Estructura del manglar y su influencia en el almacén de carbono en la Reserva La Encrucijada, Chiapas, México

  1. Velázquez-Pérez, Carolina 1
  2. Tovilla-Hernández, Cristian 1
  3. Romero-Berny, Emilio I. 2
  4. De Jesús-Navarrete, Alberto 1
  1. 1 El Colegio de la Frontera Sur
    info

    El Colegio de la Frontera Sur

    Villahermosa, México

  2. 2 Universidad de Ciencias y Artes de Chiapas
    info

    Universidad de Ciencias y Artes de Chiapas

    Tuxtla Gtz, México

    ROR https://ror.org/01gxfn525

Journal:
Madera y bosques

ISSN: 2448-7597 1405-0471

Year of publication: 2019

Volume: 25

Issue: 3

Type: Article

DOI: 10.21829/MYB.2019.2531885 DIALNET GOOGLE SCHOLAR lock_openDialnet editor

More publications in: Madera y bosques

Sustainable development goals

Abstract

Mangroves have been considered as an important carbon storage, and in general, exceeding the carbon content of terrestrial forests. Even when mangrove aerial carbon sequestration has been studied in several regions of Mexico, the information at the Pacific coast is lacking. The aim of this work was to characterize the structure of riverine mangroves in order to determine height, coverage, DBH and to estimate the complexity and importance value indexes, as well to relate it with the carbon storage, in 32 circular sampling units (400 m2) at La Encrucijada Reserve, Chiapas. The carbon content was quantified according allometric equations for Neotropical mangrove species, with high structural development and we used a biomass to carbon conversion factor of 0.48. The influence of the interstitial sediment parameters (pH, salinity, temperature) on the stored carbon was determined using an analysis of variance and covariance. Mangrove density was 2103 ind ha-1, the tree mean height was 12 m; basal area, 18.7 m2 ha-1; coverage, 9.9 m2 and DAP, 8.4 cm. A complexity index of 40.1 was recorded; the order of importance of the species was Rhizophora mangle / Avicennia germinans / Laguncularia racemosa. The carbon store was 87.0 Mg ha-1. Structural parameters showed a high correlation (R = 1.00, 0.94 and 0.84) with the mangrove biomass. In function of this structure, this ecosystem was classified as a successional stage of intermediate community with a high structural complexity.

