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Ecological Characteristics of Ventenata dubia in the Intermountain Pacific Northwest

Published online by Cambridge University Press:  20 January 2017

John M. Wallace*
Affiliation:
Plant, Soil, and Entomological Department, University of Idaho, Moscow, ID 83844
Pamela L. S. Pavek
Affiliation:
USDA-NRCS–Pullman Plant Materials Center, Pullman, WA 99164
Timothy S. Prather
Affiliation:
Plant, Soil, and Entomological Department, University of Idaho, Moscow, ID 83844
*
Corresponding author's E-mail: [email protected]
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Abstract

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Ventenata dubia is an exotic winter annual grass that has invaded Conservation Reserve Program (CRP) lands, improved pastures, intensively managed hay fields, and rangelands within the Intermountain Pacific Northwest (PNW). Currently, producers are attempting to develop V. dubia management strategies with little knowledge of its life history traits. We conducted several studies to characterize V. dubia life history patterns. Preliminary germination trials were completed to describe primary and secondary dormancy characteristics. Field studies were conducted to evaluate (1) seed bank persistence patterns, (2) seedling emergence patterns under V. dubia litter, and (3) seedling emergence and phenological development patterns within timothy hay, CRP, and rangeland habitats. Preliminary germination trials suggest that the after-ripening period required for loss of dormancy does not exceed 30 d and that dormancy breakdown peaks at approximately 90 d, after which germination occurs over a wide range of temperatures (9 to 29 C). A small fraction (< 1%) of the seed bank remained germinable up to 3 yr after burial at 2 cm depth in a grassland habitat. Seedling emergence and survival was significantly greater under high V. dubia litter layers (100% cover) compared with bare surface during the drier study year because of higher soil moisture levels maintained under litter. Across habitat types, mean seedling emergence (50% of total) occurred between 33 and 94 growing degree days (GDD) after soil moisture rose above the permanent wilting point in the fall. Seedling emergence periodicity varied among habitat types in relation to spring seedling emergence, ranging from 0 to 13% of total emergence per year. Phenological development differed across sites and years by up to several hundred GDDs but was closely aligned to Julian days. This collection of studies improves our understanding of V. dubia life history traits and will aid integrated weed management strategies in the Intermountain PNW.

Type
Research Article
Copyright
Copyright © Weed Science Society of America 

Footnotes

Current address: Plant Science Department, Pennsylvania State University, University Park, PA 16802

