Revisión exploratoria de la composición fitoquímica y las actividades biológicas asociadas de varias especies del género caulerpa y su potencial en la industria farmacéutica

dc.contributor.advisorTapia Larios, Claudia Milena
dc.contributor.authorRodríguez Redondo, Maryluna
dc.contributor.authorGuerra Díaz, Romario De Souza
dc.coverage.spatialBarranquillaspa
dc.creator.emailmaryluna-rodriguezr@unilibre.edu.cospa
dc.creator.emailromariod-guerrad@unilibre.edu.cospa
dc.date.accessioned2025-06-26T21:14:17Z
dc.date.available2025-06-26T21:14:17Z
dc.date.created2022
dc.description.abstractEn la actualidad, gran parte de los medicamentos se obtienen a partir de compuestos aislados de seres vivos. Ante esta perspectiva, existe un interés creciente en la búsqueda de nuevos compuestos bioactivos, especialmente en organismos que han sido poco explora-dos hasta ahora, como es el caso de algunas especies de algas marinas. Este trabajo pretendió caracterizar fitoquímicamente e identificar las aplicaciones y beneficios procedentes de los metabolitos secundarios del género Caulerpa. Para llevar a cabo este estudio, Se realizó una revisión exploratoria con enfoque sistemático de artículos científicos en las bases de datos Scopus, PubMed, Marine Drugs, Scielo y Lilacs. El análisis de la información recopilada fue apoyado por el programa Microsoft Excel® y el gestor bibliográfico Zotero®. Se identificó el potencial bio prospectivo de las actividades biológicas de compuestos asociados a especies del género Caulerpa y su impacto en la industria farmacéutica a través de la revisión de 93 artículos científicos. Los hallazgos resaltan la importancia composicional y funcional de los polisacáridos sulfatados, los metabolitos secundarios Caulerpenina y Caulerpina, así como los ácidos grasos y extractos de Caulerpa, debido a que han revelado diversas actividades biológicas, incluyendo el potencial antiinflamatorio, antimicrobiano, antitumoral y antioxidante. La presencia de especies del género Caulerpa en el Caribe colombiano, respaldada por datos de caracterización de diversidad algal a nivel nacional, sugiere un potencial significativo de los recursos subvalorados de Caulerpa en Colombia para su desarrollo a mediano y largo plazo en la industria farmacológica. spa
dc.description.abstractenglishCurrently, a significant percentage of medicines derived from compounds isolated from living organisms. Considering this perspective, the exploration of new bioactive compounds is inclined to those organisms that have remained unexplored, as occurs with some species of marine algae. This work aimed to phytochemically characterize and identify the applications and benefits from the secondary metabolites of the Caulerpa genus. To conduct this study, an exploratory review of scientific articles was carried out using a systematic approach on databases including Scopus, Pubmed, Marine Drugs, Scielo and Lilacs. The collected information was analyzed using Microsoft Excel® and the reference management software Zotero®. Through the review of 93 scientific articles, the bioprospective potential of biologically active compounds associated with Caulerpa spp. And their impact on the pharmaceutical industry was identified. The findings highlight the compositional and functional importance of sulfated polysaccharides, as well as the secondar y metabolites Caulerpin and Caulerpenyne, along with the fatty acids and extracts of Caulerpa, since these compounds have demonstrated diverse biological activities, including anti-inflammatory, antitumoral, antimicrobial and antioxidant potentials. The presence of Caulerpa spp in the Colombian Caribbean, supported by data on algal diversity at the national level, suggests a significant potential for underexplored resources from Caulerpa in Colombia. These resources hold promise for medium and long-term development in the pharmaceutical industry.spa
dc.description.sponsorshipUniversidad Libre Seccional Barranquilla -- Facultad de Ciencias Exactas y Naturales -- Programa de Microbiologíaspa
dc.formatPDFspa
dc.identifier.urihttps://hdl.handle.net/10901/31396
dc.relation.referencesABDUL AZIZ, Syamimi Diyana, et al. Antifungal activities against oil palm pathogen Ganoderma boninense from seaweed sources. En: Asia Pacific Journal of Molecular Biology and Biotechnology. 13, febrero, 2019. p. 75-83. ISSN 2672-7277spa
dc.relation.referencesABDULLAH, M. y HUSSEIN, H. Integrated algal and oil palm biorefinery as a model system for bioenergy co-generation with bioproducts and biopharmaceuticals. Bioresources and Bioprocessing. 2021, vol. 8, nro. 1, pp. 1–29spa
