Spatial distribution of the ethnomedicinal plant Aglaonema simplex at the Sakaerat Environmental Research Station, Northeastern Thailand

##plugins.themes.bootstrap3.article.main##

NUTCHAPAT O-THONG
WATTANACHAI TASEN
DOKRAK MAROD
SATHID THINKAMPHEANG
WONGSATORN PHUMPHUANG

Abstract

Abstract. O-thong N, Tasen W, Marod D, Thinkampheang S, Phumphuang W. 2024. Spatial distribution of the ethnomedicinal plant Aglaonema simplex at the Sakaerat Environmental Research Station, Northeastern Thailand. Biodiversitas 25: 3043-3050. Aglaonema simplex Blume (Araceae) is an evergreen herbaceous plant used ornamentally and in traditional medicine. Although the usefulness of this plant has been widely studied and reported, its ecology remains poorly understood. In this study, we examined the effects of various environmental factors on the spatial distribution of A. simplex in a Dry Evergreen Forest (DEF) at the Sakaerat Environmental Research Station (SERS) in Northeastern Thailand. All individual plants were counted; their positions were recorded within a 16-ha Forest Dynamics Plot (FDP), and their distribution pattern was analyzed using Ripley's K function. The spatial distribution of A. simplex was determined using a generalized linear model that incorporated plant density and topographic and edaphic variables within the 16-ha study plot. We found a total of 11,232 A. simplex individuals with a density of 702 individuals ha-1, with a clumped distribution pattern. The modeling results showed that the spatial distribution of A. simplex was positively influenced by soil clay content, soil pH, exchangeable magnesium, and adult tree density; it was negatively influenced by sapling density and rocky outcrops. These findings contribute to the broader understanding of the ecological niche of A. simplex. They can be used to design integrated land management approaches that balance ecological conservation with economic development goals.

##plugins.themes.bootstrap3.article.details##

References
Ahmed N, Zhang B, Bozdar B, Chachar S, Rai M, Li J, Li Y, Hayat F, Chachar Z, Tu P. 2023. The power of magnesium: Unlocking the potential for increased yield, quality, and stress tolerance of horticulture crops. Front Plant Sci 14: 1285512. DOI: 10.3389/fpls.2023.1285512.
Allen DJ. 2011. Aglaonema simplex. The IUCN Red List of Threatened Species 2011. https://www.iucnredlist.org/species/194792/8902274.
Borregaard MK, Hendrichsen DK, Nachman G. 2008. Spatial distribution. In: Fath B (eds). Encyclopedia of Ecology. Elsevier, Oxford. DOI: 10.1016/B978-008045405-4.00659-5.
Boyce PC, Sookchaloem D, Hetterscheid WLA, Gusman G, Jacobsen N, Idei Y, Du NV. 2012. Araceae. Flora Thailand 11 (2): 1-221.
Boyce PC, Yeng WS. 2012. The Araceae of Malesia I: Introduction. Malays Nat J 64 (1): 33-67. DOI: 10.1080/00837792.2012.10670914.
Caughlin TT, Ferguson JM, Lichstein JW, Bunyawejchewin S, Levey DJ. 2014. The importance of long-distance seed dispersal for the demography and distribution of a canopy tree species. Ecology 95 (4): 952-962. DOI: 10.1890/13-0580.1.
Chai SK, Wong SY. 2019. Five pollination guilds of Aroid (Araceae) at Mulu National Park (Sarawak, Malaysian Borneo). Webbia 74 (2): 353-371. DOI: 10.1080/00837792.2019.1653425.
Chee C-F, Lee HB, Ong HC, Ho AHS. 2005. Photocytotoxic pheophorbide-related compounds from Aglaonema simplex. Chem Biodivers 2 (12): 1648-1655. DOI: 10.1002/cbdv.200590134.
