Activation of NK cells in male cancer survivors by fucoidan extracted from Cladosiphon okamuranus

  • Authors:
    • Takeaki Nagamine
    • Kizuku Kadena
    • Makoto Tomori
    • Katsuyuki Nakajima
    • Masahiko Iha
  • View Affiliations

  • Published online on: October 31, 2019     https://doi.org/10.3892/mco.2019.1943
  • Pages: 81-88
  • Copyright: © Nagamine et al. This is an open access article distributed under the terms of Creative Commons Attribution License.

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Abstract

Cancer survivors are highly motivated to seek information about the use of dietary supplements and complementary nutritional therapies to improve their quality of life. Fucoidan, a sulfated polysaccharide extracted from brown marine alga, exhibits a wide range of bioactivities, including anticancer activity. As natural killer (NK) cells serve an important role in defenses against tumor cells, the present study examined the effects of fucoidan extracted from Cladosiphon Okamuranus on NK cell activity in cancer survivors. A prospective, open‑label clinical study was conducted on cancer survivors treated with fucoidan via oral administration; 11 cancer survivors with a performance status of 0 or 1 participated and consumed 3 g of fucoidan for 6 months. No significant changes were observed in the mean activities of NK cells in total subjects following the ingestion of fucoidan. An analysis of each sex revealed that NK cell activity was significantly increased by the ingestion of fucoidan in male, yet not female subjects. Serum fucoidan levels were markedly increased following the ingestion of fucoidan and the peak levels ranged between 30 and 198 ng/ml. Tumor markers remained within the reference range during the trial period in subjects, in whom primary tumors were eradicated by treatment. The basal values of tumor markers were elevated in three cases; tumor markers were increased in two cases and decreased in one by the ingestion of fucoidan. These findings suggest that fucoidan enhances the activation of NK cells in male cancer survivors.

Introduction

Fucoidan is a complex sulfated polysaccharide that is mostly found in brown marine algae. Fucoidan exhibits a broad spectrum of biological activities, including anti-inflammatory, immunomodulatory, antiviral, antioxidant, and anti-tumor activities (14). Previous studies reported a potential role for fucoidan as an anticancer agent based on its proven anticancer and anti-metastatic effects in vivo and in vitro (47). The mechanisms underlying the anticancer effects of fucoidan have not yet been elucidated in detail; however, immune modulation is one of the most promising areas for the anticancer efficacy of fucoidan (8,9).

A cancer survivor is defined as anyone who has been diagnosed with cancer, from the time of diagnosis and throughout the remainder of their lifespan (10). Many cancer survivors are highly motivated to seek information about food choices, physical activity, dietary supplement use, and complementary nutritional therapies in order to improve their response to treatment, speed of recovery, and quality of life and also to reduce their risk of recurrence (11).

A clinical trial was performed on fucoidan in patients with advanced colon cancer. Ikeguchi et al reported that the ingestion of 4.05 g per day of fucoidan derived from Cladosiphon okamuranus reduced the clinical toxicity indicator ‘fatigue’ in patients receiving conventional chemotherapy (12). Furthermore, patients administered fucoidan tolerated more cycles of chemotherapy. A recent clinical trial on fucoidan in patients with different types of advanced cancers identified the responsiveness of interleukin (IL)-1β as a significant independent prognostic factor. However, natural killer (NK) cell activity was not affected by a four-week treatment with fucoidan derived from C. novae-caledoniae Kylin (13).

NK cell cytotoxic activity represents an innate immune component that plays an important role in defenses against tumor cells (14). NK cells recognize and induce the lysis of tumor cells without prior sensitization. An epidemiologic survey of 11-year follow up shows a link between low NK cell activity in peripheral blood and increased cancer risk in adults (15). We herein examined the effects of fucoidan extracted from C. Okamuranus on NK cell activity in cancer survivors.

Patients and methods

Subjects

Cancer survivors willing to participate in the present study were recruited from 4 medical clinics (Ono Clinic, Kobe City; Hoshi Clinic, Maebashi City; Takeichi Clinic, Odawara City and Daido Chuo Clinic, Naha City) in Japan between June 2016 and May 2017. Eleven patients who met the following inclusion criteria were enrolled: i) cancer survivors following surgical resection, radiation therapy, chemotherapy, and radiofrequency ablation (RFA) without recurrence and metastasis; ii) cancer survivors receiving chemotherapy without metastasis and iii) cancer survivors before therapy without metastasis. Exclusion criteria are as follows: i) cancer survivors with a performance status of 2, 3 and 4; ii) cancer survivors with obvious recurrence and metastasis at enrollment and iii) cancer survivors complicated with liver cirrhosis, renal insufficiency, advanced heart failure and immunodeficiency.

