生态学研究生必读经典文献目录 著作: 1. 张金屯.数量生态学.北京:科学出版社.2004 2. 宋永昌主编.植被生态学.上海:华东师范大学出版社.2001 3. 傅伯杰,陈利顶等.景观生态学原理及应用.北京:科学出版社.2001 4. 蒋高明主编.植物生理生态学.北京:高等教育出版社.2004 5. Charles J.Krebs. ECOLOGY. 北京:科学出版社(影印版) ,2003 6. Charles J.Krebs. Ecological Methodology (Second Edition). California: An imprint of Addison Wesley Longman.Inc.1998 7. Kevin McGarigal.Sam Cushman.Susan Stafford. Multivariate Statistics for Wildlife and Ecology Research. New York: Springer, 2000 8. Anne E. Magurran. Measuring Biological Diversity. Oxford: Blackwell Publishing company. 2003 9. Manuel C. Molles, Jr. 生态学:概念与应用 Ecology: Concepts and Applications 北京:科学出版社(影印版),2000 10. Principles of Terrestrial Ecosystem Ecology , F.Stuart Chapin III, Pamela A.Matsom ,Harold A.Mooney ,Springer-Verlag New York,Inc,2002 11. 基因 IX(genes IX). Benjamin Lewin, 科学出版社,2006。 12. 植物生物化学与分子生物学,Bob Buchanan, Russell L.Jones,Wilhelm Gruissem 主编;美国植物生物学家学会(American Society of Plant Biologists, ASPB)出 版; 瞿礼嘉、顾红雅、白书农、赵进东、陈章良等主译;2004 年 2 月出版。 参考文章: 1. Buchmann, N., 2000. Biotic and abiotic factors controlling soil respiration in Picea abies stands. Soil Biology and Biochemistry. 32, 16251635 2. Curiel Yuste, J., Janssens, I.A., Carrara, A., Meiresonne, L., Ceulemans, R., 2003. Interactive effects of temperature and precipitation on soil respiration in a temperate maritime pine forest. Tree Physiology. 23, 12631270 3. Dilustro, J., Collins, B., Duincan, L., Crawford, C., 2005. Moisture and soil texture effects on soil CO2 efflux components in southeastern mixed pine forests, Forest Ecology and Management. 204, 8595 4. Flanagan, L.B., Johnson, B.G., 2005. Interacting effects of temperature, soil moisture and plant biomass production on ecosystem respiration in a northern temperate grassland. Agricultural and Forest Meteorology, 130, 237253 5. Gaumont-Guay, D., Andrew Black T., Griffis T.J., Barr A.G., Jassal, Morgensten K., Jass, R.S., Nesic Z., 2006b. Influence of temperature and drought on seasonal and interannual variation of soil, bole and ecosystem respiration in a boreal aspen stand. Agricultural and Forest Meteorology. 140, 203219 6. Vincent, G., Shahriari, A. R., Lucot, E., Badot P., Epron, D., 2006. Spatial and seasonal variations in soil respiration in a temperate deciduous forest with fluctuating water table. Soil Biology and Biochemistry. 38, 25272535 7. Xu, M., Qi, Y., 2001. Soilsurface CO2 efflux and its spatial and temporal variations in a young ponderosa pine plantation in northern California. Global Change Biology. 7, 667677 8. Pregitzer K.S. Woody plants, carbon allocation and fine roots. New Phytologist, 2003, 158(3): 419~430 9. Jaba´ggy, E.G., Jackson, R.B., 2000. The vertical distribution of soil organic carbon and its relation to climate and vegetation. Ecol. Appl. 10, 423–436. 10. Ross, D.J., Tate, K.R., Scott, N.A., et al., 2002. Afforestation of pastures with Pinus radiata influences soil carbon and nitrogen pools and mineralization and microbial properties. Aust. J. Soil Res. 40, 1303–1318. 11. Silver, W.L., Ostertag, R., Lugo, A.E., 2000. The potential for carbon sequestration through reforestation of abandoned tropical agricultural and pasture lands. Rest. Ecol. 8, 394–407 12. Oberthu¨r, S., Ott, H.E., 2001. The Kyoto Protocol: International Climate Policy for the 21st Century. Springer, Berlin, p. 350. 13. Wilcox, C.S., Dominguez, J., Parmelee, R.W., McCartney, D.A., 2002. Soil carbon and nitrogen dynamics in Lumbricus terrestris. L. middens in four arable, a pasture, and a forest ecosystems. Biol. Fertil. Soils 36, 26–34. 