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Restoration of Exotic Annual Grass-Invaded Rangelands: Importance of Seed Mix Composition

Published online by Cambridge University Press:  20 January 2017

Kirk W. Davies*
Affiliation:
USDA-Agricultural Research Service, Eastern Oregon Agricultural Research Center, 67826-A Hwy 205, Burns, Oregon 97720
Dustin D. Johnson
Affiliation:
Department of Animal and Rangeland Science Oregon State University, Eastern Oregon Agricultural Research Center, 67826-A Hwy 205, Burns, OR 97720
Aleta M. Nafus
Affiliation:
Department of Animal and Rangeland Science Oregon State University, Eastern Oregon Agricultural Research Center, 67826-A Hwy 205, Burns, OR 97720
*
Corresponding author's E-mail: kirk.davies@oregonstate.edu

Abstract

Restoration of exotic annual grass-invaded rangelands is needed to improve ecosystem function and services. Increasing plant species richness is generally believed to increase resistance to invasion and increase desired vegetation. However, the effects of species richness and individual plant life forms in seed mixes used to restore rangelands invaded by exotic annual grasses have not been investigated. We evaluated the effects of seeding different life forms and increasing species richness in seed mixes seeded after exotic annual grass control to restore desirable vegetation (perennial herbaceous vegetation) and limit exotic annual grasses at two sites in southeastern Oregon. We also investigated the effects of seeding two commonly used perennial grasses individually and together on plant community characteristics. Large perennial grasses, the dominant herbaceous plant life form, were the most important group to seed for increasing perennial herbaceous vegetation cover and density. We did not find evidence that greater seed mix species richness increased perennial herbaceous vegetation or decreased exotic annual grass dominance more than seeding only the dominant species. None of the seed mixes had a significant effect on exotic annual grass cover or density, but the lack of a measured effect may have been caused by low annual grass propagule pressure in the first couple of years after annual grass control and an unusually wet-cool spring in the third year post-seeding. Although our results suggest that seeding only the dominant plant life form will likely maximize plant community productivity and resistance to invasion in exotic annual grass-invaded northern Great Basin arid rangelands, seeding a species rich seed mix may have benefits to higher tropic levels and community stability. Clearly the dominant species are the most prudent to include in seed mixes to restore exotic annual grass-invaded plant communities, especially with finite resources and an increasingly large area in need of restoration.

