosis [42].
To test the hypothesis that PIN1 dysfunction in AD and/or FTD could be connected with genetic variability, we analyzed the promoter and coding regions of PIN1.
Our data does not support the role of 18 common PIN1 polymorphisms as AD or FTD risk factors. Neither individual alleles, nor haplotypes were associated with EOAD, LOAD or FTD risk. Our findings conflicted with Segat et al. (2007) reports of -842C SNP and -842C/-667C haplotype association with AD in the Northern Italian population, however, they were consistent with the data from the American, French and other Italian cohorts [26-28]. The identified variants g.9805834T>C, c.24C>T and c.382+105C>T are all located on the most prevalent haplotypes, CGTGCA/GGCGCG. The patients with variant c.58+64C>T belonged to diplotypes CGTGCA/CGCGCA, CCCGCG/CGCACA and CCCGTA/CGCACA.
We did not identify sequence variants or haplotype associated with the risk for FTD. On one hand enrolling FTD patients without neuropathological characterization could be seen as a weakness of our study, not allowing us to stratify this group according to tau pathology. However, Thorpe et al (2004) identified PIN1 depletion in FTD with and without tau pathology [7].
Additionally, we identified four novel PIN1 sequence variants in six patients with familial AD (Table 3). One variant was found in the PIN1 promoter region (g.9805834T>C), one in exon 1 (a silent substitution c.24C>T) and two in introns 1 and 3 (c.58+64C>T and c.382+105C>T). None of them was found in the previous studies [26,28]. Variant c.382+105C>T due to its location is rather unlikely to affect splicing of PIN1. The putative role of other variants is described below. All of them could potentially influence PIN1 expression and/or splicing.
In silico analysis of g.9805834T>C variant
In silico analysis of the identified g.9805834T>C promoter variant using Matinspector predicted that it could disrupt the binding sites for four transcription factors/transcription factor families: FAST-1 SMAD interacting proteins, PAR/bZIP family, CCAAT/Enhancer Binding Protein (C/EBPs) and Ikaros zinc finger family. Similar analysis performed by another tool, Mapper, confirmed loss of the sites for C/EBPs and PAR/bZIP family, which could be due to similarities between the consensus sequences recognized by both leucine zipper transcription factor families. In both analyses C/EBP binding site obtained higher matrix similarity scores than the PAR/bZIP family.
The CCAAT/Enhancer Binding Proteins (C/EBPs) belong to the superfamily of transcription factors, which includes c-Jun, c-Fos and cAMP response element binding protein (CREB). C/EBPβ is required for neuronal differentiation, maturation and apoptosis [43-45]. Additionally, it plays an important role in the consolidation of mammalian long-term memory and in synaptic plasticity [46,47].
The activity of C/EBPs depends on the phosphorylation status of their Ser/Thr-Pro motifs and PIN1 was suggested to participate in their post-translational modifications [48]. Mutual interactions of both proteins can affect their common partner, E2F. It was demonstrated that PIN1 expression is mediated by E2F [49] and that C/EBPβ regulates E2F target gene activation by interacting with E2F and presumably by binding to their promoters [16]. Analysis of the whole PIN1 promoter region revealed one (Mapper) or two (Matinspector) binding sites for C/EBPs in the promoter sequence. Therefore, the loss of C/EBP binding site by g.9805834T>C variant might affect EF2 mediated activation of PIN1 transcription.
In silico analysis of c.24G>T variant
c.24G>T is a synonymous substitution (8Pro, CCG>CCT), localized in a region participating in the PIN1 WW domain formation, responsible for binding hyperphosphorylated Tau [5]. ConSeq predicted that 8Pro is a highly conserved residue. In addition, Multiple Sequence Alignment revealed that this position is highly conserved between human PIN1 and its homologs in several species (e.g. Pan troglodytes, Canis lupus familiaris, Bos taurus, Drosophila melanogaster). Moreover, the proline is also conserved between human PIN1 and its yeast ortholog, Ess1p.