dc.relation.referencesAFRASIABI, Z., et al. Appended 1,2-naphthoquinones as anticancer agents 1: synthesis, structural, spectral and antitumor activities of ortho-naphthaquinone thiosemicarbazone and its transition metal complexes. Inorganica Chimica Acta. 2004, vol. 357, nro. 1, pp. 271-278 https://www.sciencedirect.com/science/article/abs/pii/S0020169303004845spa
dc.relation.referencesAGATONOVIC-KUSTRIN, Snezana y MORTON, David W. High-performance thin-layer chromatography-direct bioautography as a method of choice for alpha-amylase and antioxidant activity evaluation in marine algae. En: Journal of Chromatography A. Diciembre, 2017. vol. 1530spa
dc.relation.referencesAGUILAR-SANTOS G. Caulerpin, a new red pigment from green algae of the genus Caulerpa. J Chem Soc C Org. 1970;(6):842spa
dc.relation.referencesAMICO, V., ORIENTE, G., PIATTELLI, M., TRINGALI, C., FATTORUSSO, E., MAGNO, S., MAYOL, L., 1978. Caulerpenyne, an unusual sesquiterpenoid from the green alga Caulerpa prolifera. Tetrahedron Lett. 38, 3593–3596spa
dc.relation.referencesANDRADE, R. Perfil de ácidos grasos por cromatografía de gases. En: MicroLab Industrial [Internet]. 2014spa
dc.relation.referencesARENAJO, Althea R., et al. The potential anticoagulant property of caulerpa lentillifera crude extract. En: Int J Health Sci (Qassim). vol. 11, no. 3, p. 29-32. ISSN 1658-3639spa
dc.relation.referencesAROYEHUN, A. et al. Bioprospecting Cultivated Tropical Green Algae, Caulerpa racemosa (Forsskal) J. Agardh: A Perspective on Nutritional Proper-ties, Antioxidative Capacity and Anti-Diabetic Potential. Foods. 2020, vol. 9, nro. 9spa
dc.relation.referencesAZAM, Maria, et al. Ameliorative effect of marine macroalgae on carbon tetrachlorideinduced hepatic fibro-sis and associated complications in rats. En: Turk J Pharm Sci. vol. 19, no. 2, p. 116-124. ISSN 2148-6247spa
dc.relation.referencesBALASUBRAMANIAM, V., et al. Carotenoid composition and antioxidant potential of Eucheuma denticula-tum, Sargassum polycystum and Caulerpa lentillifera. En: Heliyon. Agosto, 2020. vol. 6, no. 8spa
dc.relation.referencesBALBOA, E., et al. Cosmetics from Marine Sources En: KIM, S. Springer Handbook of Marine Biotechnology. Berlin, Springer, 2015, pp. 1015–1042spa
dc.relation.referencesBARBOSA J., et al. In Vitro Immunostimulating Activity of Sulfated Polysaccharides from Caulerpa cu-pressoides Var. Flabellata. Marine Drugs. 2019, vol 17, nro. 2spa
dc.relation.referencesImmunostimulatory effect of sulfated galactans from the green seaweed Caulerpa cupressoides var. flabellata. Marine Drugs. 29, abril, 2020. vol. 18, no. 5 p. 234. ISSN 1660- 3397spa
dc.relation.referencesIn Vitro Antitumor Potential of Sulfated Polysaccharides from Seaweed Caulerpa cupressoides var. flabellata. Marine Biotechnology. 2021, vol. 23., nro. 1, p. 77-89spa
dc.relation.referencesBELKACEMI, Louiza, et al. Antioxidant and antibacterial activities and identification of bioactive compounds of various extracts of Caulerpa racemosa from Algerian coast. En: Asian Pacific Journal of Tropical Biomedi-cine. 2020. vol. 10, no. 2spa
dc.relation.referencesBERNEIRA, L., et al. Bioactivity and composition of lipophilic metabolites extracted from Antarctic macroalgae. Brazilian Journal of Microbiology. 2021, vol. 52, nro. 3, pp.1275– 1285spa
dc.relation.referencesBHATTACHARJEE, M. Pharmaceutically valuable bioactive compounds of algae. Asian Jour Pharmaceutical and Clinical Research. 2016, vol. 9, nro. 6, pp. 43–47spa
dc.relation.referencesBIRIS-DORHOI, E-S, et al. Macroalgae—A Sustainable Source of Chemical Compounds with Biological Activities. Nutrients. 2020, vol. 12, nro. 10, p. 3085spa
dc.relation.referencesBITENCOURT, M., et al. Anti-inflammatory effects of methanolic extract of green algae Caulerpa mexicana in a murine model of ulcerative colitis. Revista Brasileira de Farmacognosia. 2015, vol. 25, nro. 6, pp. 677–682spa
dc.relation.referencesAqueous and Methanolic Extracts of Caulerpa mexicana Suppress Cell Migration and Ear Edema Induced by Inflammatory Agents. Mar Drugs. 2011, vol. 9, nro. 8, pp. 1332- 1345spa
dc.relation.referencesBØRGESEN, F. An ecological and systematic account of the caulerpas of the Danish West Indies. København. 1907spa
dc.relation.referencesBOX CENTENO A. Ecología de Caulerpales: Fauna y Biomarcadores. [España]: Universidad Islas Baleares; 2008spa
dc.relation.referencesBRITO, C., et al. Antinociceptive and Anti-Inflammatory Activity from Algae of the Genus Caulerpa. Marine Drugs. 2011, vol. 9, nro. 3, pp. 307-318spa