14. Prichard, S.J., Peterson, D.L., Hammer, R.D., 2000. Carbon distribution in sub-alpine forests and meadows of the Olympic Mountain, Washington. Soil Sci. Soc. Am. J. 64, 1834–1845. 15. Gulledge, J., Schimel, J.P., 2000. Controls on soil carbon dioxide and methane fluxes in a variety of taiga for stands in interior Alaska. Ecosystems 3, 269–282. 16. Banfield, G.E., Bhatti, J.S., Jiang, H., et al., 2002. Variability in regional scale estimates of carbon stocks in boreal forest ecosystems: results from west-central Alberta. Forest Ecol. Manag. 169, 15–27. 17. Powers, J.S., Schlesinger, W.H., 2002. Relationships among soil carbon distributions and biophysical factors at nested spatial scales in rainforests of northeastern Costa Rica. Geoderma 109, 165–190. 18. Chen X W, Li B L. Change in soil carbon and nutrient storage after human disturbance of a primary Korean pine forest in Northeast China [J]. Forest Ecology and Management, 2003,186: 197-206. 19. Cregg, B.M. and J.W. Zhang. 2001. Physiology and morphology of Pinus sylvestris seedlings from diverse sources under cyclic drought stress. For. Ecol. Mgmt. 154:131-139. 20. Barton, A.M., T.W. Swetnam, and C.H. Baisan. 2001. Arizona pine (Pinus arizonica) stand dynamics: local and regional factors in a fireprone madrean gallery forest of Southeast Arizona, USA. Landscape Ecol. 16(4):351-369. 21. Persans, M. W., K. Nieman, and D. E. Salt, 2001. Functional activity and role of cation-efflux family members in Ni hyperaccumulation in Thlaspi goesingense. PNAS. Vol. 98, No. 17, Pg. 9995-10000. August 14, 2001. 22. Ute Kra¨ mer. Phytoremediation: novel approaches to cleaning up polluted soils. Current Opinion in Biotechnology. 2005, 16:133–141 23. Alonso, JM, AN Stepanova, TJ Leisse, CJ Kim and JR Ecker et al. (2003). Genome-Wide Insertional Mutagenesis of Arabidopsis thaliana. Science 301(5633), 653-657. 24. Caldwell, DG, N McCallum, P Shaw, GJ Muehlbauer, DF Marshall and R Waugh (2004). A structured mutant population for forward and reverse genetics in Barley (Hordeum vulgare L). Plant J 40(1), 143-150. 25. Hieter, P and M Boguski (1997). Functional Genomics, It's All How You Read It. Science 278(5338), 601-602. 26. Ostergaard, L and MF Yanofsky (2004). Establishing gene function by mutagenesis in Arabidopsis thaliana. Plant J 39(5), 682-696 27. Chinnusamy, V., K. Schumaker and J.K. Zhu (2004). Molecular genetic perspectives on cross-talk and specificity in abiotic stress signalling in plants. J Exp Bot 55 (395) 225-236. 28. Mizoguchi, T., K. Ichimura, H. Naested, E. Andreasson, U. Lindhart, B. Johansen, H.B. Nielsen, M. Lacy, M.J. Austin and J.E. Parker et al. (2000). MAP kinase cascades in Arabidopsis: their roles in stress and hormone responses. Results Probl Cell Differ 27, 29-38. 29. Petersen, M., P. Brodersen, H. Naested, E. Andreasson, U. Lindhart, B. Johansen, H.B. Nielsen, M. Lacy, M.J. Austin and J.E. Parker et al. (2000). Arabidopsis map kinase 4 negatively regulates systemic acquired resistance. Cell 103 (7) 1111-1120. 30. Zwerger, K. and H. Hirt (2001). Recent advances in plant MAP kinase signalling. Biol Chem 382 (8) 1123-1131. 31. Thornley, J.H.M., Cannell, M.G.R., 2000. Managing forests for wood yield and carbon storage: a theoretical study. Tree Phys. 20, 477–484. 32. Yanai, R.D., Currie, W.S., Goodale, C.L., 2003. Soil carbon dynamics after forest harvest: an ecosystem paradigm reconsidered. Ecosystems 56, 197–212. 33. Jackson, R.B., Schenk, H.J., Jobbagy, E.G., Canadell, J., Colello, G.D., et al., 2000. Below-ground consequences of vegetation change and their treatment in models. Ecol. Appl. 10, 470–483. 