Background
Elderly people often experience chronic and low-grade inflammation, whereupon the levels of certain inflammatory serum markers (e.g., C-reactive protein) and pro-inflammatory cytokines (e.g., tumor necrosis factor-alpha and interleukin-6) are elevated. However, increases in circulating inflammatory markers are often not noticeable in healthy elderly persons and are much below the levels experienced during acute infections [
1,
2]. Moreover, it is well known that the prevalence of cancer increases sharply with age, and that the majority of cancer cases occur in patients over the age of 65 [
3]. Persistent inflammation is thought to trigger certain cancers, particularly those of the stomach, colon, and lung [
4]. Although it has been established that the risks of cancer and inflammation increase with age [
2], the influence of inflammatory cytokine polymorphisms on the genetic predisposition to cancer remains unclear.
Lymphotoxin-alpha (LTA), a member of the tumor necrosis factor (TNF) family of cytokines, was initially isolated on the basis of an anti-tumor activity. Later, this cytokine was shown to have inflammatory and immunologic activities [
5]. The
LTA gene is located within the class III region of the major histocompatibility complex (MHC) in chromosome 6p21.3 [
6]. LTA plays a key role in communication between lymphocytes and stromal cells, thereby eliciting cytotoxic effects on cancer cells [
7,
8]. LTA induces the expression of vascular cell-adhesion molecule 1 (VCAM1) on vascular endothelial cells and recruits natural killer (NK) cells to parenchymal organs and tumor lesions [
9]. NK cells have nonspecific host-defense mechanisms that aid in tumor rejection and protection from metastases. Previous studies have shown that tumor growth and metastasis are enhanced in
LTA-deficient mice, which produce NK cells that have reduced anti-tumor potential [
10,
11]. Thus, LTA signaling plays an important role in anti-tumor surveillance via the maturation and recruitment of NK cells.
Previous studies have examined the relationship between
LTA polymorphisms and various cancers, and found that the
NcoI restriction fragment length polymorphism (A252G) in the first intron is in tight linkage disequilibrium with C804A, resulting in the substitution of threonine with asparagine at codon 60 in exon 3 [
12,
13]. The
LTA 252G allele increases LTA at the levels of mRNA and protein [
12]. Previous studies have found that the relationship between the risk of cancer and the rate of survival among those with the
LTA polymorphism varies according to the cancer type [
14‐
17]. However, the effect of
LTA polymorphisms on the presence of cancer in general is not known.
Toward this end, we searched for two non-synonymous polymorphisms, C804A (rs1041981, T60N) and T495C (rs2229094, C13R), in consecutive autopsy cases and determined whether they influenced cancer presence.
Results
Characteristics of the study subjects
Selected demographic variables, including the sites and histological types of cancers, and risk factors are shown in Table 1 (Additional file
1). The mean age of subjects was 80.2 ± 8.9 years. The study population consisted of 827 (54%) males and 709 (46%) females. Altogether, we studied 606 subjects without cancer and 930 subjects with cancer. When the total number of subjects was divided by the number of subjects over or under the median age of 80 years, the distributions of subjects with or without cancer did not significantly differ. The frequency of cancer was significantly higher in males than in females. No differences in smoking and alcohol drinking status between cancer-bearing and cancer-free subjects were observed. The most frequent sites of cancer were the stomach (n = 183), lung (n = 164), and colon or rectum (n = 143).
Genotype and allele frequencies of LTApolymorphisms
C804A and T495C were genotyped in all subjects. The genotype frequencies of C804A were 37% for CC, 48% for CA, and 15% for AA. The minor allele frequency was 39%, and the allele distribution was consistent with HWE (p = 0.65). The genotype frequencies of T495C were 66% for TT, 31% for TC, and 3% for CC. The minor allele frequency was 19% and the allele distribution was consistent with HWE (p = 0.48).
Association of LTApolymorphisms with cancer overall
The associations between C804A and T495C polymorphisms and the presence of cancer are shown in Table 2 (Additional file
1). Among cancer-free subjects, the frequencies of the C804A genotypes CC, CA, and AA were 33%, 49%, and 18%, respectively, in males, and 33%, 54%, and 13%, respectively, in females (Table 3) (Additional file
1). In comparison with the CC genotype, the CA genotype was associated with a significantly lower presence of cancer in all subjects (adjusted OR = 0.78, 95% CI = 0.61 – 0.99). In males, the CA + AA genotype was associated with a significantly lower presence of cancer compared with the CC genotype (adjusted OR = 0.72, 95% CI = 0.53 – 0.99). The association between the C804A polymorphism and cancer in females was not significant (CA + AA: CC, adjusted OR = 0.92, 95% CI = 0.66 – 1.29). Additionally, cancer frequency was not associated with C804A (data not shown).
In cancer-free subjects, the frequency of the T495C genotypes TT, TC, and CC were 70%, 28%, and 2%, respectively, in males, and 66%, 31%, and 3%, respectively, in females (Table 3 in Additional file
1). Compared with the TT genotype, the CC genotype was associated with a significantly higher presence of cancer (adjusted OR = 2.24, 95% CI = 1.09 – 4.61). In males, the TC + CC genotype was associated with a significantly higher presence of cancer, compared with the TT genotype (adjusted OR = 1.45, 95% CI = 1.04 – 2.02). The association between the T495C polymorphism and cancer in females was not significant (TC + CC: TT, adjusted OR = 1.08, 95% CI = 0.77 – 1.50).
Additionally, we explored the relationship between the presence of C804A and T495C haplotypes and tumor formation. C804A and T495C appeared to be present in moderate linkage disequilibrium (r2 = 0.15, D' = 1.0) and three major haplotypes were identified (495T-804C, 495T-804A, and 495C-804C). None of these haplotypes were associated with the presence of cancer (data not shown).