dc.relation.referencesBRUGÉRE, C., y RIDLER, N. Global aquaculture outlook in the next dec-ades: an analysis of national aquaculture production forecasts to 2030. Roma, FAO, 2004. Fisheries Circular: 1001spa
dc.relation.referencesCAMACHO, O., et al. Morphological and molecular assessment of Sargassum –Fucales, Phae-ophyceae –from Caribbean Colombia, including theproporsal of Sargassum giganteum sp. Nov., Sargassum schnetteri comb. Nov. And Sargassum section Cladophyllum sect. Nov. Systematics and Biodiversity. 2015spa
dc.relation.referencesCARNEIRO, J., et al. Gastroprotective Effects of Sulphated Polysaccharides from the Alga Caulerpa mexicana Reducing Ethanol-Induced Gastric Damage. Pharmaceuticals. 2018, vol. 11, nro. 1, pp. 1-9spa
dc.relation.referencesPeripheral Antinociception and Anti-Inflammatory Effects of Sulphated Polysaccharides from the Alga Caulerpa mexicana. Basic & Clinical Pharmacology & Toxicology.2014, vol. 115, nro. 4, pp.335–342spa
dc.relation.referencesCARRANZA, V et al. Determinación de metabolitos secundarios del tallo de Croton alnifolius L. (Tunga). In-forme de trabajo de investigación. 2009. p. 18spa
dc.relation.referencesCARRUTHERS TJB, WALKER DI, HUISMAN JM. Culture Studies on Two Morphological Types of Caulerpa (Chlorophyta) from Perth, Western Australia, with a Description of a New Species. Bot Mar. 1993;36(6):589-96spa
dc.relation.referencesCASTRO-PUYANA, M. et al. Extraction of new bioactives from Neochloris oleoabundans using pressurized technologies and food grade solvents. 2013spa
dc.relation.referencesCHAIKLAHAN, R., et al. The potential of polysaccharide extracts from Caulerpa lentillifera waste. Biological macromolecules. 2020, vol. 161, nro. 1, pp. 1021-1028spa
dc.relation.referencesCHAVES, G., et al. Genotoxicity and osteogenic potential of sulfated polysaccharides from Caulerpa prolif-era seaweed. Int J Biol Macromol. 2018, vol. 11, nro. 1, p. 565-571spa
dc.relation.referencesSulfated Glucan from the gereen seaweed Caulerpa sertularioides Inhibits adipogenesis through suppression of adipogenic and lipigenic key factors. Mar drugs. 2022, vol. 20, nro. 8spa
dc.relation.referencesSulfated polysaccharides from green seaweed Caulerpa prolifera suppress fat accumulation. Journal of applied Phycology. 2020, vol. 32, nro. 1, p. 2499 – 4307spa
dc.relation.referencesCHINNAMANI, P., et al. Identifying seaweeds species of Chlorophyta, Ochrophyta and Rhodophyta using DNA barcodes. BioRxiv. 2020. Doi:10.1101/2020.08.30.274456spa
dc.relation.referencesCHUNG-KYU, R., et al. Synthesis and antifungal activity of 2/3-arylthio- and 2,3- bis(arylthio)-5-hydroxy-/5-methoxy-1,4-naphthoquinones. European Journal of Medical Chemistry. 2005, vol 40, nro. 5, pp. 438-444spa
dc.relation.referencesCOLLADO, L., et al. Morphological plasticity of Caulerpa prolifera in relation to growth from in a coral reef lagoon. 2002. Botanica marina, vol. 45, nro. 2, pp. 123-129spa
dc.relation.referencesCORRALES, Beatriz. Caracterización florística de cianobacterias y macroalgas marinas de los ban-cos Roncador y Serrana del Archipiélago de San Andrés, Providencia y Santa Catalina, Mar Caribe colombiano. Tesis de Maestría. Bogotá D.C.: Universidad Nacional de Colombia. Facultad de Ciencias. Departamento de Biología. 2019spa
dc.relation.referencesCOSTA, M., et al. Evaluating the posible anticoagulant and antioxidant effects of sulfated polysaccharides from the tropical green alga Caulerpa cupressoides var. flabellata. J Appl Phycol, 2012, vol. 2, nor. 1, p. 119-1167spa
dc.relation.referencesCUOMO, P., et al. Caulerpin Mitigates Helicobacter pylori-Induced Inflammation via Formyl Peptide Recep-tors. 2021, vol. 22, nro. 23spa
dc.relation.referencesDE FÁTIMA, Agra, et al.; Survey of medicinal plants used in the region Northeast of Brazil. Rev Bras Farmacogn. 2008, vol. 18, nro. 3, pp. 472-508spa
dc.relation.referencesDIAZ-PULIDO, G. y BULA-MEYERE, G. Marine algae from oceanic atolls in the southwestern Caribbean (Albuquerque Cays, Courtown Cays, Serrana Bank, and Roncador Bank). Atoll Research Bulletin. 1997, vol. 1, nro. 448, pp. 1-18spa
dc.relation.referencesE.S.O. Vanderlei, K.K.N.R. Patoilo, N.A. Lima, A.P.S. Lima, J.A.G. Rodrigues, L.M.C.M. Silva, M.E.P. Lima, V. Lima, N.M.B. Benevides, Antinociceptive and antiinflammatory activities of lectin from the marine green alga Caulerpa cupressoides, Int. Immnunopharmacol. 10 (2010) 1113–1118spa
dc.relation.referencesFAJRIAH, Sofa; RIZKI, Ilmi Fadhilah y SINURAT, Ellya. Characterization and analysis of the antidiabetic activities of sulphated polysaccharide extract from Caulerpa lentillifera. En: Pharmacia. 12, noviembre, 2021. vol. 68, no. 4spa