34. Nyland, R.D., 2001. Silviculture: Concepts and Applications, second ed. McGraw Hill, Boston, p. 682. 35. Kalbitz, K.S., Solinger, S., Park, J.H., Michalzik, B., Matzer, E., 2000. Controls on the dynamics of dissolved organic matter in soils: a review. Soil Sci. Soc. 165, 277–304. 36. O’Neill, K.P., Kasischke, E.S., Richter, D.D., 2002. Environmental controls on soil CO2 flux following fire in black spruce, white spruce, and aspen stands of interior Alaska. Can. J. Forest Res. 32, 1525–1541. 37. Parker, J.L., Fernandez, I.J., Rustad, L.E., Norton, S.A., 2001. Effects of nitrogen enrichment, wildfire, and harvesting on forest soil carbon and nitrogen. Soil Sci. Soc. Am. J. 65, 1248–1255. 38. Magill, A.H., Aber, J.D., 2000. Variation in soil net mineralization rates with dissolved organic carbon additions. Soil Biol. Biochem. 32, 597–601. 39. Resh, S.C., Binkley, D., Parrotta, J.A., 2002. Greater soil carbon sequestration under nitrogen fixing trees compared with eucalyptus species. Ecosystems 5, 217–231. 40. Akala, V.A., Lal, R., 2001. Soil organic carbon pools and sequestration rates in reclaimed mine soils in Ohio. J. Environ. Qual. 30, 2098–2104. 41. Akala, V.A., Lal, R., 2000. Potential of mineland reclamation for soil C sequestration in Ohio. Land Degrad. Dev. 11, 383–392. 42. Pouyat, R., Groffman, P., Yesilonis, I., Hernandez, L., 2002. Soil carbon pools and fluxes in urban ecosystems. Environ. Pollut. 116, 107–118. 43. Morgan, M.G., Pitelka, L.F., Shevliakova, E., 2001. Elicitation of expert judgments of climate change impacts on forest ecosystems. Climatic Change 49, 279–307. 44. McGuire, A.D., Wirth, C., Apps, M., et al., 2002. Environmental variation, vegetation distribution, carbon dynamics and water/energy exchange at high latitudes. J. Veg. Sci. 13, 301–314. 45. Nisbet, T., 2002. Implications of climate change: soil and water. Forest Commun. Bull. 125, 53–67. 46. Goran I A, Riitta H. Changes in carbon stores in Swedish forest soil due to increased biomass harvest and temperatures analysed with a semi-empirical model [J]. Forest Ecology and Management, 2003,174: 25-37. 47. King, J.S., Pregitzer, K.S., Zak, D.R.,et al., 2001. Fine-root biomass and fluxes of soil carbon in young stands of paper birch a trembling aspen as affected by elevated atmospheric CO2 and tropospheric O3. Oecologia 128, 237–250. 48. Matamala, R., Schlesinger, W.H., 2000. Effects of elevated atmospheric CO2 on fine root production and activity in an intact temperate forest ecosystem. Global Change Biol. 6, 967–979. 49. Dilustro, J.J., Day, F.P., Drake, B.G., Hinkle, C.R., 2002. Abundance, production and mortality of fine roots under elevated atmospheric CO2 in an oak-scrub ecosystem. Environ. Exp. Bot. 48, 149–159. 50. Neff, J.C., Hooper, D.U., 2002. Vegetation and climate controls on potential CO2, DOC and DON production in northern latitude soils. Global Change Biol. 8, 872–884. 51. House J I, Prentice I C, Ramankutty N, et al. Reconciling apparent inconsistencies in estimates of terrestrial CO2 sources and sinks [J]. Tellus, 2003, 55B: 345-363. 52. Lal, R., 2001. Soil Carbon Sequestration and the Greenhouse Effect, vol. 57 Soil Science Society American Special Publication, Madison, WI, 236 pp. 53. Metting, F.B., Smith, J.L., Amthor, J.S., Izaurralde, R.C., 2001. Science needs and new technology for increasing soil carbon sequestration. Climatic Change 51, 11–34. 54. Curtis, P.S., Hanson, P.J., Bolstad, P., et al., 2002.Biometric and eddy-covariance based estimates of annual carbon storage in five eastern North American deciduous forests. Agric. Forest Meterol. 113, 3–19. 