Frekuensi Kehadiran Arthropoda pada Media Dekomposisi Pelepah Nipah (Nypa fruticans) di Kawasan Mangrove Sungai Kakap Kalimantan Barat
DOI:
https://doi.org/10.33394/bioscientist.v13i2.14651Keywords:
Nypa fruticans, allorchestoides, dekomposer, kandungan organik totalAbstract
This study aimed to determine the frequency of Arthropod occurrence at each stage of decomposition and to assess its relationship with environmental parameters in the mangrove area of Sungai Kakap. Arthropod sampling was conducted using the hand-collecting method on days 15, 25, 35, and 45 after substrate placement. A total of 24 fronds were randomly positioned vertically at a depth of 20 cm below the soil surface, with six replication across four time-based observation points. Arthropod eggs, larvae, pupae, and imago were collected, sorted, and preserved in 70% alcohol. Specimens were identified directly through morphological observation, and the data obtained were analyzed descriptively. The results showed that the Relative Frequency (RF) of Arthropods consisted of 34 genera, dominated by Amphipoda (Allorchestoides: 75% FR) and Diptera (Bactrocera: 75% FR; Eristalinus: 100% FR; Psychoda: 100% FR). An RF of 100% indicates that these genera were consistently present across all observation points and time periods, suggesting their potentially important role in the decomposition process. Variations in Arthropod presence among genera reflect changes in composition at each decomposition stage. These changes were influenced by environmental conditions, particularly salinity, pH, temperature, as well as organic carbon and nitrogen levels. These findings indicate that certain Arthropods have the potential to serve as biological indicators of decomposition stages in mangrove ecosystems. Further research is recommended to investigate microbial dynamics and changes in organic content throughout the decomposition process.References
Adler, P. H., & Courtney, G. W. (2019). Ecological and Societal Services of Aquatic Diptera. Insects, 10(3), 70. https://doi.org/10.3390/insects10030070
Andriany, A., Fahruddin, F., & Abdullah, A. (2018). Pengaruh Jenis Bioaktivator Terhadap Laju Dekomposisi Seresah Daun Jati Tectona grandis L.f., DI Wilayah Kampus UNHAS Tamalanrea. Bioma : jurnal biologi makassar, 3(2). https://doi.org/10.20956/bioma.v3i2.5820
Arce-Funck, J., Crenier, C., Danger, M., Billoir, E., Usseglio-Polatera, P., & Felten, V. (2018). High stoichiometric food quality increases moulting organism vulnerability to pollutant impacts: An experimental test with Gammarus fossarum (Crustacea: Amphipoda). Science of The Total Environment, 645, 1484–1495. https://doi.org/10.1016/j.scitotenv.2018.07.227
Argiantini, N. P. W., Perwira, I. Y., & Ernawati, N. M. (2021). Perbandingan Jumlah Bakteri pada Sedimen Mangrove di Ekosistem Mangrove Rehabilitasi dan Alami di Desa Perancak, Jembrana, Bali. Current Trends in Aquatic Science, 4(1), 63–68.
Azmiera, N., Low, V. L., & Heo, C. C. (2021). Colonization of Rabbit Carcasses by Drain Fly Larvae, Psychoda sp. (Diptera: Psychodidae): The First Report. Acta Parasitologica, 66(2), 706–709. https://doi.org/10.1007/s11686-020-00313-z
Balloo, N., & Appadoo, C. (2017). Effect of acidified seawater and high temperature on the survival and behaviour of supralittoral and sublittoral amphipods (Crustacea). Western Indian Ocean Journal of Marine Science, 16(2), 1–11.