The diagnosis of cancer was confirmed by characteristic pathologies (Table I). Demographic characteristics are shown in Table II. All subjects were ambulatory as an outpatient with a normal food intake during the trial periods. Although the primary cancer lesions markedly varied, recurrence and metastasis were confirmed to be absent by an examination using computed tomography (CT) and/or magnetic resonance imaging (NRI) before enrollment. Primary tumor lesions of seven patients (Case 1, 2.3.4.5.8 and 9) were completely eradicated by surgical operation or radiation therapy. The period from cancer therapy to fucoidan trial was between 6 months and 8 years (3.0 years on the average).

Table I.

Characteristics and diagnosis of subjects.

Table I.

Characteristics and diagnosis of subjects.

CaseSexAge (years)DiagnosisTreatment
1Male67Pharyngeal cancerPost-surgical resection
2Male81Hepatocellular carcinomaPost-radiofrequency ablation
3Male78Hepatocellular carcinomaPost-radiofrequency ablation
4Male70Renal cell cancerPost-surgical resection
5Male71Colon cancerPost-surgical resection
6Male74Lung cancerUndergoing chemotherapy (Erlotinib)
7Male76Prostate cancerPre-surgical operation
8Female58Cervical cancerPost-surgical resection
9Female52Breast cancerPost-surgical resection
10Female56Colon cancerPost-surgical resection
11Female70Adult T-cell leukemiaUndergoing chemotherapy (Irinotecan)

Table II.

Demographic characteristics of subjects.

Table II.

Demographic characteristics of subjects.

CaseSexAge (years)Height (cm)Body weight (kg)Performance status
  1Male67171680
  2Male81161710
  3Male78167620
  4Male70172630
  5Male71168640
  6Male74162650
  7Male76163710
  8Female58158541
  9Female52167500
10Female56152450
11Female70153541

Two cases (Cases 6 and 11) were undergoing standard chemotherapy before the administration of fucoidan. Case 6 took erlotinib for two years and Case 11 took irinotecan for five years. Case 7 was awaiting surgical resection without chemotherapy. Case 10 was treated with a surgical operation for colon cancer two years before the clinical trial.

The present study was performed in accordance with the Declaration of Helsinki. The study protocol was approved by the Ethics Committee of South Product Co., Ltd.

Fucoidan treatment

Fucoidan extracted from Okinawa mozuku (C. okamuranus) was used in the present study. The main molecular weight of fucoidan was 28.8 kDa, containing 70 mg/ml of L-fucose and 10 mg/ml of sulfate (16). Subjects were orally administered 50 ml of a drink that contained 1.5 g of fucoidan twice daily for 6 months. The drink was prepared by South Product Co. Subjects took a meal without dietary restriction during the trial period. Subjects receiving medicine(s) continued with the same treatment as before, and anti-cancer drugs were unchanged during the trial period. Complementary and alternative medicine (CAM) was prohibited during the trial period, because it may affect NK cell activity and/or absorption of fucoidan. We checked use of CAM when subjects attended a clinic.

Clinical assessment

The clinical status of subjects was recorded every month during the ingestion of fucoidan. Subjects were asked about any new symptoms or changes since the introduction of fucoidan. Fucoidan was withheld if subjects developed adverse events and laboratory toxicity.

Endpoints

NK cells are the prototype of innate lymphoid cells with potent cytolytic function that provide immune surveillance against cancer; whereas, the effect of fucoidan on NK cell activity remains to be fully elucidated in cancer survivors. The primary endpoint was changes in NK cell activity and immunoglobulin titers because we focused on the immunomodulatory effects of fucoidan. We have already performed a randomized double-blind trial of fucoidan in healthy Japanese volunteers, in which oral administration of fucoidan for 12 weeks significantly increased NK cell activity in male, but not in female volunteers (unpublished data). In order to certify the finding, we herein examined NK cell activity based on sex.

Although there are no specific tumor markers used in cancer screening, some markers can be used to assist in making a diagnosis and determining a prognosis. They can be used to follow in cases where the diagnosis is cancer through monitoring of the disease recurrence and/or evaluating the response to therapy. In order to elucidate the effect of fucoidan on anti-tumor activity, the secondary endpoint was changes in tumor markers during the trial period.

Metabolism of fucoidan for long period of oral intake was not determined yet. The third endpoint was fucoidan absorption following its oral administration. These endpoints were monitored at the outpatient clinic using blood sampling before and every six months during the ingestion of fucoidan. A urinalysis was also simultaneously performed.