Bibliographic References

  • Adame, M. F., Kauffman, J. B., Medina, I., Gamboa, J. N., Torres, O., Caamal, J. P., … Herrera-Silveira, J. A. (2013). Carbon Stocks of Tropical Coastal Wetlands within the Karstic Landscape of the Mexican Caribbean. PLoS ONE, 8(2), e56569. doi.org/10.1371/journal.pone.0056569.
  • Adame, M. F., Kauffman, J. B., Medina, I., Gamboa, J. N., Torres, O., Caamal, J. P., Reza, M., & Herrera-Silveira, J. A. (2013). Carbon Stocks of Tropical Coastal Wetlands within the Karstic Landscape of the Mexican Caribbean. PLOS ONE, 8(2), e56569. doi: : 10.1371/journal.pone.0056569
  • Adame, M., Santini, N., Tovilla, C., Vázquez-Lule, A., Castro, L., & Guevara, M. (2015). Carbon stocks and soil sequestration rates of tropical riverine wetlands. Biogeosciences, 12, 3805–3818. doi: : 10.5194/bg-12-3805-2015
  • Agraz-Hernández, C. M., García, Z. C., Iriarte-Vivar, S., Flores-Verdugo, F. J., & Moreno-Casasola, P. (2011). Forest estructure, productivity and species phenology of mangroves in the La Mancha lagoon in the Atlantic coast of Mexico. Wetlands Ecology and Management, 19, 273–293. doi: 10.1007/s11273-011-9216-4
  • Alvis, G. J. F. (2009). Análisis estructural de un bosque natural localizado en zona rural del municipio de Popayán. Facultad de Ciencias Agropecuarias, 7(1), 116–122.
  • Anderson, T. W., & Darling, D. A. (1954). A Test of Goodness of Fit. Journal of Statistical Association, 49, 765-769.
  • Clements, F.E. (1916). Plant Succession: an analysis of development of Vegetation. Washington, DC: Carnegie Institution of Washington.
  • Cintrón-Molero, G. & Schaeffer-Novelli, Y. (1983). Introducción a la ecología del manglar. Montevideo: UNESCO/ROSTLAC.
  • Cintrón-Molero, G. & Schaeffer-Novelli, Y. (1984). Methods for studying mangrove structure. En S. C. Snedaker, J. & J. G. Snedaker (Eds.), The mangrove ecosystem: Research methods (pp. 91–113). París, Francia: Unesco.
  • Corella, J. F., Valdez, H. J. I., Cetina, A. V. M., González, C. F. V., Trinidad, S. A., & Aguirre, R. J. R. (2004). Estructura forestal de un bosque de mangles en el noreste del estado de Tabasco. Ciencia Forestal en México, 26(90), 73-102.
  • Curtis, J. T. & McIntosh, R. P. (1951). An upland forest continuum in the prairie-forest border region of Wisconsin. Ecology, 32(3), 476–496. doi: 10.2307/1931725.
  • Day, J. W., Conner, W. H., Ley-Lou, F., Day, R. H., & Navarro, A. M. (1987). The productivity and composition of mangrove forests, Laguna de Términos, México. Aquatic Botany, 27, 267–284.
  • Dominguez-Cadena, R., Riosmena-Rodriguez, R., & Leon-de la Luz, J. L. (2016). Forest Structure and Species Composition of Mangroves in the Eastern Baja California Peninsula: The Role of Microtopography. Wetlands, 36, 515-523. doi: 10.1007/s13157-016-9.
  • Donato, D. C., Kauffman, J. B., Murdiyarso, D., Kurnianto, S., Stidham M., & Kanninen, M. (2011). Mangroves among the most carbon-rich forests in the tropics. Nature Geoscience, 4, 293–297. doi: 10.1038/NGEO1123
  • Fischer, G., Torres, C. F., & Torres, B. J. (1995). Efecto de la temperatura del suelo sobre la planta 1. Crecimiento y desarrollo. Revista Comalfi, 3, 78-92.
  • Fromard, F., Puig, H., Mougin, E., Marty, G., Betoulle, J., & Cadamuro, L. (1998). Structure, above groundbiomass and dynamics of mangrove ecosystems: new data from French Guiana. Oecología, 115, 39–53.
  • Fu, W. & Wu, Y. (2011). Estimation of aboveground biomass of different mangrove trees based on canopy diameter and tree height. Procedia Environmental Sciences, 10, 2189-2194. doi: 10.1016/j.proenv.2011.09.343
  • Gadow, K. V., Sánchez, O. S., & Álvarez J. G. (2007). Estructura y crecimiento del bosque. Alemania: Universidad de Göttingen.