Bar-Shmuel, N., Behar, A., & Segoli, M. (2020). What do we know about biological nitrogen fixation in insects? Evidence and implications for the insect and the ecosystem. Insect Science, 27(3), 392–403. https://doi.org/10.1111/1744-7917.12697
Campoy, A., Pérezâ€Bañón, C., & Rojo, S. (2020). Intraâ€puparial development in the hoverflies Eristalinus aeneus and Eristalis tenax (Diptera: Syrphidae). Journal of Morphology, 281(11), 1436–1445. https://doi.org/10.1002/jmor.21257
Castiglioni, D. D. S., & Bondâ€Buckup, G. (2007). Reproductive strategies of two sympatric species of Hyalella Smith, 1874 (Amphipoda, Dogielinotidae) in laboratory conditions. Journal of Natural History, 41(25–28), 1571–1584. https://doi.org/10.1080/00222930701464604
Chen, Q., Li, J., Zhao, Q., Jian, S., & Ren, H. (2018). Changes in the benthic protozoan community during succession of a mangrove ecosystem in Zhanjiang, China. Ecosphere, 9(4). https://doi.org/10.1002/ecs2.2190
Devianti, O. K. A., Tjahjaningrum, I. T. D., & Trisnawati Dwi Tjahjaningrum, I. (2017). Studi Laju Dekomposisi Serasah Pada Hutan Pinus di Kawasan Wisata Taman Safari Indonesia II Jawa Timur. Jurnal Sains Dan Seni ITS, 6(2). https://doi.org/10.12962/j23373520.v6i2.27535
Dewi, M. N., Guntama, D., Perdana, R., & Fauzan, M. (2022). Pengaruh Waktu Fermentasi dan pH Terhadap Kandungan Nitrogen, Kalium, dan Fosfor dalam Pupuk Cair Organik Dari Limbah Kulit Pisang (Musa paradisiacal). Jurnal Ilmiah Teknik Kimia, 6(1), 27. https://doi.org/10.32493/jitk.v6i1.14667
Friesen, S. D., Dunn, C., & Freeman, C. (2018). Decomposition as a regulator of carbon accretion in mangroves: a review. Ecological Engineering, 114, 173–178. https://doi.org/10.1016/j.ecoleng.2017.06.069
Frouz, J. (2018). Effects of soil macro- and mesofauna on litter decomposition and soil organic matter stabilization. Geoderma, 332, 161–172. https://doi.org/10.1016/j.geoderma.2017.08.039
Gibb, T. J., & Oseto, C. Y. (2006). Arthropod Collection and Identification: Laboratory and Field Techniques. Elsevier Science. https://books.google.co.id/books?id=y1gq2EraKIQC
Gómez, M., Barreiro, F., López, J., & Lastra, M. (2018). Effect of upper beach macrofauna on nutrient cycling of sandy beaches: metabolic rates during wrack decay. Marine Biology, 165(8), 133. https://doi.org/10.1007/s00227-018-3392-1
Habibullah. (2023). Ekologi Arthropoda Pada Bekas Sarang Orangutan Sumatera (Pongo abelii) Di Taman Nasional Gunung Leuser Resort Sei Betung Kecamatan Besitang Kabupaten Langkat, Sumatera Utara. Agroprimatech, 6(2).
Hasibuan, I. M., Amelia, R., Bimantara, Y., Susetya, I. E., Susilowati, A., & Basyuni, M. (2021). Vegetation and macrozoobenthos diversity in the Percut Sei Tuan mangrove forest, North Sumatra, Indonesia. Biodiversitas Journal of Biological Diversity, 22(12). https://doi.org/10.13057/biodiv/d221245
Innocenti Degli, E., Defeo, O., & Scapini, F. (2021). Arthropodofauna richness and abundance across beach–dune systems with contrasting morphodynamics. Regional Studies in Marine Science, 44, 101722. https://doi.org/10.1016/j.rsma.2021.101722
Joly, F.-X., Coq, S., Coulis, M., David, J.-F., Hättenschwiler, S., Mueller, C. W., Prater, I., & Subke, J.-A. (2020). Detritivore conversion of litter into faeces accelerates organic matter turnover. Communications Biology, 3(1), 660. https://doi.org/10.1038/s42003-020-01392-4
Junardi, J. (2008). Karakteristik_Morfologi_Dan_Habitat_Caci. Jurnal Sains MIPA, 14(2), 85–89.
Junardi, J., & Riyandi, R. (2020). Sintasan Dan Pertumbuhan Larva Cacing Nipah Namalycastis rhodochorde (Polychaeta: Nereididae) Pada Budidaya Dengan Dua Sumber Pakan Berbeda. Jurnal Akuakultur Rawa Indonesia, 8(2), 193–204. https://doi.org/10.36706/jari.v8i2.11715
Kauffman, J. B., Adame, M. F., Arifanti, V. B., Schileâ€Beers, L. M., Bernardino, A. F., Bhomia, R. K., Donato, D. C., Feller, I. C., Ferreira, T. O., Jesus Garcia, M. del C., MacKenzie, R. A., Megonigal, J. P., Murdiyarso, D., Simpson, L., & Hernández Trejo, H. (2020). Total ecosystem carbon stocks of mangroves across broad global environmental and physical gradients. Ecological Monographs, 90(2). https://doi.org/10.1002/ecm.1405
LeCroy, S. E., Richardson, J. S., & Cobb, D. (2000). An illustrated identification guide to the nearshore marine and estuarine gammaridean Amphipoda of Florida (Vol. 1). Florida Department of Environmental Protection, Division of Resource ….