55. Yanai, R.D., Arthur, M.A., Siccama, T.G., et al., 2000. Challenges of measuring forest floor organic matter dynamics: repeated measures from a chronosequence. Forest Ecol. Manag. 138, 273–283. 56. Conant, R.T., Smith, G.R., Paustian, K., 2003. Spatial variability of soil carbon in forested and cultivated sites: implications for change detection. J. Environ. Qual. 32, 278–286. 57. Zhou, J.Z., Xia, B.C., Treves, D.S., Wu, L.Y., Marsh, T.L., O’Neill, R.V., Palumbo, A.V., Tiedje, J.M., 2002. Spatial and resource factors influencing high microbial diversity in soil. Appl. Environ. Microbiol. 68, 326–334. 58. Treves, D.S., Xia, B., Zhou, J., Tiedje, J.M., 2003. A two-species test of the hypothesis that spatial isolation influences microbial diversity in soil. Microb. Ecol. 45, 20–28. 59. Griffiths, B.S., Ritz, K., Wheatley, R., et al., 2001. An examination of the biodiversityecosystem function relationship in arable soil microbial communities. Soil Biol. Biochem. 33, 1713–1722. 60. Seta¨la¨, H., McLean, M.A., 2004. Decomposition rate of organic substrates in relation to the species diversity of soil saprophytic fungi. Oecologia 139, 98–107. 61. Leckie, S.E., Prescott, C.E., Grayston, S.J., et al., 2004c. Characterization of humus microbial communities in adjacent forests that differ in nitrogen availability. Microb. Ecol. 48, 29–40. 62. Pennanen, T., Stro¨mmer, R., Markkola, A., Fritze, H., 2001. Microbial and plant community structure across a primary succession gradient. Scand. J. For. Res. 16, 37–43. 63. Saetre, P., Ba°a°th, E., 2000. Spatial variation and patterns of soil microbial community structure in a mixed spruce–birch stand. Soil Biol. Biochem. 32, 909–917. 64. Priha, O., Grayston, S.J., Hiukka, R., Pennanen, T., Smolander, A., 2001. Microbial community structure and characteristics of the organic matter in soils under Pinus sylvestris, Picea abies, and Betula pendula at two forest sites. Biol. Fertil. Soils 33, 17–24. 65. Bradley, R.L., Titus, B.D., Hogg, K., Preston, C.M., Prescott, C.E., Kimmins, J.P., 2000. Assessing the controls on soil mineral-N cycling rates in managed coastal western hemlock ecosystems of British Columbia. J. Sustain. For. 10, 213–219. 66. Nunan, N., Wu, K., Young, I.M., Crawford, J.W., Ritz, K., 2002. In situ spatial patterns of soil bacterial populations, mapped at multiple spatial scales, in an arable soil. Microb. Ecol. 44, 296– 305. 67. Rønn, R., McCaig, A.E., Griffiths, B.S., Prosser, J.I., 2002. Impact of protozoan grazing on bacterial community structure in soil microcosms. Appl. Environ. Microbiol. 68, 6094–6105. 68. Fritze, H., Pietika¨inen, J., Pennanen, T., 2000. Distribution of microbial biomass and phospholipid fatty acids in Podzol profiles under coniferous forest. Eur. J. Soil Sci. 51, 565–573. 69. Fierer, N., Schimel, J.P., Holden, P.A., 2003b. Variations in microbial community composition through two soil depth profiles. Soil Biol. Biochem. 35, 167–176. 70. Griffiths, B.S., Ritz, K., Ebblewhite, N., Dobson, G., 1999a. Soil microbial community structure: effects of substrate loading rates. Soil Biol. Biochem. 31, 145–153. 71. McLean, M.A., Huhta, V., 2000. Temporal and spatial fluctuations in moisture affect humus microfungal community structure in microcosms. Biol. Fertil. Soils 32, 114–119. 72. Myers, R.T., Zak, D.R., White, D.C., Peacock, A., 2001. Landscapelevel patterns of microbial community composition and substrate use in upland forest ecosystems. Soil Sci. Soc. Am. J. 65, 359–367. 73. Chen, D.M., Cairney, J.W.G., 2002. Investigation of the influence of prescribed burning on ITS profiles of ectomycorrhizal and other soil fungi at three Australian sclerophyll forest sites. Mycol. Res. 106, 532–540. 