Despite c.24G>T variant does not affect protein coding, it might disrupt specific splicing elements. Recently, it has been acknowledged that silent changes have the potential to alter the efficiency and specificity of splicing, and contribute to phenotypic variability [50,51].
Analysis of exon 1 sequence by software that detects exonic splicing enhancer (ESE) sites indicated that c.24G>T variant is located within five putative ESE (Table 4). Importantly, using the default settings of ESEfinder, the program predicted that this transversion might disrupt one putative ESE recognized by SF2/ASF, reduce high score of another SF2/ASF motif and enhance binding of SF2/ASF (IgM-BRCA1). ESEfinder anticipated that c.24G>T mutation might shift a putative responsive site for SC35 four nucleotides downstream PIN1 sequence. Moreover, c.24G>T could increase binding of SRp55 and generate SRp40 motif. However, the new putative SRp40 motif (CCTCCCG) would overlap with the recognition site for SF2/ASF (IgM-BRCA1) (CTCCCGG). Simultaneous binding of two overlapping ESEs is considered as rather unlikely [51].
Effect of c.24G>T mutation on calculated exonic splicing enhancer motifs scores.
SR protein
c.24G
c.24T
SF2/ASF (1)
Score = 2.02
0
SF2/ASF (2)
Score = 4.42
↓ Score = 3.75
SF2/ASF (IgM-BRCA1)
Score = 2.758
↑ Score = 4.13
SC35 (1)
Score = 2.93
0
SC35 (2)
0
↑ Score = 3.54
SRp40
0
Score = 2.88
SRp55
Score = 3.02
↑ Score = 3.83
Only motifs distinguishing wild type DNA sequence and the one with mutation c.24G>T, with scores above the thresholds, are presented.
Analysis of c.58+64C>T variant
Variant c.58+64C>T (according to the GenBank accession numbers NM_006221 and NC_000019.8) was identified in three female patients, one with familial EOAD (fEOAD) and two with familial LOAD (fLOAD). The earlier age at onset of the patient with EOAD (54 years) could be explained by carrying two alleles of APOE4 in comparison with two LOAD patients (aged 70 and 71 years) with the same variant but genotype APOE3/4. As dose-effect relation data on APOE4 allele suggests, homozygosity for APOE4 might have accelerated the age at onset in carrier of c.58+64C>T variant [52].
Importantly, c.58+64C>T substitution is located in an alternative exon found selectively in testis (The AceView genes: http://www.ncbi.nlm.nih.gov/IEB/Research/Acembly). An online tool, Automated Splice Site Analysis, revealed that c.58+64C>T substitution increases 14.3 fold the strength of a potential binding site for SC35 situated one nucleotide upstream the variant. Previously, SC35 was reported to be responsible for aberrant splicing of the E1α Puryvate Dehydrogenase (PDHA1) mRNA in mental retardation with lactic acidosis [53,54]. Moreover, RegRNA program revealed that the c.58+64C>T substitution introduces two intronic splicing enhancers, an intronic AGGG motif (on + strand) and CTGC (on - strand). (A/U)GGG motif was shown to enhance alternative splicing of the chicken beta-tropomyosin pre-mRNA [55], thus introduction of another (A/U)GGG motif to the three preexisting ones in the 5' part of intron 1 could affect its splicing.
Variant c.58+64C>T in the patient with AAO of 51 years was associated with a 2.82 fold decreased PIN1 expression in the blood leukocytes. As decreased PIN1 level was previously observed in brains of Alzheimer's disease patients [2,7,15], it raises the possibility that identified variant could exert more profound effects in the brain.
