Ecological gradient analyses of plant associations in the Thandiani forests of the Western Himalayas, Pakistan

Ecological gradient analyses of plant associations in the Thandiani forests of the Western Himalayas, Pakistan

In the summers of 2012 and 2013, vegetation of Thandiani in the Western Himalayas of Pakistan was surveyed and quantified. We took evidence from relationships between 252 species and 11 measured environmental factors as well as changes in the associationsstructure among 50 analysed stations with 1500 m2plots. We analysed how the plant associations differ and develop under the influence of their respective ecological gradients. Preliminary results showed that the family Pinaceae was the most abundant family with a family importance value (FIV) of 1892.4, followed by Rosaceae with FIV = 1478.2. Rosaceae, represented by 20 species, was the most dominant family, followed by Asteraceae and Ranunculaceae with 14 and 12 species each, respectively. Analyses via CANOCO software version 4.5 and GEO database demonstrated strong correlations among species distributions and environmental variables, i.e. elevation, topography, and edaphic factors. Our findings show an increase in species diversity and richness from lower elevation (1290 m at sea level (m asl) to higher elevation (2626 m asl). It is evident that aspect, elevation, and soil factors were the decisive variables affecting qualitative and quantitative attributes of vegetation in the study area. The P value ≤ 0.002 confirms a significant impact of abiotic factors that bring variation in vegetation. A 3D view of the study area was generated in ArcScene showing all the five plant associations. Graphs of scatter plot, point profile, and 3D line profile were added to the layout of plant association maps. The habitats of the five association types overlapped broadly but still retained their specific individuality. The execution of GIS framework gave spatial modelling, which ultimately helped in the recognition of indicator species of specific habitat or association type. These findings could further be utilised in devising the forest policy and conservation management. This study also opens new doors of research in the field of biogeography, systematics, and wildlife