Blood tests

Blood samples were drawn to assess hematological markers (white blood cells, neutrophils, lymphocytes, monocytes, eosinophils, red blood cells, hemoglobin, and platelets); liver function (albumin, bilirubin, alkaline phosphatase, alanine aminotransferase, aspartate aminotransferase, γ-glutamyl transferase); lipids (triglycerides, HDL cholesterol, LDL cholesterol); renal function tests (blood urea nitrogen, creatinine); uric acid; electrolytes (Na, K, Cl, Ca); NK cell activity; immunoglobulin titers; tumor markers; and fucoidan concentrations. Clinical biochemical and hematological parameters were assayed using commercially available kits. Albumin was measured by the modified PCP method (KAINOS Laboratories, Inc.). Total bilirubin was measured by vanadic acid oxidation method (Wako Laboratory Chemical Co., Ltd.). Aspartate aminotransferase (AST), alanine aminotransferase (ALT), alkaline phosphatase (ALP) and γ-glutamyl transferase (γ-GTP) were measured by the JSCC transferable method (Kanto Chemical Co., Inc.). HDLchoresterol and LDL choresterol were measured by selective solubilization method (Kyowa Medex Co., Ltd.). Triglycerides (TG) was measured by GK:GP-elimination of free glycerol method (Sekisui MedicalCo., Ltd.). Blood urea nitrogen (BUN) was measured by urease-LED method (Kanto Chemical Co., Inc.). Creatinine (Cr) was measured by enzymatic method (Sekisui Medicals Co., Ltd.). Uric acid (UA) was measured by uricase-peroxidase method (KAINOS Laboratories, Inc.). Sodium (Na) and Potassium (K) were measured by ion selective electrode method (JOEL Ltd.). Calcium (Ca) was measured by Arsenazo III method (KAINOS Laboratories, Inc.). Complete blood count was measured by the automated method (Sysmex Corp.).

NK cell activity: NK cell activity was evaluated in the k-562 cell line (Dainippon Pharmaceutical Co.) marked with 51Cr using a cytotoxicity test for 3.5 h (17). Blood samples taken from the cubital vein were collected into heparinized tubes. After the centrifugation of blood samples with a lymphocyte separation medium, interface mononuclear cells were collected and suspended at a cell density of 1×106/ml in RPMI-1640 medium (IBL) and supplemented with 10% FBS. Peripheral blood monocytes (2×105 cells) were added to round-bottomed 96-well microplates containing 51Cr-labeled target cells (1×104 cells) in 0.2 ml of RPMI-1640 medium supplemented with 10% FBS. The effector cell/target cell ratio was 20. After centrifugation at 800 r/min for 5 min using an exclusive centrifuge for microplates, cells were incubated at 37°C for 3.5 h under 50 ml/l CO2 in air. After the incubation, the culture supernatant was harvested using PETΣ-96 (Sohken; Tokyo, Japan), and radioactivity was evaluated using a gamma counter (1272 clinigamma; Wallac). The percentage of cytotoxicity was calculated as follows: % cytotoxicity=(experimental 51Cr release-spontaneous 51Cr release)/(maximal 51Cr release-spontaneous 51Cr release) ×100.

IgG and IgA titers were measured using a turbidimetric immunoassay, and the IgE titer was assessed using the FEIA method.

Tumor markers were assayed as follows. Cytokeratin fragment (Cyfra) 21-1 (18), α-fetoprotein (AFP) (19), carcinoembryonic antigen (CEA) (2022), cancer antigen (CA) 125 (23), CA 15-3 (22), and soluble IL-II receptor (sIL2R) (24) were assayed using the CLEIA method. A protein induced by the absence of vitamin K (PIVKA)-II (25) and squamous cell carcinoma-related antigen (SCC-Ag) (26) were assayed using the ECLIA method. C-reactive protein (CRP) (27) was assayed using the Latex turbidimetric immunoassay method. Sialyl Lewis X-i (SLX) (28) and prostate-specific antigen (PSA) (29) were assayed using RIA and CLIA, respectively.

Measurements of immunoglobulin titers, tumor markers, and NK cell activity were entrusted to SRL of a reliable outsourcing company in Japan.

Serum fucoidan levels were assayed using a sandwich ELISA method developed by our laboratory (16). Reproducibility of the fucoidan ELISA method was as follow.

The intra- and inter assay CVs for serum, plasma and urine, using high and low concentration of fucoidan, were in the range of 1.5–13.4%.

Statistical analysis

Statistical analyses were performed using SAS version 9.4 (Statistical Analysis Software 9.4, SAS Institute Inc.). Mean quantitative values were compared between the basal value and the value at each time point during the trial period using the Friedman test. Post hoc comparison was performed using the Bonferroni method. Statistical correlation was analyzed using Spearman's rank correlation coefficient. P<0.05 was considered to indicate a statistically significant difference.

Results

Clinical assessment

No severe adverse effects were observed during the trial period, and all subjects tolerated the ingestion of fucoidan.

Primary outcome

No significant changes were observed in the mean activities of NK cells in total subject between before and after the ingestion of fucoidan. An analysis of each sex revealed that NK cell activity was elevated in seven male subjects, and was significantly different 4 months after than before the ingestion of fucoidan; however, changes in NK cell activity were not significant in four female subjects (Fig. 1).

IgG, IgA, and IgE titers remained unchanged during the trial period (Table SI).

According to the result of multiple regression analysis, demographic characteristics of subjects, such as age, height, and body weight were not a significant factor contributing to NK cell activity and immunoglobulins titers (data not shown).