Type
Research Article
Copyright
Copyright © Weed Science Society of America 

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References

Literature Cited

Asay, KH, Horton, WH, Jensen, KB, Palazzo, AJ (2001) Merits of native and introduced Triticeae grasses on semiarid rangelands. Can J Plant Sci 81:4552 Google Scholar
Barnett, JK, Crawford, JA (1994) Pre-laying nutrition of sage grouse hens in Oregon. J Range Manage 47:114118 Google Scholar
Bates, JD, Miller, RF, Svejcar, T (2005) Long-term successional trends following western juniper cutting. Rangeland Ecol Manag 58:533541 Google Scholar
Brooks, ML, D'Antonio, CM, Richardson, DM, Grace, JB, Keeley, JE, DiTomaso, JM, Hobbs, RJ, Pellant, M, Pyke, D (2004) Effect of invasive alien plants on fire regimes. BioScience 54:677688 Google Scholar
Cardinale, BJ, Wright, JP, Cadotte, MW, Carroll, IT, Hector, A, Srivastava, DS, Loreau, M, Weis, JJ (2007) Impacts of plant diversity on biomass production increase through time because of species complementarity. P Natl Acad Sci 104:1812318128 Google Scholar
Chambers, JC, Roundy, RA, Blank, RR, Meyer, SE, Whittaker, A (2007) What makes Great Basin sagebrush ecosystems invasible by Bromus tectorum? Ecol Monogr 77:117145 Google Scholar
D'Antonio, CM, Vitousek, PM (1992) Biological invasions by exotic grasses, the grass/fire cycle, and global change. Ann Rev Ecol Syst 23:6387 Google Scholar
Davies, KW (2008) Medusahead dispersal and establishment in sagebrush steppe plant communities. Rangeland Ecol Manag 61:110115 Google Scholar
Davies, KW (2010) Revegetation of medusahead-invaded sagebrush steppe. Rangeland Ecol Manag 63:564571 Google Scholar
Davies, KW (2011) Plant community diversity and native plant abundance decline with increasing abundance of an exotic annual grass. Oecologia 167:481491 Google Scholar
Davies, KW, Bates, JD (2010) Vegetation characteristics of mountain and Wyoming big sagebrush plant communities in the northern Great Basin. Rangeland Ecol Manag 63:461466 Google Scholar
Davies, KW, Bates, JD, Miller, RF (2006) Vegetation characteristics across part of the Wyoming big sagebrush alliance. Rangeland Ecol Manag 59:567575 Google Scholar
Davies, KW, Nafus, AM (2013) Exotic annual grass invasion alters fuel amounts, continuity, and moisture content. Int J Wildland Fire 22:353358 Google Scholar
Davies, KW, Nafus, AM, Sheley, RL (2010) Non-native competitive perennial grass impedes the spread of an invasive annual grass. Biol Invas 12:31873194 Google Scholar
Davies, KW, Pokorny, ML, Sheley, RL, James, JJ (2007) Influence of plant functional group removal on soil inorganic nitrogen concentrations in native grasslands. Rangeland Ecol Manag 60:304310 Google Scholar
Davies, KW, Sheley, RL (2011) Promoting native vegetation and diversity in exotic annual grass infestations. Restor Ecol 19:159165 Google Scholar
Davies, KW, Svejcar, TJ (2008) Comparison of medusahead-invaded and noninvaded Wyoming big sagebrush steppe in southeastern Oregon. Rangeland Ecol Manag 61:623629 Google Scholar
Dukes, JS (2001) Biodiversity and invasibility in grassland microcosms. Oecologia 126:563568 Google Scholar
Duncan, CE, Jachetta, JJ, Brown, ML, Carrithers, VF, Clark, JK, DiTomaso, JM, Lym, RG, McDaniel, KC, Renz, MJ, Rice, PM (2004) Assessing the economic, environmental, and societal losses from invasive plants on rangelands and wildlands. Weed Technol 18:14111416 Google Scholar
Goebel, CJ, Tazi, M, Harris, GA (1988) Secar bluebunch wheatgrass as a competitor to medusahead. J Range Manage 41:8889 Google Scholar
Gregg, MA, Barnett, JK, Crawford, JA (2008) Temporal variation in diet and nutrition of preincubating greater sage-grouse. Rangeland Ecol Manag 61:535542 Google Scholar
Gunnell, KT, Monaco, TA, Call, CA, Ransom, CV (2010) Seedling interference and niche differentiation between crested wheatgrass and contrasting native Great Basin species. Rangeland Ecol Manag 63:443449 Google Scholar
Haddad, NM, Tilman, D, Haarstad, J, Ritchie, M, Knops, JMH (2001) Contrasting effects of plant richness and composition on insect communities: a field experiment. Am Nat 158:1735 Google Scholar
Henderson, DC, Naeth, MA (2005) Multi-scale impacts of crested wheatgrass invasion in mixed-grass prairie. Biol Invas 7:639650 Google Scholar
Hironaka, M, Sindelar, BW (1973) Reproductive success of squirreltail in medusahead infested ranges. J Range Manage 26:219221 Google Scholar
Hironaka, M, Sindelar, BW (1975) Growth characteristics of squirreltail seedlings in competition with medusahead. J Range Manage 28:283285 Google Scholar
Hobbs, RJ, Atkins, L (1988) Effect of disturbance and nutrient addition on communities in the Western Australian wheatbelt. Aust J Ecol 13:171179 Google Scholar
Hobbs, RJ, Atkins, L (1990) Fire related dynamics of a Banksia woodland in south-western Australia. Aust J Bot 38:97110 Google Scholar
