METHODS
Thirty patients diagnosed with pancreatic cancer and 30 healthy controls who had no cancer history in
their family and matched for age, gender, and ethnicity with the patients were analyzed in the study. The
exome regions of the PALB2 gene in the genomic DNA obtained from the peripheral blood samples of
the patients and controls were investigated by the Sanger sequencing method.
RESULTS
Evaluation of the obtained data showed that the alterations of c.29G>T, c.2737C>A, c.2773G>C, and
c.2840T>G were only identified in the group of patient; and the alteration of c.1676A>G was detected in
the homozygous formation in the case with a familial pancreatic cancer syndrome in the group of patient.
CONCLUSION
These alterations were suggested to be possibly important in the pathogenesis, and in the inheritance of
pancreatic cancer. Further study is needed with a large cohort to emphasize importance of alteration.
Keywords: DNA repair; mutation; pancreatic cancer; PALB2 gene; sequence analysis
It is thought that genetic factors and genetic heterogeneity
are some of the causes underlying the aggressive
behavior of pancreas cancer.[
Although the PALB2 gene was first described as associated
with the Fanconi anemia, further studies also
described the gene as the breast cancer susceptibility
gene. The monoallelic truncating mutation of PALB2,
which increased the breast cancer risk approximately
2-3 folds, was described in 10 out of 923 patients with
a history of familial breast cancer.[
PALB2 is a gene that has a role in the DNA repair
pathway by enabling the attachment and localization of
BRCA2 protein to the BRCA complex. PALB2, which
is the partner, and localizer of BRCA2 is emerged as
the key player in the preservation of genome integrity.
The monoallelic mutations in PALB2 are susceptible
to breast, ovarian, and pancreatic cancer. The tumorsuppressor
role of PALB2 is closely associated with its
supporting ability of homologous recombination (HR)
mediated repair of DNA double-strand breaks. Understanding
the functioning of PALB2 has become the
main focus point of various studies because PALB2 has
been located at the intersection point of FA, HR, and
cancer susceptibility.[
One of the repair mechanisms of homologous recombination
was used in the repair of double-strand
breaks during the transformation of S phase to G2
phase in the cell cycle, and that procedure was the main
mechanism used in such repairs.[
Special molecular alterations are known to be effective
in the selection of personal treatment, such as
platinum-based chemotherapy in pancreatic ductal
adenocarcinoma (PDAC) patients. Although PALB2
was mainly investigated owing to its significant role in
breast cancer biology, preliminary reports suggested
that PALB2 might also have a role in pancreatic ductal
adenocarcinoma. PDAC patients with PALB2 mutation
were suggested to significantly benefit from the use of
platinum-based chemotherapy based on a report of S.
Boeck et al.[
The investigation of the literature demonstrated that
the distribution of the mutations in the PALB2 gene,
which causes susceptibility to pancreas cancer, and
breast cancer varied in accordance with the geographic
regions.[
Mutation Analysis
The "Sanger sequencing" method was used to sequence
full exons of the PALB2 gene in both healthy controls
and patients with pancreas cancer. All exon regions and
exon-intron boundaries of the PALB2 gene were amplified
in the DNA samples of each patient and healthy
controls through primers designed appropriately for
the target gene using the PCR method. Polymerase chain reaction and sequencing procedures were performed
for a total of 16 fragments consisting of four
fragments in exon 4 and two fragments in exon 5.
The polymerase chain reaction was prepared as to provide a total final volume of 50 ?L consisting of 5 ?L from 10X PCR buffer, 1?L from 10 mM dNTP mixture, 0.5 ?L from each of the 0.3 mM primers, 2 ?L from the template DNA, 0.5 ?L from 5U/ ?L DreamTaq DNA polymerase, and 1 ?L MgCI2. The mixture was incubated for 20 seconds 94°C, 20 seconds at 56°C, and 40 seconds at 72°C in 35 cycles, and the final elongation was incubated 10 minutes at 72 °C.