Tumor markers. In Cases 1, 2, 3, 4, 5, 8, and 9, in whom primary tumors were eradicated by surgical resection or RFA, tumor markers remained within the reference range before and after the ingestion of fucoidan. Basal values for tumor markers were elevated in three cases. In Cases 6 and 11, who were receiving chemotherapy, tumor markers slightly decreased in the former, but increased in the latter after the ingestion of fucoidan. Case 7 was awaiting surgery for prostate cancer. PSA levels gradually increased during the trial period (Table III).

Table III.

Changes of tumor markers after the ingestion of fucoidan.

Table III.

Changes of tumor markers after the ingestion of fucoidan.

Tumor marker (reference range)01M2M3M4M5M6M
Male, 67 y.o, pharyngeal cancer, post-surgical resection
  CYFRA21-1 (<5.0 ng/ml)1.0<1.0<1.0<1.0<1.0<1.0<1.0<
Male, 81 y.o, hepatocellular carcinoma, post-radiofrequency ablation
  AFP (<10 ng/ml)2.83.63.43.03.52.92.9
  PIVKA-II (<40 mAU/ml)19211618222318
Male, 78 y.o, hepatocellular carcinoma, post-radiofrequency ablation
  AFP (<10 ng/ml)2.63.03.22.72.92.82.5
  PIVKA-II (<40 mAU/ml)25272928322227
Male, 70 y.o, renal cell cancer, post-surgical resection
  CRP (<0.3 mg/dl)0.030.030.020.060.050.050.20
Male, 71 y.o, colon cancer, post-surgical resection
  CEA (<5.0 ng/ml)1.81.91.71.51.51.61.8
Male, 74 y.o, lung cancer, undergoing chemotherapy
  CEA (<5.0 ng/ml)38.239.742.236.432.325.728.5
  SLX (<38 U/ml)51576957665555
Male, 76 y.o, prostate cancer, pre-surgical operation
  PSA (<4.0 ng/ml)2.793.483.374.304.354.554.99
Female, 58 y.o, cervical cancer, post-surgical resection
  CA125 (<35.0 U/ml)9.18.89.18.88.59.4ne
  SCC (<2.5 ng/ml)0.90.71.10.81.02.2ne
Female, 52 y.o, breast cancer, post-surgical resection
  CEA (<5.0 ng/ml)2.82.72.42.42.32.42.5
  CA15-3 (<25.0 U/ml)12.512.511.610.714.213.115.8
Female, 56 y.o, colon cancer, post-surgical resection
  CEA (<5.0 ng/ml)8.112.119.023.423.0nene
Female, 70 y.o, adult T-cell leukemia, undergoing chemotherapy
  sIL-2R (154–510 U/ml)4,69010,20013,7009,71010,90012,30011,400

[i] Ne, not examined; y.o, years old.

Fucoidan absorption. Mean serum fucoidan levels were significantly increased one month and six months following the ingestion of fucoidan; peak levels ranged between 30 and 198 ng/ml. Fucoidan levels did not show a sex difference (Fig. 2).

Clinical laboratory test. Statistical analysis of all subjects indicated that no significant changes were observed in clinical parameters, such as hematology, liver function, renal function, lipids, electrolytes, and the urinalysis, over the trial period (Tables SII and SIII).

Abnormal laboratory parameters before treatment were observed in a few cases. Two patients showed mild elevation of Cr levels, and abnormal γ-GTP and AST levels were observed in two patients with alcoholic liver injury. AST and ALT levels were elevated temporally in a patient with drug induced liver injury; elevation of AST and ALT levels was within 2 times the upper limit of normal. Renal injury and liver damage were not so severe as to affect the drug metabolism during the trial period.

Correlation among NK cell activity, immunoglobulin titers, and laboratory parameters. NK cell activity positively correlated with albumin and hemoglobin levels; a significant correlation was observed 1 month into the trial. NK cell activity had a significant negative correlation with AST levels 1,3,4, and 5 months after the ingestion of fucoidan. NK cell activity had a significant negative correlation with ALT levels 4 months into the trial (Fig. 3).

IgG titers did not correlate with laboratory parameters. IgA titers negatively correlated with lymphocyte counts and positively correlated with γ-GTP levels. IgE titers positively correlated with Cr and γ-GTP levels, and negatively correlated with lymphocyte counts (data not shown).

Discussion

Numerous in vivo and in vitro studies on the effects of fucoidan on NK cell activity have supported its application as an anticancer drug (8,9,30,31). Regarding in vivo studies on fucoidan, the dose and route of administration were both shown to affect outcomes. Oral intake is more convenient than an intravenous or subcutaneous injection for the administration of fucoidan in clinical settings. Negishi et al reported that the oral administration of 300 mg of Mekabu fucoidan for 24 weeks to elderly subjects receiving influenza vaccines attenuated the aging-related suppression of NK cell activity (32). Based on these findings, we examined the effects of fucoidan on immunomodulation in cancer survivors with a performance status of 0 or 1. The results obtained demonstrated that fucoidan extracted from C. okamuranus did not increase NK cell activity in total patients, but significantly increased in male cancer survivors. The finding confirmed our unpublished data, in which fucoidan significantly increased NK cell activity in male but not in female healthy volunteers. The mechanism of different function of fucoidan according to sex should be clarified in a future research.