74. Thirukkumaran, C.M., Parkinson, D., 2000. Microbial respiration, biomass, metabolic quotient and litter decomposition in a lodgepole pine forest floor amended with nitrogen and phosphorous fertilizers. Soil Biol. Biochem. 32, 59–66. 75. Zak, D.R., Pregitzer, K.S., Curtis, P.S., Holmes, W.E., 2000a. Atmospheric CO2 and the composition and function of soil microbial communities. Ecol. Appl. 10, 47–59. 76. Klamer, M., Roberts, M.S., Levine, L.H., Drake, B.G., Garland, J.L., 2002. Influence of elevated CO2 on the fungal community in a coastal scrub oak forest soil investigated with terminal-restric- tion fragment length polymorphism analysis. Appl. Environ. Microbiol. 68, 4370–4376. 77. Phillips, R.L., Zak, D.R., Holmes, W.E., White, D.C., 2002. Microbial community composition and function beneath temperate trees exposed to elevated atmospheric carbon dioxide and ozone. Oecologia 131, 236–244. 78. Bridge, P., Spooner, B., 2001. Soil fungi: diversity and detection. Plant Soil 232, 147–154. 79. Anderson, I.C., Cairney, J.W.G., 2004. Diversity and ecology of soil fungal communities: increased understanding through application of molecular techniques. Environ. Microbiol. 6, 769–779. 80. Preston-Mafham, J., Boddy, L., Randerson, P.F., 2002. Analysis of microbial community functional diversity using sole-carbonsource utilisation profiles—a critique. FEMS Microbiol. Ecol. 42, 1–14. 81. Campbell, C.D., Chapman, S.J., Cameron, C.M., et al., 2003. A rapid microtiter plate method to measure carbon dioxide evolved from carbon substrate amendments so as to determine the physiological profiles of soil microbial communities by using whole soil. Appl. Environ. Microbiol. 69, 3593–3599. 82. Dickie, I.A., Xu, B., Koide, R.T., 2002. Vertical niche differentiation of ectomycorrhizal hyphae in soil as shown by T-RFLP. New Phytol. 156, 527–535. 83. Li, Q., Allen, H.L., Wollum II, A.G., 2004. Microbial biomass and bacterial functional diversity in forest soils: effects of organic matter removal, compaction, and vegetation control. Soil Bio. Biochem. 36, 571–579. 84. Powers, R.F., Scott, D.A., Sanchez, F.G., Voldseth, R.A., Page- Dumroese, D., Elioff, J.D., Stone, D.M., 2005. The North American long-term soil productivity experiment: findings from the first decade of research. Forest Ecol. Manage. 220, 31–50. 85. Xu, X.K., Inubushi, K., 2005. Mineralization of nitrogen and N2O production potentials in acid forest soils under controlled aerobic conditions. Soil Sci. Plant Nutrition 51, 683–688. 86. Xu X., Inubushi K., Sakamoto K., 2006.Effect of vegetations and temperature on microbial biomass carbon and metabolic quotients of temperate volcanic forest soils. Geoderma. 136, 310–319. 87. Hoyos, N., Comerford, N.B., 2005. Land use and landscape effects on aggregate stability and total carbon of Andisols from the Colombian Andes. Geoderma 129, 268–278. 88. Huygens, D., Boeckx, P., Van Cleemput, O., Oyarzun, C.E., Godoy, R., 2005. Aggregate and soil organic carbon dynamics in south Chilean Andisols. Biogeosciences 2, 159–174. 89. Kemmitt, S.J., Wright, D., Goulding, K.W.T., Jones, D.L., 2006. pH regulation of carbon and nitrogen dynamics in two agricultural soils. Soil Bio. Biochem. 38, 898–911. 90. Yao, H., He, Z., Wilson, M.J., Campbell, C.D., 2000. Microbial biomass and community structure in a sequence of soils with increasing fertility and changing land use. Microbial Ecol. 40, 223–237. 91. Yan, T., Yang, L., Campbell, C.D., 2003. Microbial biomass and metabolic quotient of soils under different land use in the Three Gorges Reservoir area. Geoderma. 