1.Alef, K. 1995. Estimating of soil respiration. P 464-470, In: K. Alef and P. Nannipieri (Eds.), Methods in soil microbiology and biochemistry, Academic Press, New York.
2.Asshoff, R., Scheu, S., and Eisenhauer, N. 2010. Different earthworm ecological groups interactively impact seedling establishment. Europ. J. Soil Biol. 46: 330-334.
3.Augusto, L., Ranger, J., Binkley, D., and Rothe, A. 2002. Impact of several common tree species of European temperate forests on soil fertility. Annals of Forest Science. 59: 233-253.
4.Blouin, M., Hodson, M.E., Delgado, E.A., Baker, G., Brussaard, L., Butt, K.R., and Brun, J.J. 2013. A review of earthworm impact on soil function and ecosystem services. Europ. J. Soil Sci. 64: 161-182.
5.Brassard, B.W., Chen, H.Y.H., Bergeron, Y., and David, P. 2011. Coarse root biomass allometric equations for Abies balsamea, Picea mariana, Pinus banksiana and Populus tremuloides in the boreal forest of Ontario, Canada. Biomass and Bio energy. 35: 4189-4196.
6.Brockett, B.F.W., Prescott, C.E., and Grayston, S.J. 2012. Patterns in forest soil microbial community composition across a range of regional climates in western Canada. Soil Biology & Biochemistry. 44: 9-20.
7.Esmaeilzadeh, O., Hosseini, S.M., Asadi, H., and Ahmadi, A. 2010. Study on Lymantria dispar in plain forests of Noor. Iran. J. Natur. Ecosyst. 1: 47-62. (In Persian)
8.Ewing, H.A., Tuininga, A.R., Groffman, P.M., Weathers, K.C., Fahey, T.J., Fisk, M.C., and Suarez, E. 2015. Earthworms reduce biotic 15-nitrogen retention in northern Hardwood forests. Ecosystems. 18: 328-342.
9.Fierer, N., Strickland, M.S., Liptzin, D., Bradford, M.A., and Cleveland, C.C. 2009. Global patterns in belowground communities. Ecology Letters. 12: 1238-1249.
10.Gallardo, A. 2003. Effect of tree canopy on the spatial distribution of soil nutrients in a Mediterranean Dehesa. Pedobiologia. 47: 117-125.
11.Gartzia-Bengoetxea, N., Kandeler, E., de Arano, I.M., and Arias-González, A. 2016. Soil microbial functional activity is governed by a combination of tree species composition and soil properties in temperate forests. Applied Soil Ecology. 100: 57-64.
12.Ghazanshahi, J. 2006. Soil and plant analysis. Hooma Publication, 272p. (In Persian)
13.Grayston, S.J., and Prescott, C.E. 2005. Microbial communities in forest floors under four tree species in coastal British Columbia. Soil Biology and Biochemistry. 37: 1157-1167.
14.Gurmesa, G.A., Schmidt, I.K., Gundersen, P., and Vesterdal, L. 2013. Soil carbon accumulation and nitrogen retention traits of four tree species grown in common gardens. Forest Ecology and Management. 309: 47-57.
15.Hagen-Thorn, A., Callesen, I., Armolaitis, K., and Nihlgard, B. 2004. The impact of six European tree species on the chemistry of mineral topsoil in forest plantations on former agricultural land. Forest Ecology and Management. 195: 373-384.
16.Hale, C.M., and Host, G.E. 2005. Assessing the impacts of European earthworm invasions in beech-maple hardwood and aspen-fir boreal forests of the western Great Lakes region. Natural Resources Research Institute, Center for Water and the Environment, University of Minnesota Duluth.
18.Jafari Haghighi, M. 2003. Soil analysis methods. Nedaye Zohi Publication, 236p.
(In Persian)
19.Kooch, Y., and Zoghi, Z. 2014. Comparison of soil fertility of Acer insigne, Quercus castaneifolia, and Pinus brutia stands in the Hyrcanian forests of Iran. Chine. J. Appl. Environ. Biol. 20: 899-905.
20.Kooch, Y., Hosseini, S.M., Mohammadi, J., and Hojjati, S.M. 2013. Variability of soil physical indicators imposed by Beech and Hornbeam individual trees in a local scale. Biodiversitas. 14: 25-30.