The mechanisms underlying NK cell activation by fucoidan have not yet been elucidated. Cytokines, such as interferon (lFN)-α/β, lL-2, lL-12, and lL-15, activate NK cells and produce lFN-γ (33). Since these cytokines were not examined in the present study, further studies are warranted to investigate the role of fucoidan on the induction of NK cell activity by cytokines.

Interestingly, the present study showed that NK cell activity negatively correlated with AST and ALT titers. The percentage of NK cells among liver cells is five times as high as the percentages among spleen or peripheral blood, suggesting that NK cells may play an important role in the immune function of the liver. Accumulating evidences were found that the NK cells were modulated by liver diseases and were further involved in the pathogenesis of liver injury and inflammation (34). Fucoidan was shown to benefit alcohol and non-alcoholic liver disease (3). Taken together with the present and previous studies, fucoidan may activate NK cells via improvement of liver damage through unexplained mechanism.

We evaluated changes in tumor markers caused by the ingestion of fucoidan. In Cases 1, 2, 3, 4, 5, 8, and 9, in whom primary tumors were eradicated by surgery or RFA, tumor markers remained within the reference range before and after the ingestion of fucoidan. These patients increased fucoidan levels and NK cell activity after the ingestion of fucoidan. It is difficult to clarify whether this effect is related to medical intervention or fucoidan administration. Noteworthy, there was no recurrence of the primary tumors in these cases during the trial period. Long-term surveillance in large-scale and well-organized studies is needed to clarify whether fucoidan alone is able to reduce their risk of recurrence via NK cell activation in male cancer survivors after conventional chemotherapy, radiofrequency ablation or radiotherapy.

Regarding the two cases undergoing conventional chemotherapy, tumor markers were continuously elevated in Case 11 but decreased in Case 6 following the administration of fucoidan. Case 6 taking erlotinib revealed elevation of fucoidan levels and NK cell activity following the ingestion of fucoidan. Case 11 taking irinotecan showed elevation of fucoidan levels and decrease of NK cell activity. It is important to assess the effect of chemotherapeutic regimens on circulating levels of fucoidan and NK cells activity. In addition, the ability of fucoidan as an adjunct therapy during conventional chemotherapy has been reported by a few investigators (12,13); therefore, the advantage of fucoidan as a supplemental therapy in the management of cancer patients is needed to be certified in the future.

Given that subjects were heterogeneous, and heavily treated, it is necessary to assess how the disease itself is affecting circulating levels of fucoidan and therefore levels of NK cells and immunoglobulins. Since fucoidan levels were similar in the recovered cancer patients and the non-recovered cancer patients, the disease itself is unlikely affecting the fucoidan absorption in cancer survivors with performance status 0 or 1. Whereas, fucoidan enhanced NK activity in the recovered cancer patients, but it did not work in the non-recovered cancer patient. It is a further study whether the disease itself affect the fucoidan metabolism in cancer survivors.

Mean serum fucoidan levels were significantly higher one month and six months after than before the ingestion of fucoidan, even though the intestinal absorption of fucoidan was very low, peaking at 198 ng/ml, in serum. The serum profiles after fucoidan administration varied among patients. This result was consistent with our previous findings (16,35). Since subjects continued with the same medicine(s) as before, the potential pharmacokinetic interactions between fucoidan and medicines should be clarified in the future. Mild liver damage was observed in three subjects and mild renal injury was complicated with two subjects. Since these patients showed similar fucoidan levels compared with those without liver and renal injury, the fucoidan metabolism is unlikely to be influenced by mild liver and renal injury.

The oral route is essential for the administration of fucoidan in clinical studies. The maximum dose used heretofore was 6 g of fucoidan for patients with human t-lymphotropic virus type-1-associated neurological diseases. A previous study reported that four out of 17 subjects developed diarrhea within 1 month of trial initiation (36). Other patients with advanced cancer received 4 g of fucoidan without adverse effects for six months (12). The present results indicated that since the intestinal absorption of fucoidan was so low, it may be difficult to reach the serum levels needed to directly inhibit cancer cell growth or metastasis in clinical trials with safety dose of fucoidan for cancer survivors. Therefore, further studies are needed to establish the effective serum concentration of fucoidan needed for NK cell activation, tumor inhibition, and anti-angiogenesis activity.