dc.relation.referencesTHEOPHANIDES, T. Introduction to Infrared Spectroscopy. En: Infrared Spectroscopy – Materials Science, Engineering and Technology; InTech. 2012, pp. 1-9spa
dc.relation.referencesESTRADA, P., et al. Morphological variation of two common sea grapes Caulerpa lenticifera and Caulerpa racemose from selected regions in the Philippines. Biodiversitas. 2020, vol. 21, nro. 5, pp. 1823-1832spa
dc.relation.referencesFALCÃO, Mariath, et al.; Plants of the American continent with antiulcer activity. Phytomedicine. 2008, vol. 15, nro. 1, pp. 132-146spa
dc.relation.referencesFILHO, G. P. Chaves, et al. Osteogenic activity of non-genotoxic sulfated polysaccharides from the green seaweed Caulerpa sertularioides. En: Algal Research. Septiembre, 2019. vol. 42 p. 101546. ISSN 2211-9264spa
dc.relation.referencesFISCHEL, J.L., LEMEE, R., FORMENTO, P., CALDANI, C., MOLL, J.L., PESANDO, D., MEINESZ, A., GRE-LIER, P., PIETRA, P., GUERRIERO, A., 1995. Cell-growth-inhibitory effects of caulerpenyne, a sesquiterpenoid from the marine alga Caulerpa taxifolia. Anticancer Res. 15, 2155–2160spa
dc.relation.referencesFLEURENCE, J. Seaweeds as Food. En: Seaweed in Health and Disease Prevention; Academic Press. 2016, pp. 149-167spa
dc.relation.referencesGANOZA, M. Fundamentación Química de las Reacciones de coloración y Precipitación en la identificación de Metabolitos Secundarios de Plantes Medicinales. Tesis para optar al Título de Químico Farmacéutico. Uni-versidad Nacional de Trujillo. Perú, 200. Pp: 14-45spa
dc.relation.referencesGARIBAY, M., RAMIREZ, R., y LÓPEZ A. Alimentos y bebidas fermentados tradicionales. En: Biotecnología alimentaria. 5 ed. México: Limusa S.A. 2004. p 313spa
dc.relation.referencesGAZALI, Mohamad et al. Antioxidant activity of green seaweed Caulerpa racemosa (Försskal) J. Agardh from Balai Island Water, Aceh. IOP Conference Series. Earth and 46 Environmental Science; Bristol Vol. 1033, Iss. 1, (Jun 2022): 012052. DOI:10.1088/1755- 1315/1033/1/012052spa
dc.relation.referencesGERWICK, W. y FENICAL, W. Ichthyotoxic and cytotoxic metabolites of the tropical brown algae Stypopodium zonale (Lamouroux) Papenfuss. Journal of Organic Chemestry. 1981, vol., 46, nro. 1, pp. 22-27spa
dc.relation.referencesGOMES, D., et al. In Vitro Studies Reveal Antiurolithic Effect of Antioxidant Sulfated Polysaccharides from the Green Seaweed Caulerpa cupressoides var flabellata. Mar Drugs. 2019, vol. 17, no. 6spa
dc.relation.referencesGORBI S, GIULIANI ME, PITTURA L, D’ERRICO G, TERLIZZI A, FELLINE S, et al. Could molecular effects of Caulerpa racemosa metabolites modulate the impact on fish populations of Diplodus sargus? Mar Environ Res. mayo de 2014; 96:2-11spa
dc.relation.referencesGUIRY, M., et al. AlgaeBase: An online resource for Algae. Cryptogamie, Algologie. 2014, vol. 35, nro. 2, pp. 105-115spa
dc.relation.referencesGURGEL, José, et al. An anti-dengue and anti-herpetic polysulfated fraction isolated from the coenocytic green seaweed Caulerpa cupressoides inhibits thrombin generation in vitro. Acta Scientiarum Biological Scienc-es. 2017, vol 39, no. 2, p. 149-159spa
dc.relation.referencesGÜVEN, KC, et al.; Alkaloids in Marine Algae. Mar Drugs. 2010, vol 8, nro.2, pp. 269-284spa
dc.relation.referencesHAFTING, J., et al. Prospects and challenges for industrial production of seaweed bioactives. Journal of Phycology. 2015, vol. 51, nro. 5, pp. 821–837spa
dc.relation.referencesHALIM, R., et al. Extraction of oil from microalgae for biodiesel production. A review. Biotecnology Advances. 2012, vol. 30, nro. 3, pp. 709-732spa
dc.relation.referencesHAO, H., et al. Structural characterization and immunostimulatory activity of a novel polysaccharide from green alga Caulerpa racemose Var peltate. Int Jour Bio Macromol. 2019, vol. 134, nro. 1, p. 891-900spa
dc.relation.referencesHAO, L., et al. Conversion efficiency and oil quality of low-lipid high-protein and high-lipid low-protein microalgae via hydrothermal liquefaction. Bioresource Technology. 2014, vol. 15, nro. 1, pp. 322-329 https://www.sciencedirect.com/science/article/abs/pii/S0960852413019147spa
dc.relation.referencesHIMAYA, S. y KIM, S. Marine Nutraceuticals. En: KIM, S. Springer Handbook of Marine Biotechnology. Berlin, Springer, 2015, pp. 995–1014spa
dc.relation.referencesHINKELMAN, K. Y KEMPTHORNE, O. Design and analysis of experiments: Introduction to experimental design. John Wiley and Sons, Inc. 1994. pp. 495spa
dc.relation.referencesHODGSON, L.M., 1984. Antimicrobial and antineoplastic activity in some South Florida seaweeds. Bot. Mar. 27, 387–390spa