Association of LTApolymorphisms with specific types of cancers
Significant associations between
LTA polymorphisms and the presence of cancer in males prompted us to explore the relationships between these polymorphisms and the sites of cancer. After analyzing subjects with stomach, lung, colorectal, prostate, breast, liver, biliary tract, kidney or urinary tract, and hematopoietic malignancies, we observed a positive association between
LTA polymorphisms and lung and stomach cancers (Table 4 in Additional file
1). Among male subjects with lung cancer, the C804A CA + AA genotype was associated with a significantly lower presence of cancer than was the CC genotype (adjusted OR = 0.60, 95% CI = 0.37–0.97). The association between C804A polymorphism and lung cancer in females was not significant (CA + AA: CC, adjusted OR = 0.65, 95% CI = 0.35 – 1.23).
The T495C polymorphism was not associated with the presence of lung cancer, but the TC + CC genotype was associated with a significantly higher presence of gastric cancer in males, compared with the TT genotype (adjusted OR = 1.68, 95% CI = 1.06–2.65). The association between T495C polymorphism and gastric cancer was not significant in females (TC + CC: TT, adjusted OR = 1.16, 95% CI = 0.61 – 2.21).
Discussion
Our findings demonstrate that the LTA polymorphism C804A is associated with a lower presence of cancer, particularly lung cancer, in elderly Japanese men, consistent with previous studies showing that LTA has anti-tumor activity.
Several laboratories have recently published a functional analysis of the
LTA C804A (T60N). Compared with the C allele, the A allele is more bioactive with regards to the induction of VCAM1 in cultured human coronary-artery smooth muscle cells [
13]. Furthermore, C804A is present in very high linkage disequilibrium with another polymorphism,
LTA A252G. These two polymorphisms have been shown to be completely concordant in Japanese subjects [
16,
17]. Compared with the A allele, the G allele of the A252G genotype confers higher transcriptional activity in Jurkat cells [
13] and phytohemagglutinin-stimulated peripheral blood mononuclear cells [
12]. Thus, the C and A alleles are considered low and high bioactive alleles in
LTA, respectively. Accordingly, the data suggest that the lower presence of cancer in our study population may reflect enhanced LTA activity because of the presence of high-bioactive alleles.
The C804A and A252G polymorphisms have been studied with regards to cancer survival rates and risks of developing various type of cancer, including lung [
14], stomach [
15,
20,
21], colorectal [
22], breast [
23], cervix [
16], endometrium [
17] and bladder [
24] cancers, as well as leukemia [
25], lymphoma [
26,
27], and myeloma [
28]. The high-bioactive genotype was associated with the risk of developing cancers of the lung [
14], colon or rectum [
22], non-Hodgkin lymphoma [
26,
27], and myeloma [
28]. Low-bioactive genotypes were associated with the risk of developing cervical [
16] and endometrial cancers [
17], but not gastric [
15,
20,
21], breast [
23], bladder cancers [
24], or leukemia [
25]. These differences may be partially explained by the multi-functionality of LTA. LTA can promote cell growth and adhesion, and can potentially favor the growth of certain tumors.
It remains unclear why C804A is associated with cancer in males but not in females. However, gender is known to play an important role in the development of various cancers. Recent studies also suggest that cytokine secretion and innate immunity differ between the genders [
29,
30].
The C13R (T495C) polymorphism has not been as thoroughly studied as the T60N (C804A) polymorphism. Previous study reported there was not an association between the T495C polymorphism and lung cancer [
31]. The T495C polymorphism is a haplotype component associated with altered LTA expression and increased levels of vascular- and autoimmune-mediated inflammation [
32]. These findings suggest that the T495C polymorphism is also associated with cancer. We observed an association between the C allele of the T495C polymorphism and the presence of cancer, particularly gastric cancer. However, as the minor allele frequency for this polymorphism was low, these results must be confirmed in a larger study population.
The
LTA gene is located within the class III region of the MHC, in the 6p21.3 chromosome [
6]. This region contains many other genes, including that encoding the pro-inflammatory cytokine, TNF. It is well-known that this region shows high degrees of linkage disequilibrium. Thus, associations identified in this study may reflect the effects of other gene variants in this region.
As this was a hospital-based autopsy study, we had limited access to information on lifestyle variables that could potentially influence the development of cancer. Furthermore, although autopsies were performed on many of the deaths (40%) that occurred in the hospital, and the causes of death among our autopsy cases were similar to those reported in a national survey, we cannot rule out the possibility of selection bias. Such bias can arise from chance of admission, consent to autopsy, cause of death, and autopsy practice. Survival bias is also a possibility, as particular genotypes may be associated with other diseases or influence the lifespan of certain subjects, thereby introducing bias into the study population. However, the C804A genotype frequency was similar to that reported in other Japanese population studies [
16,
17], and any effects of such possible bias did not cause our results to deviate from HWE.
Acknowledgements
This work was partly supported by grant-in-aid from the Ministry of Health, Labor and Welfare, and the Ministry of Education, Culture, Sports, Science and Technology, Japan.
We thank Kenta Takahashi, of the Tokyo Medical and Dental University, for assisting genotype analysis.
Competing interests
The authors declare that they have no competing interests.
Authors' contributions
KT performed the statistical analysis and drafted the manuscript. SI participated in the design and performed the statistical analysis. TA performed the pathological analysis. NT assessed the data integrity. MM coordinated the study and helped draft the manuscript. MS performed the pathological analysis and helped coordinate the study. All authors read and approved the final manuscript.