Our preliminary study had some limitations. The number of subjects was small in the present study, with only four females being enrolled. This may have affected the statistical analysis; therefore, further studies are needed to confirm the potential effects of fucoidan on NK cell activity using a large number of subjects. The proinflammatory cytokines, including interleukin-1β (IL-1β), IL-6, and tumor necrosis factor-α (TNF-α) were reported to be reduced after fucoidan ingestion (13). Since cancer and inflammatory responses are closely associated, we need to assess the relationship between inflammatory markers and levels of fucoidan and NK cells/immunoglobulins. Lack of measurement of inflammation markers was the limitations of the present study. Subjects took a meal without dietary restriction during the trial period. Since this parameter may affect circulating levels of fucoidan, it may be a limitation of the present study.

The oral administration of 3 g fucoidan was safe for and tolerated well by cancer survivors. The present results showed that fucoidan extracted from C. Okamuranus may enhance the activation of NK cells in male cancer survivors. No recurrence of primary tumors was shown in cancer survivors, in whom primary tumor was eradicated by treatment.

Supplementary Material

Supporting Data

Acknowledgements

The authors would like to thank Assistant Professor Kenji Nakamura (Takasaki University of Health and Welfare) for his helpful advice on the statistical analysis. In addition, the authors thank Dr. Kazuhiro Ono (Medical doctor of Ono Clinic), Dr. Sanae Takeichi (Medical doctor of Takeichi clinic) and Dr. Hiroto Hoshi (Medical Doctor of Hoshi clinic) for their contributions to clinical management of the participants.

Funding

No funding was received.

Availability of data and materials

The datasets used and/or analyzed during the present study are available from the corresponding author on reasonable request.

Authors' contributions

TN designed the study, contributed to the analysis and interpretation of data, and wrote the initial draft of the manuscript. KK, MT, and MI contributed to the collection and assembly of data. KN contributed to the analysis and interpretation of data and assisted in the preparation of the manuscript. All authors critically reviewed the manuscript and approved the final version.

Ethics approval and consent to participate

The Ethics Committee of South Product Co., Ltd. approved the present study (approval no. 16-01). Following an explanation of the study and its aim, written informed consent was obtained from all subjects.

Patient consent for publication

Not applicable.

Competing interests

The authors declare that they have no competing interests.

References

1 

Cumashi A, Ushakova NA, Preobrazhenskaya ME, D'Incecco A, Piccoli A, Totani L, Tinari N, Morozevich GE, Berman AE, Bilan MI, et al: A comparative study of the anti-inflammatory, anticoagulant, antiangiogenic, and antiadhesive activities of nine different fucoidans from brown seaweeds. Glycobiology. 17:541–552. 2007. View Article : Google Scholar : PubMed/NCBI

2 

Li B, Lu F, Wei X and Zhao R: Fucoidan: Structure and bioactivity. Molecules. 13:1671–1695. 2008. View Article : Google Scholar : PubMed/NCBI

3 

Fitton JH, Stringer DN and Karpiniec SS: Therapies from fucoidan: An update. Mar Drugs. 13:5920–5946. 2015. View Article : Google Scholar : PubMed/NCBI

4 

Senthilkumar K, Manivasagan P, Venkatesan J and Kim SK: Brown seaweed fucoidan: Biological activity and apoptosis, growth signaling mechanism in cancer. Int J Biol Macromol. 60:366–374. 2013. View Article : Google Scholar : PubMed/NCBI

5 

Kwak JY: Fucoidan as a marine anticancer agent in preclinical development. Mar Drugs. 12:851–870. 2014. View Article : Google Scholar : PubMed/NCBI

6 

Wang P, Liu Z, Liu X, Teng H, Zhang C, Hou L and Zou X: Anti-metastasis effect of fucoidan from Undaria pinnatifida sporophylls in mouse hepatocarcinoma Hca-F cells. PLoS One. 9:e1060712014. View Article : Google Scholar : PubMed/NCBI

7 

Wu L, Sun J, Su X, Yu Q, Yu Q and Zhang P: A review about the development of fucoidan in antitumor activity: Progress and challenges. Carbohydr Polym. 154:96–111. 2016. View Article : Google Scholar : PubMed/NCBI

8 

Atashrazm F, Lowenthal RM, Woods GM, Holloway AF, Karpiniec SS and Dickinson JL: Fucoidan suppresses the growth of human acute promyelocytic leukemia cells in vitro and in vivo. J Cell Physiol. 231:688–697. 2016. View Article : Google Scholar : PubMed/NCBI

9 

Zhang W, Oda T, Yu Q and Jin JO: Fucoidan from Macrocystis pyrifera has powerful immune-modulatory effects compared to three other fucoidans. Mar Drugs. 13:1084–1104. 2015. View Article : Google Scholar : PubMed/NCBI

10 

Centers for Disease Control and Prevention (CDC), . Cancer survivors-United States, 2007. MMWR Morb Mortal Wkly Rep. 60:269–272. 2011.PubMed/NCBI

11 

Rock CR, Doyle C, Demark-Wahnefried W, Meyerhardt J, Courneya KS, Schwartz AL, Bandera EV, Hamilton KK, Grant B, McCullough M, et al: Nutrition and physical activity guidelines for cancer survivors. CA Cancer J Clin. 62:243–274. 2012. View Article : Google Scholar : PubMed/NCBI

