| Literature DB >> 24526922 |
Soheil Zorofchian Moghadamtousi1, Hamed Karimian2, Ramin Khanabdali1, Mahboubeh Razavi2, Mohammad Firoozinia1, Keivan Zandi3, Habsah Abdul Kadir1.
Abstract
Seaweed is one of the largest producers of biomass in marine environment and is a rich arsenal of active metabolites and functional ingredients with valuable beneficial health effects. Being a staple part of Asian cuisine, investigations on the crude extracts of Phaeophyceae or brown algae revealed marked antitumor activity, eliciting a variety of research to determine the active ingredients involved in this potential. The sulfated polysaccharide of fucoidan and carotenoid of fucoxanthin were found to be the most important active metabolites of brown algae as potential chemotherapeutic or chemopreventive agents. This review strives to provide detailed account of all current knowledge on the anticancer and antitumor activity of fucoidan and fucoxanthin as the two major metabolites isolated from brown algae.Entities:
Mesh:
Substances:
Year: 2014 PMID: 24526922 PMCID: PMC3910333 DOI: 10.1155/2014/768323
Source DB: PubMed Journal: ScientificWorldJournal ISSN: 1537-744X
Figure 1Two different types of homofucose backbone chains in fucoidans isolated from brown seaweed. R groups depict the potential places for attachment of noncarbohydrate (sulfate and acetyl groups) and carbohydrate (α-l-fucopyranose and α-d-glucuronic acid) substituents.
Anticancer and antitumor activity of fucoidans isolated from brown algae.
| Source of isolation | Type of activity and possible mechanisms | References |
|---|---|---|
|
| Growth inhibitory activity in Ehrlich ascites carcinoma in mice | [ |
|
| Antitumor effect in mice with Ehrlich carcinoma transplanted | [ |
|
|
| [ |
|
| Antitumor effect against P-388 tumor-bearing mice | [ |
|
| Elevation of antiangiogenic and antitumor activities by oversulfation | [ |
|
| Anti-angiogenic activity on human uterine carcinoma HeLa cells | [ |
|
| Induction of apoptosis in human lymphoma HS-Sultan cell line associated with caspase-3 activation and downregulation of ERK pathway | [ |
|
| Growth inhibitory activity on stomach cancer cell line of MKN45 | [ |
|
| Enhancement in etoposide induced caspase-dependent cell death pathway on MT-4, human malignant lymphoid cell lines | [ |
|
| Antimetastatic and antitumor activity in C57Bl/6 mice with transplanted Lewis lung adenocarcinoma | [ |
|
| Blocked adhesion of MDA-MB-231 breast carcinoma cell to platelets | [ |
|
| Induction of apoptosis in U937, human leukemia cells, by oversulfated form of fucoidan | [ |
|
| Induction of apoptosis in MCF-7 cells, human breast cancer, via caspase-8-dependent pathway | [ |
|
| Induction of apoptosis in HCT-15, colon carcinoma cells | [ |
|
| Induction of apoptosis in HT-29 and HCT116, human colon cancer cells, via both intrinsic and extrinsic pathways | [ |
|
| Antitumor activity against PC-3, HepG2, A549, and HeLa cancer cells | [ |
Figure 2Proposed metabolic pathway of dietary fucoxanthin in mammals.
Anticancer and antitumor activity of fucoxanthin and its metabolites isolated from brown algae.
| Type | Source | Type of activity | References |
|---|---|---|---|
| Fucoxanthin |
| Inhibitory effect against growth of GOTO cells, a human neuroblastoma cell line | [ |
| Fucoxanthin |
| Inhibitory effect against duodenal carcinogenesis induced by N-ethyl-N′-nitro-N-nitrosoguanidine in mice | [ |
| Fucoxanthin |
| Suppression of skin and liver carcinogenesis | [ |
| Fucoxanthin |
| Reduced development of putative preneoplastic aberrant crypt foci (ACF) in colon of mice | [ |
| Fucoxanthin |
| Inhibitory effect against the proliferation of HL-60, human leukemia cell line, through apoptosis | [ |
| Fucoxanthin |
| Decreased cell viability in prostate cancer cell lines of PC-3, DU 145, and LNCaP | [ |
| Fucoxanthin |
| Inhibitory effect against viability of human colon cancer cell lines, HT-29, DLD-1, and Caco-2, through apoptosis | [ |
| Fucoxanthinol, amarouciaxanthin A | Metabolites of fucoxanthin | Inhibitory effect against PC-3, prostate cancer cell line | [ |
| Fucoxanthin |
| Inhibitory effect against HCT116, human colorectal adenocarcinoma | [ |
| Fucoxanthin |
| Induction of apoptosis in PC-3 cells via caspase-3 activation | [ |
| Fucoxanthin |
| Cell cycle arrest at G0/G1 phase in human colon cancer cells induced by upregulation of p21WAF1/Cip1 | [ |
| Fucoxanthin |
| Induction of G1 arrest and GADD45A gene expression in HepG2 and DU145 cells | [ |
| Fucoxanthin |
| Antiadult T-cell leukemia activity | [ |
| Fucoxanthinol | Metabolites of fucoxanthin |
| [ |
| Fucoxanthinol |
| Inhibitory effect against HepG2, human hepatic carcinoma, associated with downregulation of cyclin D | [ |
| Fucoxanthin |
| Induction of cell cycle arrest in G2/M phase and apoptosis in MGC-803 cells, human gastric adenocarcinoma | [ |