  • García, E. (1973). Modificación al sistema de clasificación climática de Köppen. México: Instituto de Geografía, Universidad Nacional Autónoma de México.
  • Herrera-Silveira, J. A., Camacho-Rico, A., Pech, E., Pech, M., Ramírez-Ramírez, R. J., & Teutli-Hernández, C. (2016). Dinámica del carbono (almacenes y flujos) en manglares de México. Terra Latinoamericana, 34(1), 61-72.
  • Holdridge, L. R. (1967). Life zone ecology. San José, Costa Rica: Tropical Science Center.
  • Hossain, M.D., & Nuriddin, A. A. (2016). Soil and Mangrove: A review. Journal of Environmental Science and Technology, 9, 198-207. doi: 10.3923/jest.2016.198.207
  • Instituto Nacional de Ecología [INE] (1999). Programa de manejo Reserva de la Biosfera La Encrucijada. México, D. F: INE.
  • Jiménez, J., Kramer, H., & Aguirre, O. (2002). Bestandesuntersuchungen in einmen ungleachaltrigen Tannen-, Douglasien-, Kiefern-Naturbestand Nordostmexikos. Allg Forst und Jagdzeitung, 173, 47–55.
  • Kauffman, B. J., Donato, D., & Adame, M. F. (2013). Protocolo para la medición, monitoreo y reporte de la estructura, biomasa y reservas de carbono de los manglares. Documento de Trabajo 117. Bogor, Indonesia: Cifor.
  • Kauffman, J. B., Heider, C., Norfolk, J., & Payton, F. (2014). Carbon stocks of intact mangroves and carbon emissions arising from their conversion in the Dominican Republic. Ecological Applications, 24(3), 518–527. doi: 10.1890/13-0640.1
  • Kauffman, J. B., Hernández, T. H., Jesús, G. M. C., Heider, C., & Contreras, W. M. (2016). Carbon stocks of mangroves and losses arising from their conversion to cattle pastures in the Pantanos de Centla, México. Wetlands Ecology and Management, 24, 203-216.
  • Laffoley, D. & Grimsditch, G. (2009). The management of natural coastal carbon sinks. Gland, Switzerland: IUCN.
  • Lara-Domínguez, A.L., Day Jr, J.W., Villalobos-Zapata, G., Twilley, R.R., Álvarez-Guillén, H., & Yañez-Arancibia, A. (2005). Structure of a unique inland mangrove forest assemblage in fossil lagoons in the Caribbean Coast of México. Wetlands Ecology and Management, 13(2), 111-122.
  • López, H. G., Vaides, E. E., & Alvarado, A. (2017). Evaluación de carbono fijado en la biomasa aérea de plantaciones de teca en Chahal, Alta Verapaz, Guatemala. Agronomía Costarricense, 42(1), 137-153.
  • López-Portillo, J. A. & Ezcurra, E. (1989). Response of three mangroves to salinity in two geoforms. Functional Ecology, 3, 35-361.
  • Lot-Helgueras, A., Vásquez-Yáñez, C., & Menéndez, F.L. (1975). Physigonomic and floristic changes near the northern limit of mangroves in the gulf coast of Mexico. En G. E. Walsh, S. C. Snedaker & H. T. Teas, (Eds.), Proceedings of the International Symposium on Biology and Management of Mangroves (pp. 52-64). Gainesville: Institute of Food and Agricultural Sciences/University of Florida.
  • Lovelock, C. E., Bennion, V., Grinham, A., & Cahoon, D. R. (2011). The role of surface and subsurface processes in keeping pace with sea level rise in intertidal wetlands of Moreton Bay, Queensland, Australia. Ecosystems, 14, 745–757.
  • Lugo, A. E., & Snedaker, S. C. (1974). The Ecology of Mangroves. Annual Review of Ecology and Systematics, 5, 39–64.
  • Olguín, M., Wayson, C., Kurz, W., Birdsey, R., Fellows, M., Maldonado, V., López-Merlín, D., Richardson, K., Angeles, G., Andrade, J.L., Arreola, J., Carrillo, O., Caamal, J.P., Dupuy, J.M., Esparza, L., Hernández, J.L., Mascorro, V., Méndez, M., Sánchez, G., Morfín, J., & Serrano, E. (2015). Hacia un enfoque Tier3 en paisajes estratégicos en México, modelos ecosistémicos y sitios de monitoreo intensivo del carbono. En XIV Congreso Forestal Mundial. Durban, Sudáfrica: XIV Congreso Forestal Mundial.