Chen Y, Wu Y, Zhou J, Zhang W, Lin H-D, Liu X, Pan K, Shen T-J, Pan Z. 2021. Effectively inferring overall spatial distribution pattern of species in a map when exact coordinate information is missing. Methods Ecol Evol 12 (6): 971-984. DOI: 10.1111/2041-210X.13590.
Cornell HV, Harrison SP. 2014. What are species pools and when are they important? Ann Rev Ecol Evol Syst 45: 45-67. DOI: 10.1146/annurev-ecolsys-120213-091759.
Croat TB, Ortiz OO. 2020. Distribution of Araceae and the diversity of life forms. Acta Soc Bot Pol 89 (3): 8939. DOI: 10.5586/asbp.8939.
Dawwrueng P, Tan MK, Artchawakom T, Waengsothorn S. 2017. Species checklist of Orthoptera (Insecta) from Sakaerat Environmental Research Station, Thailand (Southeast Asia). Zootaxa 4306 (3): 301-324. DOI: 10.11646/zootaxa.4306.3.1.
Dormann CF, Bagnara M, Boch S, Hinderling J, Janeiro-Otero A, Schäfer D, Schall P, Hartig F. 2020. Plant species richness increases with light availability, but not variability, in temperate forests understorey. BMC Ecol 20: 43. DOI: 10.1186/s12898-020-00311-9.
Dubost JM, Phakeovilay C, Her C, Bochaton A, Elliott E, Deharo E, Xayvue M, Bouamanivong S, Bourdy G. 2019. Hmong herbal medicine and herbalists in Lao PDR: pharmacopeia and knowledge transmission. J Ethnobiol Ethnomed 15 (1): 27. DOI: 10.1186/s13002-019-0307-2.
Gentili R, Ambrosini R, Montagnani C, Caronni S, Citterio S. 2018. Effect of soil pH on the growth, reproductive investment and pollen allergenicity of Ambrosia artemisiifolia L. Front Plant Sci 9: 1335. DOI: 10.3389/fpls.2018.01335.
Gómez-Rubio V. 2016. Spatial point patterns: Methodology and applications with R. J Stat Softw: Book Rev 75 (2): 1-6. DOI: 10.18637/jss.v075.b02.
Goni O, Khan MF, Rahman MM, Hasan MZ, Kader FB, Sazzad N, Sakib MA, Romano B, Haque MA, Capasso R. 2021. Pharmacological insights on the antidepressant, anxiolytic and aphrodisiac potentials of Aglaonema hookerianum Schott. J Ethnopharmacol 268: 113664. DOI: 10.1016/j.jep.2020.113664.
Gu H, Li J, Qi G, Wang S. 2020. Species spatial distributions in a warm-temperate deciduous broad-leaved forest in China. J For Res 31 (4): 1187-1194. DOI: 10.1007/s11676-019-00928-7.
Harrison XA. 2014. Using observation-level random effects to model overdispersion in count data in ecology and evolution. PeerJ 2: e616. DOI: 10.7717/peerj.616.
He C, Jia S, Luo Y, Hao Z, Yin Q. 2022. Spatial distribution and species association of dominant tree species in Huangguan plot of Qinling mountains, China. Forests 13 (6): 866. DOI: 10.3390/f13060866.
Hidasi-Neto J, Bini LM, Siqueira T, Cianciaruso MV. 2020. Ecological similarity explains species abundance distribution of small mammal communities. Acta Oecol 102: 103502. DOI: 10.1016/j.actao.2019.103502.
Hohl A, Zheng M, Tang W, Delmelle E, Casas I. 2017. Spatiotemporal point pattern analysis using Ripley's K function. In: Karimi HA, Karimi B (eds). Geospatial Data Science Techniques and Applications. CRC Press, Boca Raton. DOI: 10.1201/b22052-7.
Hovi A, Rautiainen M. 2020. Spectral composition of shortwave radiation transmitted by forest canopies. Trees 34: 1499-1506. DOI: 10.1007/s00468-020-02005-7.
