FUNGI AND MACROFAUNA COMMUNITY IN POST-FIRE PEATLAND IN CENTRAL KALIMANTAN

Autor(s): Safinah Surya Hakim, Wawan Halwany, Dony Rachmanadi
DOI: 10.20886/ijfr.2019.6.2.107-116

Abstract

Peat soil with its unique physical and chemical character is host to various microbe and fauna. In the peat, the existence of microbe and macrofauna influenced by several environmental parameters. Therefore, in this study we would like to obtain the information about fungi and macrofauna in the post fire degraded peat swamp soil with emphasize on two points which are (i) abundance of soil fungi and soil macrofauna (ii) to describe the environmental parameters (e.g. understory and chemical properties) on the existence of fungi and macrofauna community. Soil dilution and pitfall trap were used to collect microbes and macrofauna in the targeted post-fire peat soil: Post-fire peatland /bareland (A), post-fire peat-land revegetated in December 2016 (B), post-fire peat-land revegetated in April 2016 (C), post-fire peat-land revegetated in December 2015 (D). Result showed that abundance of soil fungi obtained during this study is 4×105 to 11×105 cfu/ml. While the macrofauna abundance is 353-1038 ind/m2. Fungi and macrofauna community in peatland affected by understory cover which related with revegetation activity. There is a trend of increasing the abundance of microbes and macrofauna on the land along with the increase of the percentage of understory cover.

Keywords

abundance; forest fire; macrofauna; microbe; peat.

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References

Borror DJ. Triplehorn CA, Johnson NF. (1992). Pengenalan pelajaran serangga edisi ke 6. Partosoedjono S, penerjemah. Gajah Mada University Press, Yogyakarta

Bottinelli, N., Jouquet, P., Capowiez, Y., Podwojewski, P., Grimaldi, M., & Peng, X. (2015). Soil & Tillage Research Why is the influence of soil macrofauna on soil structure only considered by soil ecologists ? Soil & Tillage Research, 146, 118–124. http://doi.org/10.1016/j.still.2014.01.007

Bridge, P., & Spooner, B. (2001). Soil fungi : diversity and detection. Plant and Soil, 232, 147–154.

Brussaard, L. (1997). Biodiversity and Ecosystem Functioning in Soil. Ambio, 26(8), 563–570.

Carpenter, D., Hammond, P. M., Sherlock, E., Lidgett, A., Leigh, K., & Eggleton, P. (2012). Biodiversity of soil macrofauna in the New Forest : a benchmark study across a national park landscape, 3385–3410. http://doi.org/10.1007/s10531-012-0369-0

Devi, L. S., Khaund, P., Nongkhlaw, F. M., & Joshi, S. (2012). Diversity of Culturable Soil Micro-fungi along Altitudinal Gradients of Eastern Himalayas. Mycobiology, 40(3), 151–158. http://doi.org/10.5941/MYCO.2012.40.3.151

Gongalsky, K. B., Malmström, A., Zaitsev, A. S., Shakhab, S. V, Bengtsson, J., & Persson, T. (2012). Do burned areas recover from inside ? An experiment with soil fauna in a heterogeneous landscape. Applied Soil

Ecology, 59, 73–86. http://doi.org/10.1016/j.apsoil.2012.03.017

Gongalsky, K. B., & Persson, T. (2013). Soil Biology & Biochemistry Recovery of soil macrofauna after wild fi res in boreal forests. Soil Biology and Biochemistry, 57, 182–191. http://doi.org/10.1016/j.soilbio.2012.07.005

Hakim, S. S., Yuwati, T. W., & Alimah, D. (2016). Hutan Rawa Gambut: Habitat untuk Berbagai Jenis Fungi. In R. Diana, Y. B. Sulistioadi, Karyati, S. Sarminah, K. Y. Widiati, H. Kuspradini, … R. Mulyadi (Eds.), Seminar Nasional Silvikultur ke-IV dan Kongres Masyarakat Silvikultur Indonesia (pp. 482–486). Balikpapan: Pusat Pengkajian Perubahan Iklim Universitas Mulawarman.

Halwany, W., S. Andriany, Manaon. (2014). Ekologi Fauna Tanah pada Pola Agroforestri Berbasis Jelutung di Kalimantan Tengah. Prosiding Ekspose Hasil Penelitian 30 tahun BPK Banjarbaru dalam Pembangunan Kehutanan.