Presented results concerning c.58+64C>T variant are consistent with the hypothesis linking PIN1 downregulation with amyloidogenic APP processing and aberrant cell cycle re-entry. As it stemmed from the observations of Fanghänel and coworkers (2006), even a basal level of PPIase activity complement a lethal cell cycle dysfunction related to PIN1 dysfunction at the single cell level [56]. However, in organs with high levels of PIN1 activity, like brain and testis, the basal activity is not sufficient to complement the pathology. This observation suggests that decrease in PIN1 activity in human brain could lead to neurodegeneration. The deleterious effect could be mediated either by oxidative stress, or by rare PIN1 sequence variation.
Conclusion
Despite our data do not directly support the role of common PIN1 polymorphisms as AD risk factor, presented results concerning c.58+64C>T variant could be interpreted as being consistent with the hypothesis linking PIN1 downregulation with amyloidogenic APP processing and aberrant cell cycle re-entry. Presented data of the identification of four new PIN1 sequence variants underscore the importance of further studies on PIN1 variation in familial AD patients. None of the variants was connected with very early onset AD and/or rapid progression of the disease. Therefore, our findings suggest that PIN1 variants could be causally connected with familial AD with age at onset ranging from 45 to 75 years.
Competing interests
The authors declare that they have no competing interests.
Authors' contributions
AM and CZ conceived this study. AM and KS performed statistical analysis. AM performed in silico analysis. AM, KJ, MO, and MB performed described experiments
KG, BKH, Maria Styczyńska, JS, DC, AT, and MB collected blood, mRNA and clinical data.
AM, CZ, and KS participated in the management, analysis, interpretation of the data and drafting of the manuscript. All authors read and approved the manuscript.
Pre-publication history
The pre-publication history for this paper can be accessed here:
Supplementary Table 1. Primers used for PIN1 gene amplification.
Click here for file
Additional file 2
Supplementary Table 2. DHPLC temperature for the analysis of PIN1 gene fragments.
Click here for file
Additional file 3
Supplementary Table 3. Primers used for real-time PCR for PIN1 and SDHA are shown.
Click here for file
Acknowledgements
This work was supported by the Ministry of Science and Higher Education grants 2 PO5A 171 29 and PBZ-KBN-124/P05/2004.
A. Maruszak obtained a stipend from Novartis Poland.
YehESMeansARPIN1, the cell cycle and cancerNat Rev Cancer2007738138810.1038/nrc210717410202ButterfieldDAPoonHFSt ClairDKellerJNPierceWMKleinJBMarkesberyWRRedox proteomics identification of oxidatively modified hippocampal proteins in mild cognitive impairment: insights into the development of Alzheimer's diseaseNeurobiol Dis20062222323210.1016/j.nbd.2005.11.00216466929HamdaneMDourlenPBrettevilleASamboAVFerreiraSAndoKKerdraonOBégardSGeayLLippensGSergeantNDelacourteAMaurageCAGalasMCBuéeLPin1 allows for differential Tau dephosphorylation in neuronal cellsMol Cell Neurosci20063215516010.1016/j.mcn.2006.03.00616697218LiouYCSunARyoAZhouXZYuZXHuangHKUchidaTBronsonRBingGLiXHunterTLuKPRole of the prolyl isomerase PIN1 in protecting against age-dependent neurodegenerationNature200342455656110.1038/nature0183212891359LuPJWulfGZhouXZDaviesPLuKPThe