Hu D, Xu Y, Chai Y, Tian T, Wang K, Liu P, Wang M, Zhu J, Hou D, Yue M. 2022. Spatial distribution pattern and genetic diversity of Quercus wutaishanica Mayr population in Loess plateau of China. Forests 13 (9): 1375. DOI: 10.3390/f13091375.
Husemann M, Zachos FE, Paxton RJ, Habel JC. 2016. Effective population size in ecology and evolution. Heredity 117 (4): 191-192. DOI: 10.1038/hdy.2016.75.
Ismail Z, Ahmad A, Muhammad TST. 2017. Phytochemical screening of in vitro Aglaonema simplex plantlet extracts as inducers of SR-B1 ligand expression. J Sustain Sci Manag 12 (2): 34-44.
Kamble MY, Mane SS, Murugan C, Jaisankar I. 2008. Diversity of ethno-medicinal plants of tropical islands-with special reference to Andaman and Nicobar Islands. In: Sivaperuman C, Velmurugan A, Singh AK, Jaisankar I (eds). Biodiversity and Climate Change Adaptation in Tropical Islands. Academic Press, Cambridge, Massachusetts. DOI: 10.1016/B978-0-12-813064-3.00003-X.
Kiatsongchai R, Chitsomboon B. 2019. Phytochemicals and antioxidant properties of Wan Khan Mak (Aglaonema simplex BL.) fruit extract. Suranaree J Sci Technol 26 (1): 101-112.
Kome GK, Enang RK, Tabi FO, Yerima BPK. 2019. Influence of clay minerals on some soil fertility attributes: A review. Open J Soil Sci 9 (9): 155-188. DOI: 10.4236/ojss.2019.99010.
Lekprasoet R, Tuankrua V, Kheereemangkla Y. 2022. Some soil physical properties and soil water storage capacity in mixed deciduous forest and maize fields at Na Luang sub-watershed, Nan Province. Thai J For 41 (1): 90-101.
Lestari D, Asih NPS. 2017. Population structure, distribution pattern and microhabitat characteristics of Aglaonema simplex in Pasatan Protected Forest, Jembrana, Bali, Indonesia. Biodiversitas 18 (4): 1663-1668. DOI: 10.13057/biodiv/d180446.
Low SL. 2024. Avian frugivory and seed dispersal in Amorphophallus paeoniifolius and Alocasia odora. Trop Ecol 65: 321-329. DOI: 10.1007/s42965-024-00340-1.
Lowe WH, McPeek MA. 2014. Is dispersal neutral? Trends Ecol Evol 29 (8): 444-450. DOI: 10.1016/j.tree.2014.05.009.
Ma F, Wang S, Sang W, Zhang S, Ma K. 2024. Spatial distribution and sustainable development of living woody and coarse woody debris in warm-temperate deciduous broadleaved secondary forests in China. Plants 13 (5): 638. DOI: 10.3390/plants13050638.
Magar ABP, Adhikari D. 2015. Climate Requirements of Major Flowers in Nepalese Context. Floriculture Association Nepal (FAN): Kathmandu Nepal.
Mansor M, Boyce PC, Othman AS, Sulaiman B. 2011. The Araceae of Peninsular Malaysia. Penerbit Universiti Sains Malaysia, Pulau Pinang.
Marod D, Duengkae P, Sangkaew S et al. 2022. Population structure and spatial distribution of tree species in lower montain forest, Doi Suthep-Pui National Park, northern Thailand. Environ Nat Resour 20 (6): 644-663. DOI: 10.32526/ennrj/20/202200139.
Marod D, Hermhuk S, Sungkaew S, Thinkampheang S, Kamyo T, Nuipakdee W. 2019. Species composition and spatial distribution of dominant trees in the forest ecotone of a mountain ecosystem, northern Thailand. Environ Nat Resour 17 (3): 40-49. DOI: 10.32526/ennrj.17.3.2019.21.