The Roche HP PCR Product Purification kit was used for the purification of the PCR products. Thirteen exones of PALB2 gene were sequenced with a total of 16 amplicons for each case, and with 32 reactions using the DTCS Quick Start DNA Sequencing Kit. The exone sequencing after the precipitation procedures using ethanol was performed using "Beckman Coulter GXL" Sanger Sequencing Device, and the data were analyzed on the "GenomeLab Genetic Analysis System" program.
In Silico Analysis
Statistical Analysis
The pathogenicity of the missense variants was evaluated
in the databases of Polymorphism phenotyping
(PolyPhen2),[20] the SIFT algorithms,[
In this study, the non-parametric Chi-square (?2) test
was used in the resolution of the data because our data
(Kolmogorov-Smirnov Test: Assymp.Sig (significance):
p<0.05) could not provide the normality assumption
after conducting the single sample Kolmogorov-
Smirnov test using the IBM Statistical Package for the
Social Sciences (SPSS) v20.0 program.
In this study, peripheral blood samples of 30 patients with pancreatic cancer applied to the Department of Basic Oncology, Faculty of Medicine, Istanbul University, were used. Peripheral blood samples of 30 healthy age and sex-matched individuals were used as a control group.
This study included 30 patients with pancreatic cancer,
13 of whom were women and 17 of whom were men
along with 30 healthy individuals, of whom 20 men were
examined. 27% (8/30) of the patients were under the age
of 45 years, and 73% (22/30) of the patients were over
the age of 45 years (Table 1). 10% (3/30) of the patients
were in the 2nd stage, 47% (14/30) were in the 3rd stage,
and 43% (13/30) were in the 4th phase (Table
When the patients compared according to another
cancer or chronic disease, 43% (13/30) of the patients
had a chronic disease, 57% (17/30) had no other chronic
disease (Table
The exons sequencing of the PALB2 gene was performed
in 30 patients diagnosed with pancreas cancer,
and the detected SNP alterations were compared with
the results in the clinical database. The previously reported
alterations of rs80531188, rs876659643, rs152451,
rs45532440, rs180177125, and rs45551636, and 17 new,
unreported, alterations in the literature were detected
in this study (Table
When 30 healthy controls included in this study
were sequenced for the PALB2 gene, heterozygous c.-
47G>A rs8053188, c.1676A>G rs152451, c.2014G>C
rs45532440, c.2993G>A rs45551636 to the previously
were reported as found changes (SNP) with the rs numbers.
In addition, 13 different changes heterozygote
formation in the same healthy group has not been previously
reported in the literature were detected (Table
The changes in the healthy control group without
knowledge of the literature were calculated to be deleterious
in two different in silico algorithms out of three, in two of them. Two changes were identified as benign
in the ClinVar databank (Table
The c.29G>T, c.107A>G, and c.145A>G alterations were detected in a total of five patients out of 30 on the domain where the PALB2 protein interacts with BRCA1 protein and located in the N terminal region of the PALB2 protein. The alterations in this region suggested being effective in the formation of protein complex having a role in DNA repair and in the accurately functioning.
The alterations of c.559C>G, c.604C>G, c.611C>G, c.1005T>A, c.1027C>A, c.1368G>T, c.1391G>A, c.1464C>T, and c.1676A>G were recently detected in 19 patients (63%) out of 30 in the region including the domain three named as Chromatin-Association Motive (ChAM) located in the center of PALB2 protein, and reported to have a role in the chromatin localization of PALB2. Among these alterations, c.1676A>G alteration was also found with no rs152451, which was previously reported in the literature. This alteration was detected in five (17%) out of 30 patients and in four (13%) individuals in the control group. Four patients were detected to have an alteration in heterozygous formation, and one patient was detected to have an alteration in homozygous formation. The investigation of the clinical features of five patients having c.1676A>G alteration showed that tumor had distant organ metastasis, and all patients were smokers longer than 20 years. One patient was detected to have a pancreas cancer history in his father in whom homozygous c.1676A>G alteration was found. Therefore, particularly, the homozygous formation of the alteration was suggested to be important in the etiology and in the inheritance of the familial pancreas cancer. The importance of alteration could be detected with studies with a larger pancreatic cancer cohort and with a population- based group of healthy controls in the future.