prolyl isomerase PIN1 restores the function of Alzheimer-associated phosphorylated tau proteinNature199939978478810.1038/2165010391244LuKPLiouYCZhouXZPinning down proline-directed phosphorylation signalingTrends Cell Biol20021216417210.1016/S0962-8924(02)02253-511978535ThorpeJRMosahebSHashemzadeh-BonehiLCairnsNJKayJEMorleySJRultenSLShortfalls in the peptidyl-prolyl cis-trans isomerase protein PIN1 in neurons are associated with frontotemporal dementiasNeurobiol Dis20041723724910.1016/j.nbd.2004.07.00815474361RamakrishnanPDicksonDWDaviesPPIN1 colocalization with phosphorylated tau in Alzheimer's disease and other tauopathiesNeurobiol Dis20031425126410.1016/S0969-9961(03)00109-814572447WijsmanEMDawEWYuCEPayamiHSteinbartEJNochlinDConlonEMBirdTDBirdGDEvidence for a novel late-onset Alzheimer disease locus on chromosome 19p13.2Am J Hum Genet2004753984091524815310.1086/423393PastorinoLSunALuPJZhouXZBalastikMFinnGWulfGLimJLiSHLiXXiaWNicholsonLKLuKPThe prolyl isomerase PIN1 regulates amyloid precursor protein processing and amyloid-beta productionNature200644052853410.1038/nature0454316554819MinSHChoJSOhJHShimSBHwangDYLeeSHJeeSWLimHJKimMYSheenYYLeeSHKimYKTau and GSK3beta dephosphorylations are required for regulating PIN1 phosphorylationNeurochem Res20053095596110.1007/s11064-005-6177-016258844SegatLPontilloAAnnoniGTrabattoniDVerganiCClericiMArosioBCrovellaSPIN1 promoter polymorphisms are associated with Alzheimer's diseaseNeurobiol Aging200728697410.1016/j.neurobiolaging.2005.11.00916384626LimJLuKPPinning down phosphorylated tau and tauopathiesBiochim Biophys Acta2005173931132215615648AkiyamaHShinRWUchidaCKitamotoTUchidaTPIN1 promotes production of Alzheimer's amyloid beta from beta-cleaved amyloid precursor proteinBiochem Biophys Res Commun200533652152910.1016/j.bbrc.2005.08.13016139797SultanaRBoyd-KimballDPoonHFCaiJPierceWMKleinJBMerchantMMarkesberyWRButterfieldDARedox proteomics identification of oxidized proteins in Alzheimer's disease hippocampus and cerebellum: an approach to understand pathological and biochemical alterations in ADNeurobiol Aging2006271564157610.1016/j.neurobiolaging.2005.09.02116271804WangSSimonBPBennettDASchneiderJAMalterJSWangDSThe significance of Pin1 in the development of Alzheimer's diseaseJ Alzheimers Dis200711132317361031BalastikMLimJPastorinoLLuKPPIN1 in Alzheimer's disease: multiple substrates, one regulatory mechanism?Biochim Biophys Acta2007177242242917317113GalasMDourlenPAndoKBégardSHamdaneMBuéeLPin1 deregulation in Alzheimer's disease: A role in the aberrant cell cycle re-entry?Alzheimers Dement20084T613T61310.1016/j.jalz.2008.05.1882FujimoriFTakahashiKUchidaCUchidaTMice lacking PIN1 develop normally, but are defective in entering cell cycle from G(0) arrestBiochem Biophys Res Commun199926565866310.1006/bbrc.1999.173610600477IourovIYVorsanovSGLiehrTKolotiiADSolovievIVVostrikovVMUranovaNAYurovYBAssociation of genome instability and neurodegeneration in the cerebral cortex and hippocampus in Alzheimer's disease brain: Evidences for a new pathogenetic mechanism of the diseaseInt J Psychophysiol20086928810.1016/j.ijpsycho.2008.05.262BoerasDIGranicAPadmanabhanJCrespoNCRojianiAMPotterHAlzheimer's presenilin 1 causes chromosome missegregation and aneuploidyNeurobiol Aging2008293193281716946410.1016/j.neurobiolaging.2006.10.027ZhuXLeeHGPerryGSmithMAAlzheimer's disease, the two-hit hypothesis: an updateBiochim Bioph Acta20071882494502PotterHDown's