Marod D, Phumphuang W, Wachrinrat C. 2021. Effect of environmental gradients on tree distribution in lowland dry evergreen forest, Northeastern Thailand. Agric Nat Resour 55 (5): 795-805. DOI: 10.34044/j.anres.2021.55.5.10.
Matsumoto TK, Hirobe M, Akaji Y, Miyazaki Y. 2020. Population structures and spatial patterns of two unpalatable Arisaema species (Araceae) with and without clonal reproduction in a riparian forest intensively grazed by Sika deer. J For Res 31: 155-162. DOI: 10.1007/s11676-018-0845-9.
Mayo SJ, Bogner J, Boyce PC. 1997. The Genera of Araceae. The Trustees Royal Botanic Gardens, Kew. London, UK.
Murphy SJ, Smith AB. 2021. What can community ecologists learn from species distribution model? Ecosphere 12 (12): e03864. DOI: 10.1002/ecs2.3864.
Neina D. 2019. The role of soil pH in plant nutrition and soil remediation. Appl Environ Soil Sci 2019: 5794869. DOI: 10.1155/2019/5794869.
Nicolson DH. 1969. A Revision of the Genus Aglaonema (Araceae). Smithsonian Institution Press, Washington. DOI: 10.5962/bhl.title.123257.
Opryshko M, Tkachenko H, Buyun L, Kurhaluk N, Góralczyk A, Tomin V, Osadowski Z. 2019. Evaluation of the antibacterial activity of ethanolic extracts obtained from Aglaonema commutatum Schott and its cultivars against Citrobacter freundii. Agrobiodivers Improv Nutr Health Life Qual 3: 154-164. DOI: 10.15414/agrobiodiversity.2019.2585-8246.154-164.
Palakit K, Duangsathaporn K, Siripatanadilok S, Lumyai P. 2015. Effect of climate variability on monthly growth of Aglaia odoratissima and Hydnocarpus ilicifolia at the Sakaerat Environmental Research Station (SERS), Northeastern Thailand. Environ Nat Resour 13 (1): 1-12. DOI: 10.14456/ennrj.2015.7.
Penn CJ, Camberato JJ. 2019. A critical review on soil chemical processes that control how soil pH affects phosphorus availability to plants. Agriculture 9 (6): 120. DOI: 10.3390/agriculture9060120.
Phumphuang W, Sungkaew S, Wachrinrat C, Thinkampheang S, Hermhuk S, Thongsawi J, Waengsothorn S, Lin L, Marod D. 2024. Environmental factors differentially influence species distributions across tree size classes in a dry evergreen forest in Sakaerat Biosphere Reserve, Northeastern Thailand. J For Res 2024: 1-9. DOI: 10.1080/13416979.2024.2314834.
R Core Team. 2023. R: A Language and Environment for Statistical Computing. R Foundation for Statistical Computing, Vienna, Austria. https://www.R-project.org/.
Royal Botanic Gardens, Kew. 2024. Araceae: Aglaonema Schott. https://powo.science.kew.org/taxon/urn:lsid:ipni.org:names:2671-1.
Sakurai K, Tanaka S, Ishiduka S, Kanzaki M. 1998. Differences in soil properties of dry evergreen and dry deciduous forests in the Sakaerat Environmental Research Station. Tropics 8 (1/2): 61-80. DOI: 10.3759/tropics.8.61.
Sela G. 2020. Soil pH and Acidity. https://cropaia.com/blog/soil-ph-and-acidity/.
Sercu BK, Baeten L, van Coillie F, Martel A, Lens L, Verheven K, Bonte D. 2017. How tree species identity and diversity affect light transmittance to the understory in mature temperate forests. Ecol Evol 7 (24): 10861-10870. DOI: 10.1002/ece3.3528.