dc.relation.referencesGARIBAY, M., RAMIREZ, R., y LÓPEZ A. Alimentos y bebidas fermentados tradicionales. En: Biotecnología alimentaria. 5 ed. México: Limusa S.A. 2004. p 313spa
dc.relation.referencesHULSE, JH, et al.; Biotecnologías: historia pasada, situación presente y perspectivas futuras. Rev Colomb Ciencias Pecu. 2006, Vol.19, pp. 317–340spa
dc.relation.referencesI.N.L. De Queiroz, A.L.G. Quinderé, J.A.G. Rodrigues, E.S.O. V, N.A. Ribeiro, R.L.C. Rivanor, K.A. Ribeiro, C.O. Coura, K.M.A. Pereira, H.V. Chaves, M.M. Bezerra, I.W.F. Araújo, N.M.B. Benevides, Dual effects of a lectin from the green seaweed Caulerpa cupressoides var. lycopodium on inflammatory mediators in classical models of inflammation. Inflamm. Res. 64 (2015) 971–982spa
dc.relation.referencesIANNITTI, T y PALMIERI, B. An Update on the Therapeutic Role of Alkyl-glycerols. Mar Drugs. 2010, vol. 8, nro. 8, pp. 2267-2300spa
dc.relation.referencesITOKAWA, H., et al; Plant-derived natural product research aimed at new drug discovery. J Nat Med. 2008, Vol. 62, nro. 3, pp. 263-280spa
dc.relation.referencesKASE, A., et al. Secondary metabolites of some varieties of Caulerpa species. Materials Sci and Engin. 2019, vol. 823spa
dc.relation.referencesKHAIRUDDIN, Khairiyah, et al. Caulerpa lentillifera Polysaccharides-Rich Extract Reduces Oxidative Stress and Proinflammatory Cytokines Levels Associated with Male Reproductive Functions in Diabetic Mice. En: Ap-plied Sciences. 8, diciembre, 2020. vol. 10, no. 24spa
dc.relation.referencesLI Z, WANG B, ZHANG Q, QU Y, XU H, LI G. Preparation, and antioxidant property of extract and semipuri-fied fractions of Caulerpa racemosa. J Appl Phycol. diciembre de 2012;24(6):1527-36spa
dc.relation.referencesLIBRETEXTS. Infrared Spectroscopy. Chemistry LibreTexts [Internet]. 2013spa
dc.relation.referencesLIU Y, MORGAN JB, COOTHANKANDASWAMY V, LIU R, JEKABSONS MB, MAHDI F, et al. The Caulerpa Pigment Caulerpin Inhibits HIF-1 Activation and Mitochondrial Respiration. J Nat Prod. 28 de diciembre de 2009;72(12):2104-9spa
dc.relation.referencesLUCENA, A., et al. The Bisindole Alkaloid Caulerpin, from Seaweeds of the Genus Caulerpa, Attenuated Colon Damage in Murine Colitis Model. Mar Drugs. 2018, vol. 16, nro. 9, pp. 318spa
dc.relation.referencesMACEDO NRPV, RIBEIRO MS, VILLAÇA RC, FERREIRA W, , et al. Caulerpin as a potential antiviral drug against herpes simplex virus type 1. Rev Bras Farmacogn. agosto de 2012;22(4):861-7spa
dc.relation.referencesMAGDUGO, Rexie P., et al. An analysis of the nutritional and health values of caulerpa racemosa (forsskål) and ulva fasciata (delile)—two chlorophyta collected from the philippines. En: Molecules. 24, junio, 2020. vol. 25, no. 12, p. 2901. ISSN 1420-3049spa
dc.relation.referencesMAGLIOZZI, L., et al. Effect of the algal alkaloid caulerpin on neuropeptide Y (NPY) expression in the central nervous system (CNS) of Diplodus sargus. J Comp Physiol A Neuroethol Sens Neural Behav Physiol. 2019, vol. 205, nro. 3, p. 203-210spa
dc.relation.referencesMAHENDRAN, S. y SARAVANAN, S. Molecular taxinomy of green seaweeds Ulva Iactuca and Caulerpa taxifolia through phylogenetic analysis. Indian Journal of Geo Marine Sciences. 2017, vol.46, nro. 2, pp. 414-419spa
dc.relation.referencesMAMANI, Joyce, et al. Antioxidant activity and total phenolic content in Caulerpa filiformis (Chlorophyta) from Sechura Bay and Paracas Bay, Peru. En: Revista Peruana de Biología. 5, marzo, 2020. vol. 27, no. 1spa
dc.relation.referencesMARIYA V, et al. Biomedical and pharmacological significance of marine macro algaereview. Indian J Geo-Mar Sci. 2013, vol. 42, nro. 5, p. 527–537spa
dc.relation.referencesMARTÍNEZ, N., et al. Antibiotic Propertiesof Marine Algae. III. Cymopolia barbata. De Gruyter. 1996, vol. 9, nro. 1., pp. 21-26spa
dc.relation.referencesMARTINS, A. La biodiversidad puede ser el oro verde de Colombia, pero cuando nos demos cuenta podría ser demasiado tarde. En: BBC News Mundo [Internet]. 2021spa
dc.relation.referencesMAYER, AMS, et al.; Marine pharmacology in 2007–8: Marine compounds with antibacterial, anticoagulant, antifungal, anti-inflammatory, antimalarial, antiprotozoal, antituberculosis, and antiviral activities; affecting the immune and nervous system, and other miscellaneous mechanisms of action. Comp Biochem Physiol Part C Toxicol Pharmacol. 2011, Vol. 153, nro. 2, pp.191–222spa
dc.relation.referencesMEHRA, Richa, et al. Caulerpa taxifolia inhibits cell proliferation and induces oxidative stress in breast cancer cells. En: Biologia. 20, noviembre, 2018. vol. 74, no. 2spa