All the alterations detected in our study were separately evaluated in the SIFT, Mutation Taster, and Polyphen algorithms that were developed to clarify the differences caused in the protein structures and to identify how they affected the protein function. These three algorithms, named as SIFT, Mutation Taster, and Polyphen, are used in the identification of the pathogenicity of scientifically genetic alteration. The conditions where the two of these algorithms give results in the same direction are regarded valid. Considering this, the only alteration reported as "deleterious" was c.29G>T in all three algorithms in our study. The alterations regarded as "deleterious" in two out of three algorithms were the alterations c.2737C>A; c.2773G>C; and c.2840T>G.
The alterations of c.29G>T, c.2737C>A, c.2773G>C, and c.2840T>G detected in the patient group, and were calculated as "deleterious" in at least two algorithms could not be shown in any cases in the control group. The results suggested that these alterations might be important in the pancreas cancer pathogenesis. In addition, c.1676A>G alteration was observed in 17% of the patient group and in 13% of the healthy individuals in our study group. The c.1676A>G alteration was detected in heterozygous formation except for one patient with pancreas cancer syndrome in the patient group. The heterozygous formation of this alteration was reported as "pathogenic" in accordance with the ClinVar data bank. However, the detection of the homozygous formation of c.1676A>G alteration in a patient with a family history of pancreas cancer in our study group suggested that the homozygous alteration might be important for the pancreas cancer pathogenesis, and was a topic to be investigated. In addition, the condition in the patient in whom the homozygous c.1676A>G alteration was detected in the first-degree relative demonstrated a similar condition to SMAD4/DPC4 gene which is known to be effective in the pancreas cancer etiology, and which showed a homozygous mutation in 50% of the patients with pancreas cancer. The detection of the heterozygous formation of this alteration in the same ratio in both control, and patient groups, and detection of homozygous formation particularly in a patient with a family history of pancreas cancer in the first degree relative suggested that the homozygous formation of that region might be important in the pancreas cancer etiology similar to the homozygous form of the SMAD4/DPC4 gene. The investigation of this condition, particularly in pancreas cancer tissue samples in future studies, will provide information about this alteration.
Peer-review: Externally peer-reviewed.
Conflict of Interest: The authors declare that they have no competing interests.
Ethics Committee Approval: The material collection processes of all patients and controls were approved by the Istanbul University Ethics Board (protocol number: 2014/1961).
Financial Support: This work was supported by the Scientific Research Projects Coordination Unit of Istanbul University (project number: 54273).
Authorship contributions: Concept - G.K.T., D.A.Ö., M.A., Ş.B.T., S.K.E., Ö.Ş.E., D.T., S.K., E.K., H.Y.; Design - G.K.T., D.A.Ö., M.A., Ş.B.T., S.K.E., Ö.Ş.E., D.T., S.K., E.K., H.Y.; Supervision - G.K.T., D.A.Ö., M.A., Ş.B.T., S.K.E., Ö.Ş.E., D.T., S.K., E.K., H.Y.; Funding ? G.K.T., H.Y.; Materials ? G.K.T., D.A.Ö., M.A., Ş.B.T., S.K.E., Ö.Ş.E., D.T., S.K., E.K., H.Y.; Data collection &/or processing -G.K.T., D.A.Ö., M.A., Ş.B.T., S.K.E., Ö.Ş.E., D.T., S.K., E.K., H.Y.; Analysis and/or interpretation - G.K.T., D.A.Ö., M.A., Ş.B.T., S.K.E., Ö.Ş.E., H.Y.; Literature search - G.K.T., D.A.Ö., M.A., Ş.B.T., S.K.E., Ö.Ş.E., H.Y.; Writing - G.K.T., H.Y.; Critical review - G.K.T., D.A.Ö., M.A., Ş.B.T., S.K.E., Ö.Ş.E., D.T., S.K., E.K., H.Y.