Hooper, DU, Dukes, JS (2010) Functional composition controls invasion success in a California serpentine grassland. J Ecol 98:764777 Google Scholar
Hooper, DU, Vitousek, PM (1998) Effects of plant composition and diversity on nutrient cycling. Ecol Monogr 68:121149 Google Scholar
Hughes, F, Vitousek, PM, Tunison, T (1991) Alien grass invasion and fire in the seasonal submontane zone of Hawaii. Ecology 72:743746 Google Scholar
James, JJ, Davies, KW, Sheley, RL, Aanderud, ZT (2008) Linking nitrogen partitioning and species abundance to invasion resistance in the Great Basin. Oecologia 156:637648 Google Scholar
Jiang, XL, Zhang, WG, Wang, G (2007) Biodiversity effects on biomass production and invasion resistance in annual verse perennial plant communities. Biodivers Conserv 16:19831994 Google Scholar
Johnson, GD, Boyce, MS (1990) Feeding trials with insects in the diet of sage grouse chicks. J Wildl Manage 54:8991 Google Scholar
Jones, TA (1998) Viewpoint: the present status and future prospects of squirreltail research. J Range Manage 51:326331 Google Scholar
Knapp, PA (1995) Intermountain West lightning-caused fires: climatic predictors of area burned. J Range Manage 48:8591 Google Scholar
Knops, JMH, Tilman, D, Haddad, NM, Naeem, S, Mitchell, CE, Haarstad, J, Ritchie, ME, Howe, KM, Reich, PB, Siemann, E, Groth, J (1999) Effects of plant richness on invasion dynamics, disease outbreaks, insects abundances, and diversity. Ecol Lett 2:286293 Google Scholar
Kyser, GB, DiTomaso, JM, Doran, MP, Orloff, SB, Wilson, RG, Lancaster, DL, Lile, DF, Porath, ML (2007) Control of medusahead (Taeniatherum caput-medusae) and other annual grasses with imazapic. Weed Technol 21:6575 Google Scholar
Littell, RC, Milliken, GA, Stroup, WW, Wolfinger, RD (1996) SAS System for Mixed Models. SAS Institue Inc. Cary, North Carolina. 633 pGoogle Scholar
Liu, J, Dong, M, Miao, SL, Li, ZY, Song, MH, Wang, RQ (2006) Invasive alien plants in China: role of clonality and geographical origin. Biol Invasions 8:14611470 Google Scholar
Mack, RN (1981) Invasion of Bromus tectorum L. into western North America: an ecological chronicle. Agro-Ecosystems 7:145165 Google Scholar
Milton, S (2004) Grasses as invasive alien plants in South Africa. S Afr J Sci 100:6975 Google Scholar
Monaco, TA, Osmond, TM, Dewey, SA (2005) Medusahead control with fall- and spring-applied herbicides in northern Utah foothills Weed Technol. 19:653658 Google Scholar
Musil, CF, Milton, SJ, Davis, GW (2005) The threat of alien invasive grasses to lowland Cape floral diversity: an empirical appraisal of the effectiveness of practical control strategies. S Afr J Sci 101:337344 Google Scholar
Pokorny, ML, Sheley, RL, Zabinski, CA, Engel, RE, Svejcar, TJ, Borkowski, JJ (2005) Plant functional group diversity as a mechanism for invasion resistance. Restor Ecol 13:448459 Google Scholar
Purdie, RW, Slatyer, RO (1976) Vegetation succession after fire in sclerophyll woodland communities in south-eastern Australia. Aust J Ecol 1:223236 Google Scholar
Sheley, RL, Bingham, BS, Davies, KW (2012) Rehabilitating medusahead (Taeniatherum caput-medusae) infested rangelands using a single-entry approach. Weed Sci 60:612617 Google Scholar
Sheley, RL, Carpinelli, MF (2005) Creating weed-resistant plant communities using niche-differentiated nonnative species. Rangeland Ecol Manag 58:480488 Google Scholar
Sheley, RL, Carpinelli, MF, Morghan, MJR (2007) Effects of imazapic on target and nontarget vegetation during revegetation. Weed Technol 21:10711081 Google Scholar
Sheley, RL, James, J (2010) Resistance of native plant functional groups to invasion by medusahead (Taeniatherum caput-medusae). Invasive Plant Sci Manag 3:294300 Google Scholar
Smith, MD, Wilcox, JC, Kelly, T, Knapp, AK (2004) Dominance not richness determines invasibility of tallgrass prairie. Oikos 106:253262 Google Scholar
Tilman, D (1999) The ecological consequences of changes in biodiversity: a search for general principles. Ecology 80:14551474 Google Scholar
Tilman, D, Lehman, CL, Thomson, KT (1997) Plant diversity and ecosystem productivity: theoretical considerations. P Natl Acad Sci 94:18571861 Google Scholar
Torell, PJ, Erickson, LC, Haas, RH (1961) The medusahead problem in Idaho. Weeds 9:124131 Google Scholar
Vasquez, E, Sheley, R, Svejcar, T (2008) Nitrogen enhances the competitive ability of cheatgrass (Bromus tectorum) relative to native grasses. Invasive Plant Sci Manag 1:287295 Google Scholar
Western Regional Climate Center (2012) Cooperative climatological data summaries. (http://www.wrcc.dri.edu/climatedata/climsum/) Accessed on October 2, 2012Google Scholar
Young, JA (1992) Ecology and management of medusahead (Taeniatherum caput-medusae ssp. asperum [SIMK.] Melderis). Great Basin Nat 52:245252 Google Scholar
Young, K, Mangold, J (2008) Medusahead outperforms squirreltail through interference and growth rate. Invasive Plant Sci Manag 1:7381 Google Scholar