115, 129–138. 92. Tokuda, S., Hayatsu, M., 2002. Soil microbial biomass and fluorescein diacetate hydrolytic activity in Japanese acidic tea field soils. Soil Science and Plant Nutrition 48, 865–869. 93. Wang, W.J., Dalal, R.C., Moody, P.W., Smith, C.J., 2003. Relationships of soil respiration to microbial biomass, substrate availability and clay content. Soil Biol. Biochem. 35, 273–284. 94. Leckie, S.E., 2005. Methods of microbial community profiling and their application to forest soils. Forest Ecolo. Manage. 220, 88–106 95. Kajimoto, T., Matsuura, Y., Osawa, A., et al., 2003. Root system development of Larix gmelinii trees by micro-scale conditions of permafrost soils in central Siberia. Plant and Soil. 255:281-292. 96. Jia, G., Cao, J., Wang, C., et al., 2005. Microbial biomass and nutrients in soil at the different stages of secondary forest succession in Ziwulin, northwest China. For. Ecol. Manage. 217, 117–125. 97. Heviaa, G.G., Buschiazzoa, D.E., Heppera, E.N., 2003. Organic matter in size fractions of soils of the semiarid Argentina. Effects of climate, soil texture and management. Geoderma 116, 265– 277. 98. Dai W.H., Huang Y. , 2006. Relation of soil organic matter concentration to climate and altitude in zonal soils of China. Catena. 65, 87– 94. 99. Leif, K., Karin V.A., Weslien, P., et al., 2005. Soil C: N ratio as a scalar parameter to predict nitrous oxide emissions. Glob. Chan. Biol. 11, 1142-1153. 100.Nan, C.V., James A.E., 2000. Soil properties important to the restoration of Shasta red fir barrens in the Siskiyou Mountains. For. Ecol. Manage. 138, 427-434. 101.Li X.Z., Chen Z.Z., 2004. Soil microbial biomass C and N along a climatic transect in the Mongolian steppe. Biol Fertil Soils. 39, 344–351. 102.Garcia, C., Hernanderz, T., Roldan, A., et al., 2002. Effect of plant cover decline on chemical and microbiological parameters under Mediterranean climate. Soil Biol. Biochem. 34, 635–642. 103.Guo L B, Gifford R M. Soil carbon stocks and land use change: a metal analysis [J]. Global Change Bio, 2002, 8: 345–360. 104.Rutigliano F A, Ascoli R D, Santo A V. Soil microbial metabolism and nutrient status in a Mediterranean area was affected by plant cover [J]. Soil Biol. Biochem. 2004, 36: 1719–1729. 105.Singh A N, Raghubanshi A S, Singh J S. Comparative performance and restoration potential of two Albizia species planted on mine spoil in a dry tropical region [J]. Indi Ecol Eng, 2004, 22: 123–140. 106.Bauhus, J., Khanna, P.K, Hopmans, P., Weston, C., 2002. Is soil carbon a useful indicator of sustainable forest soil management?—a case study from native eucalypt forests of south-eastern Australia. For. Ecol. Manage. 171, 59–74. 107.Günther S, Holger K. Bulk soil C to N ratio as a simple measure of net N mineralization from stabilized soil organic matter in sandy arable soils [J]. Soil Biol. Biochem, 2003, 35: 629–632. 108.Leif K, Karin V A, Weslien P, et al. Soil C: N ratio as a scalar parameter to predict nitrous oxide emissions [J]. Glob Chan Biol, 2005, 11: 1142-1153. 109.Yang S S, Fan H Y, Yang C K, et al. Microbial population of spruce soil in Tatachia mountain of Taiwan [J]. Chemosphere, 2003, 52: 1489–1499. 110.Park J H; Kalbitz K; Matzner E., 2002. Soil organic carbon as affected by afforestation with Eucalyptus and Pinus in the Cerrado region of Brazil. Soil Biol. Biochem. 387, 813-822. 111.Chen, C.R., Xu. Z.H., 2005. Soil carbon and nitrogen pools and microbial properties in a 6-year-old slash pine plantation of subtropical Australia. For. Ecol. Manage. 206, 237–247.