Machado, G. B. O., Leite, F. P. P., & Sotka, E. E. (2018). Nutrition of marine mesograzers: integrating feeding behavior, nutrient intake and performance of an herbivorous amphipod. PeerJ, 6, e5929. https://doi.org/10.7717/peerj.5929
Montemayor, D. I., Canepuccia, A. D., Farina, J., Addino, M., Valiñas, M., & Iribarne, O. O. (2019). Effects of Spartina Wrack on Surface-Active Arthropod Assemblage Under Different Environmental Contexts in Southwest Atlantic Salt Marshes. Estuaries and Coasts, 42(4), 1104–1126. https://doi.org/10.1007/s12237-018-00509-7
Oliveira, C. M. R., Passos, R. R., Pratissoli, D., Holtz, A. M., & Rangel, O. J. P. (2021). Influence of nitrogen and potassium on tomato nutrition and resistance to Liriomyza sativae (Diptera: Agromyzidae) in greenhouse. Revista Brasileira de Ciências Agrárias - Brazilian Journal of Agricultural Sciences, 16(4), 1–8. https://doi.org/10.5039/agraria.v16i4a8830
Palit, K., Rath, S., Chatterjee, S., & Das, S. (2022). Microbial diversity and ecological interactions of microorganisms in the mangrove ecosystem: Threats, vulnerability, and adaptations. Environmental Science and Pollution Research, 29(22), 32467–32512. https://doi.org/10.1007/s11356-022-19048-7
Park, S., Ahn, I.-Y., Sin, E., Shim, J., & Kim, T. (2020). Ocean freshening and acidification differentially influence mortality and behavior of the Antarctic amphipod Gondogeneia antarctica. Marine Environmental Research, 154, 104847. https://doi.org/10.1016/j.marenvres.2019.104847
Podlesińska, W., & Dąbrowska, H. (2019). Amphipods in estuarine and marine quality assessment – a review. Oceanologia, 61(2), 179–196. https://doi.org/10.1016/j.oceano.2018.09.002
Rahadian, A., Prasetyo, L. B., Setiawan, Y., & Wikantika, K. (2019). A Historical Review of Data and Information of Indonesian Mangroves Area. Media Konservasi, 24(2), 163–178. https://doi.org/10.29244/medkon.24.2.163-178
Rozirwan, Nugroho, R. Y., Wulandari, P. I., Aryawati, R., Fauziyah, Putri, W. A. E., Agussalim, A., & Isnaini. (2022). Bacillariophyceae Distribution and Water Quality in Estuarine-Mangrove Environments: The Commonest Phytoplankton in Musi Estuary, Indonesia. Journal of Hunan University Natural Sciences, 49(12), 78–88. https://doi.org/10.55463/issn.1674-2974.49.12.8
Santonja, M., Pellan, L., & Piscart, C. (2018). Macroinvertebrate identity mediates the effects of litter quality and microbial conditioning on leaf litter recycling in temperate streams. Ecology and Evolution, 8(5), 2542–2553. https://doi.org/10.1002/ece3.3790
Sari, K. W., Yunasfi, Y., & Suryanti, A. (2017). Dekomposisi serasah daun mangrove Rhizophora apiculata di Desa Bagan Asahan, Kecamatan Tanjungbalai, Kabupaten Asahan, Provinsi Sumatera Utara. Acta Aquatica: Aquatic Sciences Journal, 4(2), 88. https://doi.org/10.29103/aa.v4i2.308
Shiau, Y.-J., & Chiu, C.-Y. (2020). Biogeochemical Processes of C and N in the Soil of Mangrove Forest Ecosystems. Forests, 11(5), 492. https://doi.org/10.3390/f11050492
Smith, K. G. (1989). An Introduction to the Immature Stages of British Flies: Diptera Larvae, with Notes on Eggs, Puparia and Pupae (Vol. 10). Royal Entomological Society.