21.Kooch, Y., Hosseini, S.M., Scharenbroch, B.C., Hojjati, S.M., and Mohammadi, J. 2015. Pedodiversity analysis in the Caspian forests of Iran. Geoderma Regional. 5: 4-14.
22.Kooch, Y., Jalilvand, H., Bahmanyar, M.A., and Pormajidian, M.R. 2009. Distribution of earthworms and theirs relation with some soil properties. Pajohesh-Sazandegi J. 83: 18-27. (In Persian)
23.Kooch, Y., Zaccone, C., Lamersdorf, N.P., and Tonon, G. 2014. Pit and mound influence on soil features in an Oriental Beech (Fagus orientalis Lipsky) forest. Europ. J. For. Res. 133: 347-354.
24.Loss, S.R., Hueffmeier, R.M., Hale, C.M., Host, G.E., Sjerven, G., and Frelich, L.E. 2013. Earthworm Invasions in Northern Hardwood Forests: a rapid assessment method.
Natur. Areas J. 33: 21-30.
25.Makita, N., and Fujii, S. 2015. Tree species effects on microbial respiration from decomposing leaf and fine root litter. Soil Biology and Biochemistry. 88: 39-47.
26.Makkonen, K., and Helmisaari, H.S. 2001. Fine root biomass and production in Scot pine stand in relation to stand age. Tree Physiology. 21: 193-198.
27.McCormack, M.L. 2014. Variability in root production, phenology and turnover rate among 12 temperate tree species. Ecology. 95: 2224-2235.
28.Mismir, N., and Mismir, M. 2012. Root biomass and carbon storage in Abies nordmanniana Stands. J. For. Fac. 6: 225-227.
29.Munoz, F., and Beer, J. 2001. Fine root dynamics of shaded cacao plantations in Costa Rica. Agro forestry System. 51: 119-130.
30.Muoghalu, J.I., and Oakhumen, A. 2000. Nutrient content of incident rainfall throughfall and stemflow in a Nigerian secondary lowland rainforest. Applied Vegetation Science. 3: 181-188.
31.Muys, B., Lust, N., and Granval, P.H. 1992. Effects of grassland afforestation with different tree species on earthworm communities, litter decomposition and nutrient status. Soil Biology and Biochemistry. 24: 1459-1466.
32.Neatrour, M.A., Jones, R.H., and Golladay, S.W. 2005. Correlations between soil nutrients availability and fine- root biomass at two spatial scales in forested wetlands with contrasting hydrological regimes. NRC Research Press. 35: 2934-2941.
33.Neher, D.A. 1999. Soil community composition and ecosystem processes: comparing agricultural ecosystems with natural ecosystems. Agroforestry Systems. 45: 159-185.
34.Neirynck, J., Mirtcheva, S., Sioen, G., and Lust, N. 2000. Impact of Tilia platyphyllos Scop. Fraxinus excelsior L., Acer pseudoplatanus L., Quercus robur L. and Fagus sylvatica L. on earthworm biomass and physico-chemical properties of loamy topsoil. Forest Ecology and Management. 133: 275-286.
35.Petersen, J., Hansen, B., and Sorensen, P. 2000. Carbon storage in natural ecosystems. Europ. J. Soil Sci. 21: 81-92.
36.Prescott, C.E., and Grayston, S.J. 2013. Tree species influence on microbial communities in litter and soil: current knowledge and research needs. Forest Ecology and Management. 309: 19-27.
37.
Qiu, Q.,
Li, J.Y.,
Wang, J.H.,
He,
Q., Su, Y., and
Wei, J. 2014. Interactions between Soil Water and Fertilizer Application on Fine Root Biomass Yield and Morphology of Catalpa bungei Seedlings.
Applied Mechanics and Materials.700: 323-333.
38.Rousk, J., Baath, E., Brookes, P.C., Lauber, C.L., Lozupone, C., Caporaso, J.G., Knight, R., and Fierer, N. 2010. Soil bacterial and fungal communities across a pH gradient in an arable soil. ISME J. 4: 1340-1351.