syndrome and Alzheimer's disease: two sides of the same coinFuture Neurol20083293710.2217/14796708.3.1.29SultanaRBoyd-KimballDPoonHFCaiJPierceWMKleinJBMarkesberyWRZhouXZLuKPButterfieldDAOxidative modification and down-regulation of PIN1 in Alzheimer's disease hippocampus: A redox proteomics analysisNeurobiol Aging20062791892510.1016/j.neurobiolaging.2005.05.00515950321ArosioBSegatLMilaneseMGalimbertiLCalabresiCZanettiMTrabattoniDAnnoniGCrovellaSVerganiCPIN-1 promoter polymorphisms in mild cognitive impairment and susceptibility to Alzheimer's disease: a preliminary reportAging Clin Exp Res20071940640918007120PoliMGattaLBDominiciRLovatiCMarianiCAlbertiniAFinazziDDNA sequence variations in the prolyl isomerase PIN1 gene and Alzheimer's diseaseNeurosci Lett2005389667010.1016/j.neulet.2005.07.02716095818LambertJCBensemainFChapuisJCottelDAmouyelPAssociation study of the PIN1 gene with Alzheimer's diseaseNeurosci Lett200640225926110.1016/j.neulet.2006.04.01016701948NowotnyPBertelsenSHinrichsALKauweJSMayoKJacquartSMorrisJCGoateAAssociation studies between common variants in prolyl isomerase PIN1 and the risk for late-onset Alzheimer's diseaseNeurosci Lett200741915171748235910.1016/j.neulet.2007.03.071Lund and Manchester GroupsClinical and neuropathological criteria for frontotemporal dementia. The Lund and Manchester GroupsJ Neurol Neurosurg Psychiatr199457416418816398810.1136/jnnp.57.4.416NearyDSnowdenJSGustafsonLPassantUStussDBlackSFreedmanMKerteszARobertPHAlbertMBooneKMillerBLCummingsJBensonDFFrontotemporal lobar degeneration: a consensus on clinical diagnostic criteriaNeurology199851154615549855500ChapmanJEstupinanJAsherowAA simple and efficient method for apolipoprotein E genotype determinationNeurology199646148414858628509KurzawskiGSafranowKSuchyJChlubekDScottRJLubińskiJMutation analysis of MLH1 and MSH2 genes performed by denaturing high-performance liquid chromatographyJ Biochem Biophys Methods2002518910010.1016/S0165-022X(02)00003-911879922ŻekanowskiCReligaDSafronowKMaruszakADziedziejkoVStyczyńskaMGaciaMGolanMPepłońskaBChlubekDKuźnickiJBarcikowskaMThe -22c/t polymorphism in presenilin 1 gene is not connected with late-onset and early-onset familial Alzheimer's disease in PolandJ Neural Transm200511283984510.1007/s00702-004-0218-815480851QuandtKFrechKKarasHWingenderEWernerTMatInd and MatInspector: new fast and versatile tools for detection of consensus matches in nucleotide sequence dataNucleic Acids Res19952348784884853253210.1093/nar/23.23.4878SmithPJZhangCWangJChewSLZhangMQKrainerARAn increased specificity score matrix for the prediction of SF2/ASF-specific exonic splicing enhancersHum Mol Genet2006152490250810.1093/hmg/ddl17116825284CartegniLWangJZhuZZhangMQKrainerARESEfinder: a web resource to identify exonic splicing enhancersNucleic Acid Res200331356835711282436710.1093/nar/gkg616NallaVKRoganPKAutomated splicing mutation analysis by information theoryHum Mutat20052533434210.1002/humu.2015115776446RoganPKFauxBSchneiderTDInformation analysis of human splice site mutationsHum Mutat19981215317110.1002/(SICI)1098-1004(1998)12:3<153::AID-HUMU3>3.0.CO;2-I9711873BarrettJCFryBMallerJDalyMJHaploview: analysis and visualization of LD and haplotype mapsBioinformatics20052126326510.1093/bioinformatics/bth45715297300QinZSNiuTLiuJSPartition-ligation-expectation-maximization algorithm for haplotype inference with single-nucleotide polymorphismsAm J Hum