Sousa, W. P., & Dangremond, E. M. (2011). Trophic Interactions in Coastal and Estuarine Mangrove Forest Ecosystems. In Treatise on Estuarine and Coastal Science (pp. 43–93). Elsevier. https://doi.org/10.1016/B978-0-12-374711-2.00606-9
Srilatha G, Chamundeeswari K, Mayavu P, & Varadharajan D. (2013). Study on Physico-Chemical Parameters in Different Mangrove Regions, Southeast Coast of India. Journal of Environmental & Analytical Toxicolog, 03(05). https://doi.org/10.4172/2161-0525.1000182
Stokland, J., Siitonen, J., & Jonsson, B. (2012). Biodiversity in Dead Wood. Cambridge University Press.
Sundermann, A., Lohse, S., Beck, L. A., & Haase, P. (2007). Key to the larval stages of aquatic true flies (Diptera), based on the operational taxa list for running waters in Germany. Annales de Limnologie - International Journal of Limnology, 43(1), 61–74. https://doi.org/10.1051/limn/2007028
Tagliaferro, M., DÃaz Villanueva, V., Wolinski, L., & Boy, C. C. (2021). Galled leaves as an improved resource for benthic detritivores. Aquatic Sciences, 83(4), 68. https://doi.org/10.1007/s00027-021-00826-3
Tamunaidu, P., & Saka, S. (2011). Chemical characterization of various parts of nipa palm (Nypa fruticans). Industrial Crops and Products, 34(3), 1423–1428. https://doi.org/10.1016/j.indcrop.2011.04.020
Thyssen, P. J. (2009). Keys for Identification of Immature Insects. In Current Concepts in Forensic Entomology (pp. 25–42). Springer Netherlands. https://doi.org/10.1007/978-1-4020-9684-6_2
Tie, L., Wei, S., Peñuelas, J., Sardans, J., Peguero, G., Zhou, S., Liu, X., Hu, J., & Huang, C. (2021). Phosphorus addition reverses the negative effect of nitrogen addition on soil arthropods during litter decomposition in a subtropical forest. Science of The Total Environment, 781, 146786. https://doi.org/10.1016/j.scitotenv.2021.146786
Vallabhbhai Patel, S., Prasad, C., Hasan Krishi Vigyan Kendra, W., & Hasan, W. (2018). Study on the biology and life cycle of cucurbit fruit fly, Bactrocera cucurbitae (Coquillett). ~ 223 ~ Journal of Pharmacognosy and Phytochemistry, 1, 223–226.
Wallace, J. B., Eggert, S. L., Meyer, J. L., & Webster, J. R. (2015). Stream invertebrate productivity linked to forest subsidies: 37 streamâ€years of reference and experimental data. Ecology, 96(5), 1213–1228. https://doi.org/10.1890/14-1589.1
Wongkamhaeng, K., Dumrongrojwattana, P., & Shin, M. (2018). Discovery of a new genus and species of dogielinotid amphipod (Crustacea: Amphipoda: Dogielinotidae) from the Nipa palm in Thailand, with an updated key to the genera. PLOS ONE, 13(10), e0204299. https://doi.org/10.1371/journal.pone.0204299
Zhai, J., Anderson, J. T., Yan, G., Cong, L., Wu, Y., Dai, L., Liu, J., & Zhang, Z. (2021). Decomposition and nutrient dynamics responses of plant litter to interactive effects of flooding and salinity in Yellow River Delta wetland in northeastern China. Ecological Indicators, 120, 106943. https://doi.org/10.1016/j.ecolind.2020.106943
Wongkamhaeng, K., Dumrongrojwattana, P., & Shin, M. H. (2018). Discovery of a New Genus and Species of Dogielinotid Amphipod (Crustacea: Amphipoda: Dogielinotidae) from the Nipa Palm in Thailand, with an Updated Key to the Genera. PLoS ONE, 13(10), 1-15.
Zhai, J., Anderson, J. T., Yan, G., Cong, L., Wu, Y., Dai, L., Liu, J., & Zhang, Z. (2021). Decomposition and Nutrient Dynamics Responses of Plant Litter to Interactive Effects of Flooding and Salinity in Yellow River Delta Wetland in Northeastern China. Ecological Indicators, 120, 106943.