dc.relation.referencesMINISTERIO DE AMBIENTE Y DESARROLLO SOSTENIBLE. Colombia, el segundo país más biodiverso del mundo, celebra el Día Mundial de la Bio-diversidad | Ministerio de Ambiente y Desarrollo Sostenible [Internet]. 2019 [cited 2021 Aug 17]. Available from: https://www.minambiente.gov.co/index.php/noticias/4317-colombia-el-segundo-pais-masbiodiverso-del-mundo-celebra-el-dia-mundial-de-la-biodiversidadspa
dc.relation.referencesNEWMAN, D. y CRAGG, G. Natural products as sources of new drugs over the 30 years from 1981 to 2010. Jour of Nat Products. 2012, vol. 75, nro. 3, pp. 311–335spa
dc.relation.referencesO’SULLIVAN, L., et al.; Prebiotics from Marine Macroalgae for Human and Animal Health Applications. Mar Drugs. 2010, vol. 8, nro. 7, pp. 2038-2064spa
dc.relation.referencesOCHOA, M. y, AYALA, A. Los Flavonoides: Apuntes Generales y su Aplicación en la Industria de Alimentos. Ingeniería y Competitividad. 2004, vol. 6, nro. 2, pp. 64-67 https://revistaingenieria.univalle.edu.co/index.php/ingenieria_y_competitividad/article/view/ 2280spa
dc.relation.referencesOSUNA-RUIZ, I. et al. Gross chemical composition, fatty acids, sterols, and pigments in tropical seaweed species off Sinaloa, Mexico.Ciencias marinas.. 2019spa
dc.relation.referencesPANGESTUTI, R., et al. Nutritional value and biofuntionalities of two edible green seaweeds (Ulva lactuca and Caulerpa racemosa) from Indonesia by Subcritical Water Hydrolysis. Mar Drugs. 2021, vol. 19, nro.10, p. 578spa
dc.relation.referencesPALLELA, R, et al.; Anti-photoaging and Photoprotective Compounds De-rived from Marine Organisms. Mar Drugs. 2010, vol. 8, nro. 4, pp. 1189-1202spa
dc.relation.referencesPAUL, V. Chemical defense in tropical green algae, order Caulerpales. Marine Ecology Progress Series. 1986, vol. 34, pp. 157-169spa
dc.relation.referencesEvidence for chemical defense in tropical green alga Caulerpa ashmeadii (Caulerpaceae: Chlorophyta): Isolation of new bioactive sesquiterpe-noids. Journal of Chemical Ecology.1987. Vol. 13, pp. 1171–1185spa
dc.relation.referencesPERALTA, Y. et al. Evaluation of alternatives for microalgae oil extraction based on exergy analysis. Applied Energy. 2013, vol. 101, nro. 1, pp. 226-236spa
dc.relation.referencesPÉREZ MJ, FALQUÉ E, DOMÍNGUEZ H. Antimicrobial action of compounds from marine seaweed. Mar Drugs. 2016;14(3):52. doi:10.3390/md14030052spa
dc.relation.referencesPIRIAN, K. et al. Proximate analysis of selected Macroalgal species from the Percian FGulf as a nutritional resource. Tropical Life Science Research. 2020, vol. 31, nro. 1spa
dc.relation.referencesPRATES, VÍTOR. Estudio fitoquímico con fines farmacológicos del alga bentónica Caulerpa racemosa. Tesis de Maestría. Paraíba, Brasil: Universidad Federal de Paraíba. Centro de Ciencias de Salud. Programa de Postgrados en productos naturales y sintéticos bioactivos. 2010spa
dc.relation.referencesPRESCOTT, B. Potential antimalarial agents. Derivatives of 2-chloro-1,4-naphthoquinone. Journal of Medical Chemistry. 1969, vol. 12, nro. 1, pp. 181 – 182spa
dc.relation.referencesRAO BV, BOOMINATHAN M. Antibacterial activity of silver nanoparticles of seaweeds. Am J Adv Drug De-livery. 2015; 3:296–307spa
dc.relation.referencesREBOURS, C., et al. Seaweeds: an opportunity for wealth and sustainable livelihood for coastal communities. Journal of Applied Phycology. 2014, vol. 26, nro. 5, pp.1939–1951spa
dc.relation.referencesRIBEIRO, Natássia Albuquerque, et al. Sulfated polysaccharide from the green marine algae Caulerpa race-mosa reduces experimental pain in the rat temporomandibular joint. En: International Journal of Biological Mac-romolecules Mayo, 2020. vol. 150, p. 253-260. ISSN 0141-8130spa
dc.relation.referencesRICÓN, M. y GABIO, B. Diversidad de Macroalgas Marinas del Caribe colombiano [Internet]. 2020. Disponible en: https://ipt.biodiversidad.co/sibm/resource.do?r=macroalgas_caribe_colombiaspa
dc.relation.referencesROBLES, A., et al. Downstream processing of algal polyunsaturated fatty acids. Biotechnology Advances. 1998, vol. 16, nro. 3, pp. 517-528 viejospa
dc.relation.referencesRODRIGUES, J., et al. In vitro inactivation of thrombin generation by polysulfated fractions isolated from the tropical coenocytic green seaweed Caulerpa racemosa (Caulerpaceae, Bryopsidales). Acta Sci Biol Sci. 2017, vol. 39, nro. 3spa
dc.relation.referencesRODRIGUES, J., et al. An antithrombin-dependent sulfated polysaccharide isolated from the green alga Caulerpa cupressoides has in vivo anti- and prothrombotic effects. En: Ciência Rural. Abril, 2011. vol. 41, no. 4spa