Harun, M.K. (2011). Analisis Pengembangan Jelutung dengan Sistem Agroforestri untuk Memulihkan Lahan Gambut Terdegradasi di Provinsi Kalimantan Tengah. Tesis Program Studi Pengelolaan Sumberdaya Alam dan Lingkungan Sekolah Pascasarjana Institut Pertanian Bogor

Istomo and A. Pradiastoro. (2011). Karakteristik Tempat Tumbuh Pohon Palahlar Gunung (Dipterocarpus retusus BI.) di Kawasan Hutan Lindung Gunung Cakrabuana, Sumedang Jawa Barat. Jurnal Penellitian Hutan dan Konservasi Alam vol 8 no. 1.

Kirk, J. L., Beaudette, L. A., Hart, M., Moutoglis, P., Klironomos, J. N., Lee, H., & Trevors, J. T. (2004). Methods of studying soil microbial diversity. Journal of Microbial Methods, 58, 169–188. http://doi.org/10.1016/j.mimet.2004.04.006

Krebs , CJ. (1978). The experimental analysis of distribution and abundance. Second edition. University of British Columbia.

Kruger, D., Sharma, M., & Ajit, V. (2009). Assessing the Mycorrhizal Diversity of Soils and Identification of Fungus Fruiting Bodies and Axenic Cultures. In V. Ajit & A. C. Kharkwal (Eds.), Symbiotic Fungi: Principles and Practices (Vol. 201303, pp. 159–188). Springer-Verlag Berlin Heidelberg. http://doi.org/10.1007/978

Lal, R. (1988). Effects of Macrofauna on Soil Properties in Tropical Ecosystem. Agriculture, Ecosystem and Environment, 24, 101–116.

Maftu’ah E, M. Alwi, Willis M. (2005). Potensi Makrofauna Tanah sebagai Bioindikator Kualitas Tanah Gambut. Bioscientiae 2 (1): 1-14.

Malmstrom, A., Persson, T., Ahlstro, K., & Malmstro, A. (2009). Dynamics of soil meso- and macrofauna during a 5-year period after clear-cut burning in a boreal forest. Applied Soil Ecology, 43, 61–74. http://doi.org/10.1016/j.apsoil.2009.06.002

Mandal, A., & S, N. (2012). Impact of climate change on soil biodiversity- A review. Agri.Reviews, 4, 283–292.

Neary, D. G., Klopatek, C. C., Debano, L. F., & Ffolliott, P. F. (1999). Fire effects on belowground sustainability : a review and synthesis. Forest Ecology and Management, 122, 51–71.

Santosa, P.B., Qirom, M. A. (2016). Memotret KHDTK Tumbang Nusa. Bekantan Volume 4 no. 1 tahun 2016. Balai Penelitian dan Pengembangan Lingkungan Hidup dan Kehutanan Banjarbaru.

Song, L., Gilbert, D., & Wu, D. (2016). Vertical micro-distribution of microbial communities living in Sphagnum fallax. Aquatic Microbial Ecology, 77(April), 1–10. http://doi.org/10.3354/ame01783

Suhardjono, Y.R., L. Deharveng, A. Bedos. (2012). Biologi Ekologi Klasifikasi Collembola (ekorpegas). Vegamedia. Bogor.

Thormann, M. N., & Rice, a. V. (2007). Fungi from peatlands. Fungal

Diversity, 24, 241–299. Retrieved from http://www.fungaldiversity.org/fdp/sfdp/24-10.pdf

Thormann, M. N., Rice, A. V, & Beilman, D. W. (2007). Yeasts In Peatlands : A Review Of Richness And Roles In Peat Decomposition Yeasts In Peatlands : A Review Of Richness And Roles In Peat Decomposition. Wetlands, 27(3), 761–773.

Trinder, C. J., Johnson, D., & Artz, R. R. E. (2008). Interactions among fungal community structure , litter decomposition and depth of water table in a cutover peatland. Microbiol Ecol, 64, 433–448. http://doi.org/10.1111/j.1574-6941.2008.00487.x

Wardle, D. A., Yeates, G. W., Barker, G. M., & Bonner, K. I. (2006). The influence of plant litter diversity on decomposer abundance and diversity, 38, 1052–1062. http://doi.org/10.1016/j.soilbio.2005.09.003

Wawan Halwany. (2011). Keragaman Makrofauna Tanah sebagai Indikator Pengolahan Lahan (Studi kasus pada lahan tanaman jelutung rawa (Dyera polyphylla)). In Prosiding Ekspose Hasil Penelitian: Dukungan BPK Banjarbaru dalam Pembangunan Kehutanan di Kalimantan (pp. 87–95). Banjarmasin: Pusat Litbang Peningkatan Produktivitas Hutan.

Yabuki, T., Duncan, I., & Okuda, T. (2013). Full paper Comparative study reveals unique features of the mycobiota in peat soils samples from Japan and Scotland. Mycoscience, 55(3), 168–176. http://doi.org/10.1016/j.myc.2013.08.002

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