Genet200271124212471245217910.1086/344207ZhangJMoseleyAJeggaAGGuptaAWitteDPSartorMMedvedovicMWilliamsSSLey-EbertCCoolenLMEgnaczykGGenterMBLehmanMLingrelJMaggioJParysekLWalshRXuMAronowBJNeural system-enriched gene expression: relationship to biological pathways and neurological diseasesPhysiol Genomics20041816718310.1152/physiolgenomics.00220.200315126645LuKPHanesSDHunterTA human peptidyl-prolyl isomerase essential for regulation of mitosisNature199638054454710.1038/380544a08606777Cortés-CanteliMPignatelliMSantosAPerez-CastilloACCAAT/Enhancer-binding Protein β Plays a Regulatory Role in Differentiation and Apoptosis of Neuroblastoma CellsJ Biol Chem20022775460546710.1074/jbc.M10876120011733516MénardCHeinPPaquinASavelsonAYangXMLederfeinDBarnabé-HeiderFMirAASterneckEPetersonACJohnsonPFVinsonCMillerFDAn essential role for a MEK-C/EBP pathway during growth factor-regulated cortical neurogenesisNeuron20023659761010.1016/S0896-6273(02)01026-712441050PaquinABarnabé-HeiderFKageyamaRMillerFDCCAAT/enhancer-binding protein phosphorylation biases cortical precursors to generate neurons rather than astrocytes in vivoJ Neurosci200525107471075810.1523/JNEUROSCI.2662-05.200516291948TaubenfeldSMMilekicMHMontiBAlberiniCMThe consolidation of new but not reactivated memory requires hippocampal C/EBPβNat Neurosci2001481381810.1038/9052011477427TaubenfeldSMWiigKAMontiBDolanBPolloniniGAlberiniCMFornix-dependent induction of hippocampal CCAAT enhancer-binding protein [beta] and [delta] Co-localizes with phosphorylated cAMP response element-binding protein and accompanies long-term memory consolidationJ Neurosci200121849111150323MillerMPhospho-dependent protein recognition motifs contained in C/EBP family of transcription factors: in silico studiesCell Cycle200652501250817102635RyoALiouYCWulfGNakamuraMLeeSWLuKPPIN1 is an E2F target gene essential for Neu/Ras-induced transformation of mammary epithelial cellsMol Cell Biol200222528152951210122510.1128/MCB.22.15.5281-5295.2002WangJSmithPJKrainerARZhangMQDistribution of SR protein exonic splicing enhancer motifs in human protein-coding genesNucleic Acids Res200533505350621614798910.1093/nar/gki810CartegniLKrainerADisruption of an SF2/ASF-dependent exonic splicing enhancer in SMN2 causes spinal muscular atrophy in the absence of SMN1Nat Genet20023037738410.1038/ng85411925564LambertJCAmouyelPGenetic heterogeneity of Alzheimer's disease: Complexity and advancesPsychoneuroendocrynology200732S62S7010.1016/j.psyneuen.2007.05.015GabutMMinéMMarsacCBrivetMTaziJSoretJThe SR protein SC35 is responsible for aberrant splicing of the E1alpha pyruvate dehydrogenase mRNA in a case of mental retardation with lactic acidosisMol Cell Biol200525328632941579821210.1128/MCB.25.8.3286-3294.2005MinéMBrivetMTouatiGGrabowskiPAbitbolMMarsacCSplicing error in E1alpha pyruvate dehydrogenase mRNA caused by novel intronic mutation responsible for lactic acidosis and mental retardationJ Biol Chem2003278117681177210.1074/jbc.M21110620012551913Sirand-PugnetPDurosayPBrodyEMarieJAn intronic (A/U)GGG repeat enhances the splicing of an alternative intron of the chicken beta-tropomyosin pre-mRNANucleic Acids Res19952335013507756746210.1093/nar/23.17.3501FanghänelJAkiyamaHUchidaCUchidaTComparative analysis of enzyme activities and mRNA levels of peptidyl prolyl cis/trans isomerases in various organs of wild type and Pin1-/- miceFEBS Lett200658032374510.1016/j.febslet.2006.04.08716697379