dc.relation.referencesRUSHDI, M., et al. A review on the diversity, chemical and pharmacological potential of the green algae genus Caulerpa. South African Journal of Botany. 2020, vol. 132, pp. 226–241spa
dc.relation.referencesSÁNCHEZ, E., et al. Biodiesel from microalgae oil production in two sequential esterification/transesterification reactors: Pinch analysis of heat integration.Chemical EEngineering Journal. 2011, vol. 176, nro. 1, pp. 211-216 https://www.sciencedirect.com/science/article/abs/pii/S1385894711008266spa
dc.relation.referencesSAUNDERS, G., y KUCERA, H. An evaluation of rbcL,tufA, UPA, LSU, and ITS as DNA barcode markers for the marine green macroalgae. Cryptogamie, Algologie. 2010, vol. 31, nro. 4, pp. 487-528spa
dc.relation.referencesSFECCI, E., et al. Caulerpenyne from Caulerpa taxifolia: A comparative study between CPC and classical chromatographic techniques. Phytochemestry letters. 2017, vol. 20, nro. 1, p. 406-409spa
dc.relation.referencesSHARMA, Y.C. y SINGH, B. Development of biodisel: Current scenario. Renewable and Sustainable Energy Reviews. 2009, vol. 13, nro. 6, pp. 1646-1651spa
dc.relation.referencesSHIBU A, DHANAM D. Phytochemical Screening of Caulerpa recemosa Collected From Gulf of Mannar, Tamil Nadu. Asian J Biochem Pharm Res. 1 de enero de 2015;3spa
dc.relation.referencesSILVA, G.C, et al. Antibacterial and cytotoxicity activity in macroalgae extracts: Perspectives for the use against pathogenic bacteria from shrimp farms (Litopenaeus vannamei). En: Acta Scientiarum - Biological Sci-ences. 2018. vol. 40, no. 1. ISSN 16799283spa
dc.relation.referencesSILVA, PC. Historical overview of the genus Caulerpa. Cryptogam Algol. 1 de marzo de 2003; 24:33-50spa
dc.relation.referencesSIMATUPANG, M. H., HAUSEN, B. M. J. Cromatog. 1970. 52, 180spa
dc.relation.referencesSOUZA, C., et al. Marine Alkaloids with Anti-Inflammatory Activity: Current Knowledge and Future Perspectives. Marine Drugs. 2020, vol. 18, nro. 3, p. 147spa
dc.relation.referencesSRINORASING, T. et al. Lipid Extracts from Caulerpa lentillifera Waste: An Alternative Product in a Circular Economy. Sustainability. 2021, vol. 13, nro. 8spa
dc.relation.referencesSUN, Y., et al. Anti-inflammatory activity and structural identification of a sulfated polysaccharide CLGP4 from Caulerpa lentillifera. Int J Biol Macromol. 2020, vol 146, no. 1, p. 931-938spa
dc.relation.referencesPurification, structural features and immunostimulatory activity of novel polysaccharides from Caulerpa lentillifera. Int J Biol Macromol. 2018, vol 108. p. 314-323spa
dc.relation.referencesCaulerpa lentilliferapolysaccharides enhance the immunostimulatory activity in immuno-suppressed mice in correlation with modulating gut microbiota. En: Food & Function. 2019. vol. 10, no. 7spa
dc.relation.referencesSUREDA, A., et al. Enzymatic antioxidant response of a labrid fish (Coris julis) liver to environmental caulerpenyne. CBP Toxicology and Pharmacology. 2006, vol. 1, nro. 2, pp. 191-196spa
dc.relation.referencesSVEDELIUS, N. Ecological and systematic studies of the Ceylon species of Cau-lerpa. 1906spa
dc.relation.referencesSYNYTSYA, A., et al. Cell Wall Polysaccharides of Marine Algae. Springer Handbook of Marine Biotechnology. 2015, pp. 543–590spa
dc.relation.referencesT.M. ABREU, L.M.C.M. SILVA, E.S.O. VANDERLEI, C.M.L. MELO, V.R.A. PEREIRA, N.M.B. BENEVIDES, Cytokine production induced by marine algae lectins in BALB/c mice splenocytes, Protein Pept. Lett. 19 (2012) 975–981spa
dc.relation.referencesAntinociceptive and antiinflammatory activities of the lectin from marine red alga Solieria filiformis, Planta Med. 82 (2016)spa
dc.relation.referencesTANDON, V., et al. Design, synthesis and evaluation of novel 1,4-naphthoquinone derivatives as antifungal and anticancer agents. Bioorg Med Chem Lett. 2004, vol. 14, nro. 5, pp. 1079-1083 https://pubmed.ncbi.nlm.nih.gov/14980639spa
dc.relation.referencesSynthesis and biological evaluation of novel 1,4-naphthoquinone derivatives as antibacterial and antiviral agents. Bioorg Med Chem Lett. 2005, vol. 15, nro. 14, pp. 3463- 3466spa
dc.relation.referencesUKABI, S., et al. Molecular authentication of Caulerpa Chlorophyta species along the eastern Israeli Mediterranean shores. Botanica marina. 2014, vol. 57, nro. 1, pp. 67-71spa
dc.relation.referencesTANNA, Bhakti; YADAV, Sonam y MISHRA, Avinash. Anti-proliferative and ROS-inhibitory activities reveal the anticancer potential of Caulerpa species. En: Molecular Biology Reports. 29, septiembre, 2020. vol. 47, no. 10spa
dc.relation.referencesTECH Colombia Universidad Tecnológica Colombia. Taninos, quinonas y su aplicación. 2021. Recuperado, de https://www.techtitute.com/co/farmacia/blog/taninos-quinonasaplicacionspa