12 

Ikeguchi M, Yamamoto M, Arai Y, Maeta Y, Ashida K, Katano K, Miki Y and Kimura T: Fucoidan reduces the toxicities of chemotherapy for patients with unresectable advanced or recurrent colorectal cancer. Oncol Lett. 2:319–322. 2011. View Article : Google Scholar : PubMed/NCBI

13 

Takahashi H, Kawaguchi M, Kitamura K, Narumiya S, Kawamura M, Tengan I, Nishimoto S, Hanamure Y, Majima Y, Tsubura S, et al: An exploratory study on the anti-inflammatory effects of fucoidan in relation to quality of life in advanced cancer patients. Integr Cancer Ther. 17:282–291. 2018. View Article : Google Scholar : PubMed/NCBI

14 

Whiteside TL and Herberman RB: The role of natural killer cells in human disease. Clin Immunol Immunopathol. 53:1–23. 1989. View Article : Google Scholar : PubMed/NCBI

15 

Imai K, Matsuyama S, Miyake S, Suga K and Nakachi K: Natural cytotoxic activity of peripheral-blood lymphocytes and cancer incidence: An 11-year follow-up study of a general population. Lancet. 356:1795–1799. 2000. View Article : Google Scholar : PubMed/NCBI

16 

Tokita Y, Nakajima K, Mochida H, Iha M and Nagamine T: Development of a fucoidan-specific antibody and measurement of fucoidan in serum and urine by sandwich ELISA. Biosci Biotechnol Biochem. 74:350–357. 2010. View Article : Google Scholar : PubMed/NCBI

17 

Oshimi K, Oshimi Y, Satake M and Mizoguchi H: Natural killer-mediated lysis of normal and malignant target cells, and its regulation by monocytes. J Exp Med. 162:472–486. 1985. View Article : Google Scholar : PubMed/NCBI

18 

Alkotyfan K, Wiegand S, Müller HH, Windfuhr JP, Werner JA and Sesterhenn AM: Cyfra 21-1 as a tumor marker for follow-up of patients with squamous cell carcinoma of the oropharynx. Anticancer Res. 30:2291–2296. 2010.PubMed/NCBI

19 

Aoyagi Y: Carbohydrate-based measurements on alpha-fetoprotein in the early diagnosis of hepatocellular carcinoma. Glycoconj J. 12:194–199. 1995. View Article : Google Scholar : PubMed/NCBI

20 

Das V, Kalita J and Pal M: Predictive and prognostic biomarkers in colorectal cancer: A systematic review of recent advances and challenges. Biomed Pharmacother. 87:8–19. 2017. View Article : Google Scholar : PubMed/NCBI

21 

Triphuridet N, Vidhyarkorn S, Worakitsitisatorn A, Sricharunrat T, Teerayathanakul N, Auewarakul C, Chungklay N, Krongthong W, Luengingkasoot S, Sornsamdang G, et al: Screening values of carcinoembryonic antigen and cytokeratin 19 fragment for lung cancer in combination with low-dose computed tomography in high-risk populations: Initial and 2-year screening outcomes. Lung Cancer. 122:243–248. 2018. View Article : Google Scholar : PubMed/NCBI

22 

Li X, Dai D, Chen B, Tang H, Xie X and Wei W: Clinicopathological and prognostic significance of cancer antigen 15-3 and carcinoembryonic antigen in breast cancer: A meta-analysis including 12,993 patients. Dis Markers. 2018:98630922018. View Article : Google Scholar : PubMed/NCBI

23 

Laengsri V, Kerdpin U, Plabplueng C, Treeratanapiboon L and Nuchnoi P: Cervical cancer markers: Epigenetics and microRNAs. Lab Med. 49:97–111. 2018. View Article : Google Scholar : PubMed/NCBI

24 

Umekita K, Hashiba Y, Kariya Y, Kubo K, Miyauchi S, Aizawa A, Umeki K, Nomura H, Kawaguchi T, Matsuda M, et al: The time-sequential changes of risk factors for adult T-cell leukemia development in human T-cell leukemia virus-positive patients with rheumatoid arthritis: A retrospective cohort study. Mod Rheumatol. 29:795–801. 2019. View Article : Google Scholar : PubMed/NCBI

25 

Xia J, Song P, Sun Z, Sawakami T, Jia M and Wang Z: Advances of diagnostic and mechanistic studies of γ-glutamyl transpeptidase in hepatocellular carcinoma. Drug Discov Ther. 10:181–187. 2016. View Article : Google Scholar : PubMed/NCBI

26 

Charakorn C, Thadanipon K, Chaijindaratana S, Rattanasiri S, Numthavaj P and Thakkinstian A: The association between serum squamous cell carcinoma antigen and recurrence and survival of patients with cervical squamous cell carcinoma: A systematic review and meta-analysis. Gynecol Oncol. 150:190–200. 2018. View Article : Google Scholar : PubMed/NCBI