39.Sah, S.P., Jungner, H., Oinonen, M., Kukkola, M., and Helmisaari, H.S. 2011. Does the age of fine root carbon indicate the age of fine roots in boreal forests? Biogeochemistry. 104: 91-102.
40.Saiz, G., Byrne, K.A., Butterbach-Bahl, K., Kiese, R., Blujdea, V., and Farrell, E.P. 2006 Stand age-related effects on soil respiration in a first rotation Sitka spruce chronosequence in central Ireland. Global Change Biology. 12: 1007-1020.
41.Sariyildiz, T. 2015. Effects of tree species and topography on fine and small root decomposition rates of three common tree species (Alnus glutinosa, Picea orientalis and Pinus sylvestris) in Turkey. Forest Ecology and Management. 335: 71-86.
42.Sayer, E.J., Tanner, E.V.J., and Cheesman, A.W. 2006. Increased litterfall changes fine root distribution in a moist tropical forest. Plant and Soil. 281: 5-13.
43.Schrijver, A., Frenne, P., Staelens, J., Verstraeten, G., Muys, B., Vesterdal, L., and Verheyen, K. 2012. Tree species traits cause divergence in soil acidification during four decades of postagricultural forest development. Global Change Biology. 18: 1127-1140.
44.Schwarz, B. 2015. Non-significant tree diversity but significant identity effects on earthworm communities in three tree diversity experiments. Europ. J. Soil Biol. 67: 17-26.
45.Thoms, C., and Gleixner, G. 2013. Seasonal differences in tree species' influence on soil microbial communities. Soil Biology and Biochemistry. 66: 239-248.
46.Thoms, C., Gattinger, A., Jacob, M., Thomas, F.M., and Gleixner, G. 2010. Direct and indirect effects of tree species diversity drive soil microbial diversity in temperate deciduous forest. Soil Biology and Biochemistry. 42: 1558-1565.
47.Ushio, M., Kitayama, K., and Balser, T.C. 2010. Tree species-mediated spatial patchiness of the composition of microbial community and physicochemical properties in the topsoils of a tropical montane forest. Soil Biology and Biochemistry. 42: 1588-1595.
48.Wang, C.H., Wan, S.Q., Xing, X.R., Zhang, L., and Han, X.G. 2006. Temperature and soil moisture interactively affected soil net N mineralization in temperate grassland in Northern China. Soil Biology and Biochemistry. 38: 1101-1110.
49.Wang, W., Wei, X., Liao, W., Blanco, J.A., Liu, Y., Zhang, L., and Guo, S. 2013. Evaluation of the effects afforests management strategies on carbon sequestration in evergreen
broad-leaved (Phoebe bournei) plantation forests using forest ecosystem model. Forest Ecology and Management. 300: 21-32.
50.Weand, M.P., Arthur, M.A., Lovett, G.M., McCulley, R.L., and Weathers, K.C. 2010. Effects of tree species and N additions on forest floor microbial communities and extracellular enzyme activities. Soil Biology and Biochemistry. 42: 2161-2173.
51.Wood, M. 1995. Environmental soil biology, 2nd ed., Blackie Academic and Professional, Glasgow, 150p.
52.
Yatso, K.N., and
Lilleskov, E.A. 2016. Effects of tree leaf litter, deer fecal pellets and soil properties on growth of an introduced earthworm (
Lumbricus terrestris): Implications for invasion dynamics. Soil Biology and Biochemistry.
94: 19-181.
53.Yavitt, J.B., and Williams, C.J. 2015. Linking tree species identity to anaerobic microbial activity in a forested wetland soil via leaf litter decomposition and leaf carbon fractions. Plant and Soil. 390: 293-305.
54.Yuan, Z., and Chen, H.Y. 2010. Fine root biomass, production, turnover rates and nutrient contents in boreal forest ecosystems in relation to species, climate, fertility and stand age: literature review and meta-analyses. Critical Reviews in Plant Sciences. 29: 204221.
55.Zifcakova, L., Vetrovsky, T., Howe, A., and Barldrian, P. 2016. Microbial activity in forest soil reflects the changes in ecosystem properties between summer and winter. Environmental Microbiology. 18: 288-301.