References

Literature Cited

Barkworth, ME, Capels, KM, Long, S Ventenata . Pages 683684 in Flora of North America Editorial Committee, eds. Flora of North America North of Mexico. Volume 24, Magnoliophyta: Commelinidae (in part): Poaceae, part 1. New York and Oxford Oxford University Press Google Scholar
Butler, MD (2011) Rehabilitating Ventenata infested rangelands using herbicides in conjunction with bunchgrass seedings. Pages 108 in Proceedings of Western Society of Weed Science. Volume 64. Las Cruces, NM Western Society of Weed Science Google Scholar
Evans, RA, Young, JA (1970) Plant litter and establishment of alien annual weed species in rangeland communities. Weed Sci 18:697703 Google Scholar
Facelli, JM (1991) Plant litter: its dynamics and effects on plant community structure. Bot Rev 57:132 Google Scholar
Forcella, F, Arnold, RL, Sanchez, R, Ghersa, CM (2000) Modeling seedling emergence. Field Crop Res 67:123139 Google Scholar
Fountain, B (2011) Producing timothy hay and managing for the impacts of Ventenata . Pages 107108 in Proceedings of Western Society of Weed Science. Volume 64. Las Cruces, NM Western Society of Weed Science Google Scholar
Hardegree, SP, Van Vactor, SS (2000) Germination and emergence of primed grass seeds under field and simulated-field temperature regimes. Ann Bot 85:379390 Google Scholar
Harper, JP (1977) Population Biology of Plants. Chapter 5. New York–London–San Francisco Academic Press, 892 pGoogle Scholar
Holt, JS, Orcutt, DR (1996) Temperature thresholds for bud sprouting in perennial weeds and seed germination in cotton. Weed Sci 44:523533 Google Scholar
Knezevic, SZ, Evans, SP, Blankenship, EE, Van Acker, RE, Lindquist, JL (2002) Critical period for weed control: the concept and data analysis. Weed Sci 50:773786 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 Tech 21:6675 Google Scholar
Mack, RN, Pyke, DA (1983) Demography of Bromus tectorum: variation in time and space. J Ecol 71:6993 Google Scholar
McCloskey, WB, Prather, T, Lass, LW (2011) Classification of annual versus perennial grasses in rangelands: a first step towards a landscape decision tool. Pages 110 in Proceedings of Western Society of Weed Science. Volume 64. Las Cruces, NM Western Society of Weed Science Google Scholar
Meyer, SE, Allen, PS, Becktead, J (1997) Seed germination regulation in Bromus tectorum (Poaceae) and its ecological significance. Oikos 78:475485 Google Scholar
Milberg, P, Andersson, L (1998) Does cold stratification level out differences in seed germinability between populations? Plant Ecol 134:225234 Google Scholar
Monaco, TA, Creech, JE (2004) Sulfosulfuron effects on growth and photosynthesis of 15 range grasses. J Range Manage 57:490496 Google Scholar
Moore, KJ, Moser, LE, Vogel, KP, Waller, SS, Johnson, BE (1991) Describing and quantifying growth stages of perennial forage grasses. Agron J 83:10731077 Google Scholar
Northam, FE, Callihan, RH (1985) Germination of four annual grass weeds at three temperatures. Moscow, ID University of Idaho Weed Science Division Idaho Weed Control Report, Pp. 198199 Google Scholar
Nyamai, PA, Prather, TS, Wallace, JM (2011) Evaluating restoration methods across a range of plant communities dominated by invasive annual grasses to native perennial grasses. Invasive Plant Sci Manag 4:306316 Google Scholar
Patton, JE, Northam, FE, Callihan, RH (1985) Ventenata dubia germination studies. Moscow, ID University of Idaho Weed Science Division Idaho Weed Control Report, Pp. 196197 Google Scholar
Pavek, P, Wallace, JM, Prather, TS (2011) Ventenata biology and distribution in the Pacific Northwest. Pages 107 in Proceedings of Western Society of Weed Science. Volume 64. Las Cruces, NM Western Society of Weed Science Google Scholar
Rice, KJ, Dyer, AR (2001) Seed aging, delayed germination and reduced competitive ability in Bromus tectorum . Plant Ecol 155:237243 Google Scholar
Roach, DA, Wulff, RD (1987) Maternal effects in plants. Annu Rev Ecol Syst 18:209236 Google Scholar
Saxton, KE, Rawls, WJ (2006) Soil water characteristic estimates by texture and organic matter for hydrologic solutions. Soil Sci Soc Am J 70:15691578 Google Scholar
Sbatella, GM, Wilson, RG, Enloe, SF, Hicks, C (2011) Propoxycarbazone-sodium and imazapic effects on downy brome (Bromus tectorum) and newly seed perennial grasses. Invasive Plant Sci Manag 4:7886 Google Scholar
Sharma, MP, Vanden Born, WH (1978) The biology of Canadian weeds. 27. Avena fatua L. Can J Plant Sci 58:141157 Google Scholar
Sheley, R, Vasquez, E, Hoopes, C (2009) Functional group responses to reciprocal plant litter exchanges between native and invasive plant dominated grasslands. Invasive Plant Sci Manag 2:158165 Google Scholar
Smith, DC, Meyer, SE, Anderson, VJ (2008) Factors affecting Bromus tectorum seed bank carryover in Western Utah. Range Ecol Manag 61:430436 Google Scholar
Sperry, LJ, Belnap, J, Evans, RD (2006) Bromus tectorum alters nitrogen dynamics in an undisturbed arid grassland ecosystem. Ecology 87:603615 Google Scholar
Steinbauer, GP, Grigsby, BH (1957) Field and laboratory studies on the dormancy and germination of the seeds of chess (Bromus secalinus L.) and downy bromegrass (Bromus tectorum L.). Weeds 5:14 Google Scholar
Swanton, CJ, Mahoney, KJ, Chandler, K, Gulden, RH (2008) Integrated weed management: knowledge-based weed management systems. Weed Sci 56:168172 Google Scholar
Thill, DC, Beck, KG, Callihan, RH (1984) The biology of downy brome (Bromus tectorum). Weed Sci 32(Suppl 1):712 Google Scholar
Thill, DC, Schirman, RD, Appleby, AP (1980) Influence of after-ripening temperature and endogenous rhythms on downy brome (Bromus tectorum) germination. Weed Sci 28:321323 Google Scholar
[USDA-NASS] U.S. Department of Agriculture National Agricultural Statistics Service (2013) CropScape—Cropland Data Layer. 2011. http://nassgeodata.gmu.edu/CropScape/. Accessed June, 2013Google Scholar
Wallace, J, Prather, T (2011) Management of Ventenata in pasture and CRP. Pages 109110 in Proceedings of Western Society of Weed Science. Volume 64. Las Cruces, NM Western Society of Weed Science Google Scholar
Xu, S, Johnson-Maynard, JL, Prather, TS (2013) Earthworm density and biomass in relation to plant diversity and soil properties in a Palouse prairie remnant. Appl Soil Ecol 72:119127 Google Scholar
Young, JA (1992) Ecology and management of medusahead (Taeniatherum caput-medusae ssp. Asperum [Simk.] Melderis). Great Basin Nat 52:245252 Google Scholar