27 

Teishima J, Ohara S, Shinmei S, Inoue S, Hayashi T, Mochizuki H, Mita K, Shigeta M and Matsubara A: Normalization of C-reactive protein levels following cytoreductive nephrectomy in patients with metastatic renal cell carcinoma treated with tyrosine kinase inhibitors is associated with improved overall survival. Urol Oncol. 36:339.e9–339.e15. 2018. View Article : Google Scholar

28 

Mizuguchi S, Nishiyama N, Iwata T, Nishida T, Izumi N, Tsukioka T, Inoue K, Uenishi T, Wakasa K and Suehiro S: Serum sialyl Lewis × and cytokeratin 19 fragment as predictive factors for recurrence in patients with stage I non-small cell lung cancer. Lung Cancer. 58:369–375. 2007. View Article : Google Scholar : PubMed/NCBI

29 

Stephan C, Jung K, Lein M, Sinha P, Schnorr D and Loening SA: Molecular forms of prostate-specific antigen and human kallikrein 2 as promising tools for early diagnosis of prostate cancer. Cancer Epidemiol Biomarkers Prev. 9:1133–1147. 2000.PubMed/NCBI

30 

Ale MT, Maruyama H, Tamauchi H, Mikkelsen JD and Meyer AS: Fucoidan from Sargassum sp. and fucus vesiculosus reduces cell viability of lung carcinoma and melanoma cells in vitro and activates natural killer cells in mice in vivo. Int J Biol Macromol. 49:331–336. 2011. View Article : Google Scholar : PubMed/NCBI

31 

Azuma K, Ishihara T, Nakamoto H, Amaha T, Osaki T, Tsuka T, Imagawa T, Minami S, Takashima O, Ifuku S, et al: Effects of oral administration of fucoidan extracted from Cladosiphon okamuranus on tumor growth and survival time in a tumor-bearing mouse model. Mar Drugs. 10:2337–2348. 2012. View Article : Google Scholar : PubMed/NCBI

32 

Negishi H, Mori M, Mori H and Yamori Y: Supplementation of elderly Japanese men and women with fucoidan from seaweed increases immune responses to seasonal influenza vaccination. J Nutr. 143:1794–1798. 2013. View Article : Google Scholar : PubMed/NCBI

33 

Fehniger TA, Shah MH, Turner MJ, VanDeusen JB, Whitman SP, Cooper MA, Suzuki K, Wechser M, Goodsaid F and Caligiuri MA: Differential cytokine and chemokine gene expression by human NK cells following activation with IL-18 or IL-15 in combination with IL-12: Implications for the innate immune response. J Immunol. 162:4511–4520. 1999.PubMed/NCBI

34 

Liu P, Chen L and Zhang H: Natural killer cells in liver disease and hepatocellular carcinoma and the NK cell-based immunotherapy. J Immunol Res. 2018:12067372018. View Article : Google Scholar : PubMed/NCBI

35 

Nagamine T, Hayakawa K, Nakazato K and Iha M: Determination of the active transport of fucoidan derived from Okinawa Mozuku across the human intestinal Caco-2 cells as assessed by size-exclusion chromatography. J Chromatogr B Analyt Technol Biomed Life Sci. 997:187–193. 2015. View Article : Google Scholar : PubMed/NCBI

36 

Araya N, Takahashi K, Sato T, Nakamura T, Sawa C, Hasegawa D, Ando H, Aratani S, Yagishita N, Fujii R, et al: Fucoidan therapy decreases the proviral load in patients with human T-lymphotropic virus type-1-associated neurological disease. Antivir Ther. 16:89–98. 2011. View Article : Google Scholar : PubMed/NCBI

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January-2020
Volume 12 Issue 1

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Spandidos Publications style
Nagamine T, Kadena K, Tomori M, Nakajima K and Iha M: Activation of NK cells in male cancer survivors by fucoidan extracted from Cladosiphon okamuranus. Mol Clin Oncol 12: 81-88, 2020
APA
Nagamine, T., Kadena, K., Tomori, M., Nakajima, K., & Iha, M. (2020). Activation of NK cells in male cancer survivors by fucoidan extracted from Cladosiphon okamuranus. Molecular and Clinical Oncology, 12, 81-88. https://doi.org/10.3892/mco.2019.1943
MLA
Nagamine, T., Kadena, K., Tomori, M., Nakajima, K., Iha, M."Activation of NK cells in male cancer survivors by fucoidan extracted from Cladosiphon okamuranus". Molecular and Clinical Oncology 12.1 (2020): 81-88.
Chicago
Nagamine, T., Kadena, K., Tomori, M., Nakajima, K., Iha, M."Activation of NK cells in male cancer survivors by fucoidan extracted from Cladosiphon okamuranus". Molecular and Clinical Oncology 12, no. 1 (2020): 81-88. https://doi.org/10.3892/mco.2019.1943