Shen T-J, Chen Y, Chen Y-F. 2017. Estimating species pools for a single ecological assemblage. BMC Ecol 17 (1): 45. DOI: 10.1186/s12898-017-0155-7.
Soti PG, Jayachandran K, Koptur S, Volin JC. 2015. Effect of soil pH on growth, nutrient uptake, and mycorrhizal colonization in exotic invasive Lygodium microphyllum. Plant Ecol 216: 989-998. DOI: 10.1007/s11258-015-0484-6.
Sungkajanttranon O, Marod D, Thanompun K. 2018. Diversity and distribution of family Araceae in Doi Inthanon National Park, Chiang Mai province. Agric Nat Resour 52 (2): 125-131. DOI: 10.1016/j.anres.2018.06.009.
Tanesaka E. 2017. Ethnobotanical survey on distribution of medicinal plants in the genus Arisaema in ruins of fortresses used in medieval Japan. J Med Plants Res 11 (18): 338-344. DOI: 10.5897/JMPR2017.6353.
Tilarux P, Suwanposri A, Tachai S, Sasivatchutikool P, Boonmee Y. 2022. Effect of plant hormones on growth of Wan Khan Mak (Aglaonema tenuipes Engl.) in vitro. J Sci Technol MSU 41 (5): 227-235.
Tinya F, Ódor P. 2016. Congruence of the spatial pattern of light and understory vegetation in an old-growth, temperate mixed forest. For Ecol Manag 381: 84-92. DOI: 10.1016/j.foreco.2016.09.027.
Tränkner M, Tavakol E, Jákli B. 2018. Functioning of potassium and magnesium in photosynthesis, photosynthate translocation and photoprotection. Physiol Plant 163 (3): 414-431. DOI: 10.1111/ppl.12747.
Walthert L, Meier ES. 2017. Tree species distribution in temperate forests is more influenced by soil than climate. Ecol Evol 7 (22): 9473-9484. DOI: 10.1002/ece3.3436.
Wang H, Liu D, Munroe D, Cao K, Biermann C. 2016. Study on selecting sensitive environmental variables in modelling species spatial distribution. Ann GIS 22 (1): 57-69. DOI: 10.1080/19475683.2015.1114523.
Wang Y, Chen F, Zhang M, Chen S, Tan X, Liu M, Hu Z. 2018. The effects of the reverse seasonal flooding on soil texture within the hydro-fluctuation belt in the Three Gorges reservoir, China. J Soils Sediments 18: 109-115. DOI: 10.1007/s11368-017-1725-1.
Wang Y, Gui Z, Wu H, Peng D, Wu J, Cui Z. 2020a. Optimizing and accelerating space-time Ripley’s K function based on Apache Spark for distributed spatiotemporal point pattern analysis. Future Gener Comput Syst 105: 96-118. DOI: 10.1016/j.future.2019.11.036.
Wang Z, Ul Hassan M, Nadeem F, Wu L, Zhang F, Li X. 2020b. Magnesium fertilization improves crop yield in production systems: A meta-analysis. Front Plant Sci 10: 1727. DOI: 10.3389/fpls.2019.01727.
Yang G-Z, Luo X-J, Nie Y-C, Zhang X-L. 2014. Effects of plant density on yield and canopy micro environment in hybrid cotton. J Integr Agric 13 (10): 2154-2163. DOI: 10.1016/S2095-3119(13)60727-3.
Yuzammi Y. 2018. The diversity of Aroid (Araceae) in Bogor Botanic Garden, Indonesia: Collection, conservation and utilization. Biodiversitas 19 (1): 140-152. DOI: 10.13057/biodiv/d190121.
Zhang S, Huang Y, Zang R. 2017. The assembly and interactions of tree species in tropical forests based on spatial analysis. Ecosphere 8 (7): e01903. DOI: 10.1002/ecs2.1903.

Most read articles by the same author(s)

1 2 > >>