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  • Abbasi AM, Khan SM, Ahmad M, Khan MA, Quave CL, Pieroni A (2013). Botanical ethnoveterinary therapies in three districts of the Lesser Himalayas of Pakistan. J Ethno Ethno 9: 1-9.
  • Ahmad Z, Khan SM, Abd_Allah EF, Alqarawi AA, Hashem A (2016). Weed species composition and distribution pattern in the maize crop under the influence of edaphic factors and farming practices: A case study from Mardan, Pakistan. Saudi J Biol Sci 23: 741-748.
  • Chawla N, Messer EPL, Silva M (2008). Clinical studies on molarincisor hypomineralization part 2: development of a severity index. Eur Arch Pa Den 9: 191-199.
  • Chevallier P, Arnaud Y, Ahmad B (2011). Snow cover dynamics and hydrological regime of the Hunza River basin, Karakoram Range, Northern Pakistan. Hydrol Earth Syst Sc 15: 2259-2274.
  • Davies RG, Barbosa O, Fuller RA, Tratalos J, Burke N, Lewis D, Warren PH, Gaston KJ (2008). City-wide relationships between green spaces, urban land use and topography. Urban Ecos 11: 269-287.
  • Ewald J (2003). A critique for phytosociology. J Veg Sci 14: 291-296. Fagan WF, Bishop JG, Schade JD (2004). Spatially structured herbivory and primary succession at Mount St. Helens: field surveys and experimental growth studies suggest a role for nutrients. Ecol Ent 29: 398-409.
  • Fosaa AM (2004). Biodiversity patterns of vascular plant species in mountain vegetation in the Faroe Islands.  Divers Distrib  10: 217-223.
  • Smith G (2010). Quantitative Plant Ecology. Oxford, UK; Blackwell Scientific.
  • Hegazy AK, El-Demerdash MA, Hosni HA (1998). Vegetation, species diversity and floristic relations along an altitudinal gradient in south-west Saudi Arabia. J Arid Environ 38: 3-13.
  • Hejcmanovā NP, Hejcman M (2006). A canonical correspondence analysis (CCA) of the vegetation-environment relationships in Sudanese savannah, Senegal. S Afr J Bot 72: 256-262.
  • Khan SM, Harper DM, Page S, Ahmad H, 2011. Species and community diversity of vascular flora along environmental gradient in the Naran Valley: a multivariate approach through indicator species analysis. Pak J Bot 43: 2337-2346.
  • Khan SM, Page S, Ahmad H, Shaheen H, Harper DM (2012). Vegetation dynamics in the Western Himalayas, diversity indices and climate change. Science, Technology and Development 31: 232-243.
  • Khan SM, Page S, Ahmad H, Harper DM (2013a). Sustainable utilization and conservation of plant biodiversity in montane ecosystems: the western Himalayas as a case study. Ann BotLondon 112: 479-501.
  • Khan SM, Page S, Ahmad H, Harper DM (2013b). Identifying plant species and communities across environmental gradients in the Western Himalayas: method development and conservation use. Ecol Infor 31: 99-103.
  • Khan W, Khan SM, Ahmad H (2015). Altitudinal variation in plant species richness and diversity at Thandiani sub forests division, Abbottabad, Pakistan. J Biol Environ Sci 7: 46-53.
  • Khan M, Khan SM, Alqarawi AA, Ahmad Z, Abd_Allah EF (2016a). Life forms, leaf size spectra and diversity indices of plant species grown in the Thandiani forests, district Abbottabad, Khyber Pakhtunkhwa, Pakistan. Saudi J Biol Sci (in press) http://dx.doi.org/10.1016/j.sjbs.2016.11.018.
  • Khan W, Khan SM, Ahmad H, Ahmad Z, Page S (2016b). Vegetation mapping and multivariate approach to indicator species of a forest ecosystem: a case study from the Thandiani sub Forests Division (TsFD) in the Western Himalayas. Ecol Indic 71: 336- 351.
  • Khan W, Khan SM, Ahmad H (2016c). Floral biodiversity and vegetation composition of the Western Himalayas, Thandiani Sub Forests Division, Abbottabad. Cons Bio Pak 1: 1-9.
  • Khan W, Khan SM, Ahmad H, Alqarawi AA, Shah GM, Hussain M, Abd_Allah EF (2016d). Life forms, leaf size spectra and diversity indices of plant species grown in the Thandiani forests, district Abbottabad, Khyber Pakhtunkhwa, Pakistan. Saudi J Biol Sci (in press) http://dx.doi.org/10.1016/j.sjbs.2016.11.009.
  • Kharkwal G, Mehrotra P, Rawat YS, Pangtey YPS (2005). Phytodiversity and growth form in relation to altitudinal gradient in the Central Himalayan (Kumaun) region of India. Curr Sci Ban 89: 873-878.
  • Lawrence R (2005). Remote sensing of vegetation responses during the first 20 years following the 1980 eruption of Mount St. Helens: a spatially and temporally stratified analysis. In: Dale VH, Swanson FJ, Crisafulli CM, editors. Ecological Responses to the 1980 Eruption of Mount St. Helens. New York, NY, USA: Springer, pp. 111-123.
  • Malik NZ, Malik ZH (2004). Present status of subtropical Chir Pine vegetation of Kotli Hills, Azad Jammu and Kashmir.  J Res Sci 15: 85-90.
  • Martijn EFT, Herben MHAJ (2003). Characterization of radio wave propagation into buildings at 1800 MHz. IEEE Antenn Wirel Pr 2: 122-125.
  • Nasir E, Ali SI (1972).  Flora of Pakistan. Karachi, Pakistan: Department of Botany, University of Karachi. pp. 1-1028.
  • Nüsser M, Clemens J (1996). Impacts on mixed mountain agriculture in the Rupal Valley, Nanga Parbat, northern Pakistan. Mt Res Dev 16: 117-133.
  • Pavlů J, Němeček Z, Šafránková J, Čermák I (2003). Problems of dust grains charging to negative potentials. Czech J Phys 53: 151- 162.
  • Peters DP, Gosz JR, Pockman WT, Small EE, Parmenter RR, Collins SL, Muldavin E (2006). Integrating patch and boundary dynamics to understand and predict biotic transitions at multiple scales. Landsc Ecol 21: 19-33.
  • Rahman AU, Khan SM, Khan S, Hussain A, Rahman IU, Iqbal Z, Ijaz F (2016a). Ecological assessment of plant communities and associated edaphic and topographic variables in the Peochar Valley of the Hindu Kush mountains. Mt Res Dev 36: 32-41.
  • Rahman IU, Ijaz F, Afzal A, Iqbal Z, Ali N, Khan SM (2016b). Contributions to the phytotherapies of digestive disorders: traditional knowledge and cultural drivers of Manoor Valley, Northern Pakistan. J Ethnopharmacol 192: 30-52.
  • Safford HD, Viers JH, Harrison SP (2005). Serpentine endemism in the California flora: a database of serpentine affinity. Madroño 52: 222-257.
  • Saima S, Dasti AA, Hussain F, Wazir SM, Malik SA (2009). Floristic compositions along an 18- km long transect in Ayubia National Park district Abbottabad, Pakistan. Pak J Bot 41: 2115-2127.
  • Shaheen H, Khan SM, Harper DM, Ullah Z, Allem QR (2011). Species diversity, community structure, and distribution patterns in western Himalayan alpine pastures of Kashmir, Pakistan. Mt Res Dev 31: 153-159.
  • Siddiqui MF, Ahmed M, Wahab M, Khan N, Khan MU, Nazim K, Hussain SS (2009). Phytosociology of Pinus roxburghii Sargent (Chir Pine) in lesser Himalayan and Hindu Kush range of Pakistan. Pak J Bot 41: 2357-2369.
  • Siebert KJ, Löffler T, Quast H, Thomson M, Bauer T, Leonhardt R, Czasch S, Roskos HG (2002). All-optoelectronic continuous wave THz imaging for biomedical applications.  Phys Med Biol 47: 37-43.
  • Stewart RR (1972). An annotated catalogue of the vascular plants of west Pakistan and Kashmir. In: Nasir E, Ali SI, editors. Flora of Pakistan. Karachi. Pakistan: Department of Botany, University of Karachi. pp. 1-1028.
  • Ter Braak CJF, Smilauer P (2002). CANOCO Reference manual and CanoDraw for Windows User’s guide: Software for Canonical Community Ordination (version 4.5). Microcomputer Power, Ithaca, New York. 500 pp. http://www.canoco.com.
  • Wang Y, Singh MP (2006). Trust representation and aggregation in a distributed agent system. AAAI 6: 1425-1430.
  • Wazir SM, Dasti AA, Saima A, Shah J, Hussain F (2008). Multivariate analysis of vegetation of the Chapursan Valley: an alpine meadow in Pakistan. Pak J Bot 40: 615-626.
  • Zobel DB, Singh SP (1997). Himalayan forests and ecological generalizations. Bio Sci 47: 735-745.