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2009 | 31 | 5 |

Tytuł artykułu

In vitro propagation of two antidiabetic species known as guarumbo: Cecropia obtusifolia and Cecropia peltata

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
Two Cecropia species (Cecropia obtusifolia and C. peltata), known as guarumbo, are employed in Mexican traditional medicine to treat diabetes mellitus; the leaves of both species contain phenolic bioactive compounds such as chlorogenic acid (CA) and isoorientine (ISO), which have been attributed with hypoglycemic, hypolipidemic, and antioxidant properties. An in vitro propagation protocol was developed from existing apical bud meristem from C. obtusifolia seedlings; the shoot generation was induced on Murashige and Skoog (MS) medium supplemented with varying concentrations of 6-benzylaminopurine and kinetin (Kn) combined with either α-naphtalene acetic acid (NAA) or indole-3-acetic acid (IAA) auxins. Best morphogenetic response was developed with Kn 26.64 µM combined with either NAA or IAA 0.57 µM, respectively; likewise, C. peltata-seedling apical buds were subjected to these best selected treatments. Cecropia obtusifolia and C. peltata shoots were rooted in growth regulator-free half-strength MS medium, and regenerated whole plants were adapted successfully under greenhouse conditions and field. Leaves from both Cecropia-micropropagated plants produced the phenolic compounds CA and ISO, with highest concentrations in leaves from 18-month C. obtusifolia (12.28 ± 7.06 mg g⁻¹ dry leaves of CA and 8.30 ± 2.70 mg g⁻¹ dry leaves of ISO) growth in the field. Our results offer a protocol of apical-bud use for multiplication and curative-property conservation of the two previously mentioned important Mexican medicinal plants.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

31

Numer

5

Opis fizyczny

p.905-914,fig.,ref.

Twórcy

  • Laboratorios de Biotecnologia, Centro de Investigation Biomedica del Sur (CIBIS), Instituto Mexicano del Seguro Social (IMSS), Argentina No.1, Col. Centro, 62790 Xochitepec, Morelos, Mexico
  • Departamento de Biotecnologia, Universidad Autonoma Metropolitana-Iztapalapa (UAM-Iztapalapa), 09340 Mexico, DF, Mexico
  • Laboratorios de Biotecnologia, Centro de Investigation Biomedica del Sur (CIBIS), Instituto Mexicano del Seguro Social (IMSS), Argentina No.1, Col. Centro, 62790 Xochitepec, Morelos, Mexico
autor
  • Departamento de Biotecnologia, Universidad Autonoma Metropolitana-Iztapalapa (UAM-Iztapalapa), 09340 Mexico, DF, Mexico