  • Penman, J., Gytarsky, M., Hiraishi, T., Krug, T., Kruger, D., Pipatti, R., Buendia, L., Miwa, K., Ngara, T., Tanabe, K., & Wagner, F., (Eds.). (2003). Good practice guidance for land use, land-use change, and forestry. Kanagawa, Japón: Institute for Global Environmental Strategies (IGES).
  • Pool, D., Snedaker, S., & Lugo, A. (1977). Structure of Mangrove Forests in Florida, Puerto Rico, México, and Costa Rica. Biotropica, 9, 195–212.
  • Rodríguez, L. R., Valencia, M. S., Meza, R. J., Capó, A. M. A., & Reynoso, P. A. (2008). Crecimiento y características de la copa de procedencias de Pinus greggii Englem. en Galeana, Nuevo León. Revista Fitotecnia Mexicana, 31(1), 19–26.
  • Romero-Berny, E. I., & Tovilla-Hernández, C. (2009). Estructura del manglar en el sistema lagunar costero de Carretas-Pereyra, reserva de la biósfera La Encrucijada, Chiapas, México. Lacandonia, Revista de Ciencias de la UNICACH, 3(1), 19-28.
  • R Core Team (2018). R: A language and environment for statistical computing. Vienna, Austria: R Foundation for Statistical Computing. Recuperado de https://www.R-project.org/.
  • Sánchez-Alférez, A.S., Álvarez-León, R., Godoy-Bueno, S., López, C., & Pinzón-Florián, C.P. (2009). Aspectos fitosanitarios de los manglares del Urabá Antioqueño, Caribe Colombiano. Pan-American Journal of Aquatic Research, 4(3), 339-346.
  • Smith, D. M., Larson, B. C., Kelty, M. J., & Ashton, P. M. S. (1997). The practice of silviculture: applied forest ecology. New York, USA: John Wiley & Sons, Inc.
  • Smith, T. J. (1992). Forest Structure. En A. I. Robertson & D. M. Alongi, (Eds.), Tropical Mangrove Ecosistems. Coastal and Estuarine Studies No. 41 (pp. 101–136). Washington. DC: American Geophysical Union.
  • Smith, T. J. & Whelan, K. R. T. (2006) Development of allometric relations for three mangrove species in South Florida for use in the Greater Everglades ecosystem restoration. Wetlands Ecology and Management, 14, 409–419.
  • Steubing, L., Godoy, R., & Aberdi, M. (2001). Métodos en ecología vegetal. Santiago, Chile: Editorial Universitaria.
  • Torres, R. J. & Magaña, T. M. O. (2001). Evaluación de plantaciones forestales. México, D. F: Limusa, Noriega Editores.
  • Tovilla-Hernández, C. & Romero-Berny, E. I. (2012). Diagnóstico estructural de los manglares de Chiapas y Oaxaca. En A. J. Sánchez , X. Chiappa-Carrara, & R. Brito-Perez, (Eds.), Recursos acuáticos costeros del sureste (pp. 257–279). Yucatan, México: UNAM/Concitey.
  • Tovilla-Hernández, C., Salas, R. R. L., Villatoro, A. E., Velázquez, P. C., Gutiérrez, H. M. E., López, F. K. P., de la Presa, P. J. C., Lang, R. A., Arreola, H. E., Peregrino, R. Birdsey, R., Olguín, M., Flores, R., & López, M. D. (2018). Establish a new intensive carbon monitoring site in La Encrucijada, Chiapas, México. Project No. 23071. Final Report. Tapachula, Chiapas, México: Ecosur-USDA.
  • Valderrama, L., Troche, C., Rodríguez, M. T., Márquez, D., Vázquez, B., Velázquez, S., Vázquez, A., Cruz, M. I., & Ressl, R. (2014). Evaluation of mangrove cover changes in México during the 1970-2005 Period. Wetlands, 34(4), 747–758. doi: 10.1007/s13157-014-0539-9
  • Valdez-Hernández, J. I. (2002). Aprovechamiento Forestal de manglares en el estado de Nayarit costa Pacífica de México. Madera y Bosques, 8(Núm. esp.), 129–145. doi: 10.21829/myb.2002.801296
  • Villalobos Z., G. J., Yáñez-Arancibia, A., Day, J. J. W., & Lara-Domínguez, A. L. (1999). Ecología y manejo de los manglares en la Laguna de Términos, Campeche, México. En A. Yáñez-Arancibia & A. L. Lara-Domínguez (Eds.), Ecosistemas de manglar en América Tropical (pp. 263-274). Veracruz, México: Instituto de Ecología, A.C.
  • Walsh, G. E. (1974). Mangroves forest: a review. En R. J. Reinold & W. H Queen (Eds.), Ecology of Halophytes (pp. 51–174). Nueva York, EE. UU: Academic Press.