dc.relation.referencesTHEOPHANIDES, T. Introduction to Infrared Spectroscopy. En: Infrared Spectroscopy – Materials Science, Engineering and Technology; InTech. 2012, pp. 1-9spa
dc.relation.referencesTHOMPSON, R.T. Naturally Occurring Quinones. Adacemic Press. 1971. Nueva Yorkspa
dc.relation.referencesTIAN, Hua, et al. Polysaccharide from Caulerpa lentillifera: extraction optimization with response surface methodology, structure and antioxidant activities. En: Natural Product Research. 12, diciembre, 2019. p. 1-9spa
dc.relation.referencesVIDOTTI, E., y ROLLEMBERG. ALGAS: DA ECONOMIA NOS AMBIENTES AQUÁTICOS À BIOREMEDIAÇÃO E À QUÍMICA ANALÍTICA. Química nova. 2004, vol, 27, nro. 1, pp. 139 – 145spa
dc.relation.referencesVITTHAL WAGHMODE ET AL., Ahilya. Antioxidant, Antimicrobial and Cytotoxic activity of Some Common Seaweed along West Coast of Maharashtra. En: Egyptian Journal of Aquatic Biology and Fisheries. 1, diciem-bre, 2021. vol. 25, no. 6, p. 129-143spa
dc.relation.referencesVO, T-S., et al. Marine algae as a potential pharmaceutical source for anti-allergic therapeutics. Process Biochemistry. 2012, vol. 47, nro. 3, pp. 386–394spa
dc.relation.referencesWEISSFLOG, I., et al. Raman spectroscopic insights into the chemical gra-dients within the wound plug of the green alga Caulerpa taxifolia. Chembi-ochem. 2013, vol. 14, nro. 6, pp. 727–732spa
dc.relation.referencesWEITING, L., et al. Synthesis and Preclinical Evaluations of 2-(2-Fluorophenyl)-6,7- methylenedioxyquinolin-4-one Monosodium Phosphate (CHM1−PNa) as a Potent Antitumor Agent. Journal of Medicinal Chemistry. 2010, vol. 53, nro. 4, pp. 1616-1626spa
dc.relation.referencesWELLS, M. et al. Algae as nutritional and functional food sources: revisiting our understanding. Journal of Applied Phycology. 2017, vol. 29, nro. 2, pp. 949–982spa
dc.relation.referencesWU, Yulin, et al. A new polysaccharide from Caulerpa chemnitzia induces molecular shifts of immunomodula-tion on macrophages RAW264.7. Food chemestry:X. 2022, vol. 14, nro. 30spa
dc.relation.referencesYAP, Wing-Fai, et al. Decoding Antioxidant and Antibacterial Potentials of Malaysian Green Seaweeds: Caulerpa racemosa and Caulerpa lentillifera. En: Antibiotics. 17, septiembre, 2019. vol. 8, no. 3spa
dc.relation.referencesYENGKHOM, Omita, et al. Stimulation of non-specific immunity, gene expression, and disease resistance in Nile Tilapia, Oreochromis niloticus (Linnaeus, 1758), by the mspa
dc.relation.referencesYIYI, Hu, et al. Anti-endotoxin and anti-inflamatory effects of Chinese herbal medicinal alkaloid ingredients in vivo. Microbial Pathogenesis. 2016, vol. 99, nro. 1, pp. 51-55spa
dc.relation.referencesZAINUDDIN, Elmi Nurhaidah, et al. Antibacterial activity of Caulerpa racemosa against pathogenic bacteria promoting “ice-ice” disease in the red alga Gracilaria verrucosa. En: Journal of Applied Phycology 4, mayo, 2019. vol. 31, no. 5spa
dc.relation.referencesZUBIA M, DRAISMA SGA, MORRISSEY KL, VARELA-ÁLVAREZ E, DE CLERCK O. Concise review of the genus Caulerpa J.V. Lamouroux. J Appl Phycol. febrero de 2020;32(1):23-39spa
dc.relation.referencesZUCCARELLO, G. y PAUL, N. A begginer’s guide to molecular identification of seaweed. Squalen Bull. of Mar. and Fish. Postharvest and Biotech. 2019, vol. 14, nro. 1, pp. 43-53spa
dc.rights.accessrightsinfo:eu-repo/semantics/openAccessspa
dc.rights.coarhttp://purl.org/coar/access_right/c_abf2spa
dc.rights.licenseAtribución-NoComercial-SinDerivadas 2.5 Colombiaspa
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/2.5/co/spa
dc.subjectCaulerpaspa
dc.subjectFitoquímicosspa
dc.subjectMetabolitos secundariosspa
dc.subjectActividad biológicaspa
dc.subjectBioprospecciónspa
dc.subject.lembBiotecnología marinaspa
dc.subject.lembAlgas marinasspa
dc.subject.lembIndustria farmacéuticaspa
dc.subject.lembBúsqueda bibliográficaspa
dc.subject.subjectenglishCaulerpaspa
dc.subject.subjectenglishPhytochemicalspa
dc.subject.subjectenglishSecondary metabolitesspa
dc.subject.subjectenglishBiological activityspa
dc.subject.subjectenglishBioprospectionspa
dc.titleRevisión exploratoria de la composición fitoquímica y las actividades biológicas asociadas de varias especies del género caulerpa y su potencial en la industria farmacéuticaspa
dc.type.coarhttp://purl.org/coar/resource_type/c_7a1fspa
dc.type.driverinfo:eu-repo/semantics/bachelorThesisspa
dc.type.hasversioninfo:eu-repo/semantics/acceptedVersionspa
dc.type.localTesis de Pregradospa

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