Bibliografia

  • Adams R, Price S (1978) Seasonal variation in resource allocation of extractable compounds in Asclepias, Chrysothamnus and Grindelia. Biochem Syst Ecol 15:417–426. doi:10.1016/0305-1978 (87)90055-X
  • Aguilar A, Camacho JR, Chino S, Jácquez P, López ME (1994) Herbario Medicinal del Instituto Mexicano del Seguro Social. Instituto Mexicano del Seguro Social, México, p 142
  • Aguilar A, Camacho JR, Chino S, Jácquez P, López ME (1998) Plantas Medicinales del Herbario del IMSS, Su Distribución por Enfermedades. Instituto Mexicano del Seguro Social y Grupo Roche Syntex de México, México, p 40
  • Andrade-Cetto A, Wiedenfeld H (2001) Hypoglycemic effect of Cecropia obtusifolia on streptozotocin diabetic rats. J Ethnopharmacol 78:145–149. doi:10.1016/S0378-8741(01)00335-X
  • Argueta A, Cano L, Asselein L, Rodarte ME (1994) Atlas de las plantas de la medicina tradicional mexicana. Instituto Nacional Indigenista (INI) II., México, pp 706–707
  • Benavides JE (1994) Cecropia obtusifolia Bertol. Novi Commentarii Acad Instituti Bononiensis 4:189–193
  • Charlwood BV, Rhodes MJ (1990) Secondary products from plant tissue culture. Oxford University Press, New York, p 228
  • Fritz C, Palacios N, Fiel R, Stitt M (2006) Regulation of secondary metabolism by the carbon-nitrogen status in tobacco: nitrate inhibits large sectors of phenylpropanoid metabolism. Plant J 46:533–548. doi:10.1111/j.1365-313X.2006.02715.x
  • Goralka R, Langenheim J (1996) Implications of foliar monoterpenoid variation among ontogenic stages of the California bay tree (Umbellularia californica) for deer hebivory. Biochem Syst Ecol 24:13–23. doi:10.1016/0305-1978(95)00093-3
  • Gutiérrez-Domínguez MA, Betancourt-Aguilar Y (2008) El mercado de plantas medicinales en México: situación actual y perspectivas de desarrollo. http://www.geocities.com/redmexicana/ colombia.doc (accessed July 2008)
  • Herrera-Arellano A, Aguilar-Santamaría L, García-Hernández B, Nicasio-Torres P, Tortoriello J (2004) Clinical trial of Cecropia obtusifolia and Marrubium vulgare leaf extracts on blood glucose and serum lipids in type 2 diabetics. Phytomedicine 11:561–566. doi:10.1016/j.phymed.2004.01.006
  • Jawahar M, Amalan Rabert G, Jeyasseelan M (2004) Rapid proliferation of multiple shoots in Solanum trilobatum L. Plant Tissue Cult 14(2):107–112
  • Jha S, Jha TB (1989) Micropropagation of Cephaelis epecacuanha Rich. Plant Cell Rep 8:437–439. doi:10.1007/BF00269043
  • Ko FN, Chu CC, Lin CN, Chang CC, Teng CM (1998) Isoorientin-6’’-O-glucoside, a water-soluble antioxidant isolated from Gentiana arisanensis. BBA 1389:81–90
  • La Pierre LM (2001) Vegetative propagation of Cecropia obtusifolia (Cecropiaceae). Rev Biol Trop 49:973–976
  • Lal N, Singh Ahuja P, Kumar Kukreja A, Pandey B (1988) Clonal propagation of Picrorhiza kurroa Royle ex Benth by shoot tip culture. Plant Cell Rep 7:2002–2005. doi:10.1007/BF00269324
  • Manohar-Nalawade S, His-Sheng T (2004) In vitro propagation of some important Chinese medicinal plants and their sustainable usage. In Vitro Cell Dev Biol Plant 40(2):143–154. doi: 10.1079/IVP2003504
  • McNally DJ, Wurms KV, Labbé C, Quideau S, Bélanger RR (2003) Complex C-glycosyl flavonoid phytoalexins from Cucumis sativus. J Nat Prod 66:1280–1283. doi:10.1021/np030150y
  • Mellado V, Lozoya M (1984) Effect of the aqueous extract of Cecropia obtusifolia on the blood sugar of normal and pancreatectomized dogs. Int J Crude Drug Res 22:11–16
  • Murashige T, Skoog F (1962) A revised medium for rapid growth and bioassay with tobacco tissue culture. Physiol Plant 15:473–497. doi:10.1111/j.1399-3054.1962.tb08052.x
  • Nicasio P, Aguilar-Santamaría L, Aranda E, Ortiz S, González M (2005) Hypoglycemic effect and chlorogenic acid content in two Cecropia species. Phytother Res 19:661–664. doi:10.1002/ptr.1722
  • Nugroho LH, Verporte R (2002) Secondary metabolism in tobacco. Plant Cell Tissue Organ Cult 68:105–125. doi:10.1023/A: 1013853909494
  • Pérez RM, Ocegueda A, Muñoz JL, Ávila JG, Morrow WW (1984) A study of the hypoglycemic effect of some Mexican plants. J Ethnopharmacol 12:253–262. doi:10.1016/0378-8741(84)90054-0
  • Rebolloza H (2000) Comportamiento de variables relacionadas con el déficit de agua en poblaciones criollas de Maíz (Zea mays L.). Tesis de Ingeniero en Producción Vegetal. Instituto Profesional de la Región Oriente. México. p 12
  • Revilla-Monsalve MC, Andrade-Cetto A, Palomino-Garibay MA, Wiedenfeld H, Islas-Andrade S (2007) Hypoglycemic effect of Cecropia obtusifolia Bertol aqueous extract on type 2 diabetic patients. J Ethnopharmacol 111:636–640. doi:10.1016/j.jep. 2007.01.014
  • Rodríguez de Sotillo DV, Hadley M (2002) Chlorogenic acid modifies plasma and liver concentrations of: cholesterol, triacylglycerol, and minerals in (fa/fa) Zucker rats. J Nutr Biochem 13:717–726. doi:10.1016/S0955-2863(02)00231-0
  • Román-Ramos R, Flores-Sáenz JL, Partida-Hernández G, Lara-Lemus A, Alarcón-Aguilar F (1991) Experimental study of the hypoglycemic effect of some antidiabetic plants. Arch Invest Med (Mex) 22:87–93
  • Rout GR, Samantaray S, Das P (2000) In vitro manipulation and propagation of medicinal plants. Biotechnol Adv 18(2):91–120. doi:10.1016/S0734-9750(99)00026-9
  • Sezik E, Aslan M, Yesilada E, Ito S (2005) Hypoglycaemic activity of Gentiana oliveri and isolation of the active constituent through bioassay-directed fractionation techniques. Life Sci 76:1223–1238. doi:10.1016/j.lfs.2004.07.024
  • Sharma N, Chandel KPS, Srivastava VK (1991) In vitro propagation of Coleus forskohlii Briq., a threatened medicinal plant. Plant Cell Rep 10:67–70. doi:10.1007/BF00236459
  • Shudha G, Ravishanka GA (2002) Involvement and interaction of various signalling compounds on the plant metabolic events during defense response, resistance to stress factors, formation of secondary metabolites and their molecular aspects. Plant Cell Tissue Organ Cult 71:181–212. doi:10.1023/A:1020336626361
  • NCSS (2001) NCSS-Number Cruncher Statistical Software. Kaysville, Utah
  • Villarreal ML, Rojas G (1996) In vitro propagation of Mimosa tenuiflora (Willd) Poiret, a Mexican medicinal tree. Plant Cell Rep 16:80–82. doi:10.1007/BF01275455
  • Vincent KA, Mary Mathew K, Harihainran M (1992) Micropropagation of Kaemferia galanga L., a medicinal plant. Plant Cell Tissue Organ Cult 28:229–230. doi:10.1007/BF00055522
  • Yoeup-Paek K, Chandler ISF, Thorpe TA (1987) Micropropagation of Raphanus sativus L. var. longipinnatus (Japanese radish) cv. Gungjung. Plant Cell Tissue Organ Cult 9:156–165
  • Yu TA, Yeh SD, Cheng YH, Yang JS (2000) Efficient rooting for establishment of papaya plantlets by micropropagation. Plant Cell Tissue Organ Cult 61(1):29–35. doi:10.1023/A:1006475901439

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