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Multi-scale factors and long-term responses of Chihuahuan Desert grasses to drought

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Abstract

Factors with variation at broad (e.g., climate) and fine scales (e.g., soil texture) that influence local processes at the plant scale (e.g., competition) have often been used to infer controls on spatial patterns and temporal trends in vegetation. However, these factors can be insufficient to explain spatial and temporal variation in grass cover for arid and semiarid grasslands during an extreme drought that promotes woody plant encroachment. Transport of materials among patches may also be important to this variation. We used long-term cover data (1915–2001) combined with recently collected field data and spatial databases from a site in the northern Chihuahuan Desert to assess temporal trends in cover and the relative importance of factors at three scales (plant, patch, landscape unit) in explaining spatial variation in grass cover. We examined cover of five important grass species from two topographic positions before, during, and after the extreme drought of the 1950s. Our results show that dynamics before, during, and after the drought varied by species rather than by topographic position. Different factors were related to cover of each species in each time period. Factors at the landscape unit scale (rainfall, stocking rate) were related to grass cover in the pre- and post-drought periods whereas only the plant-scale factor of soil texture was significantly related to cover of two upland species during the drought. Patch-scale factors associated with the redistribution of water (microtopography) were important for different species in the pre- and post-drought period. Another patch-scale factor, distance from historic shrub populations, was important to the persistence of the dominant grass in uplands (Bouteloua eriopoda) through time. Our results suggest the importance of local processes during the drought, and transport processes before and after the drought with different relationships for different species. Disentangling the relative importance of factors at different spatial scales to spatial patterns and long-term trends in grass cover can provide new insights into the key processes driving these historic patterns, and can be used to improve forecasts of vegetation change in arid and semiarid areas.

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References

  • Abrahamson WG, Layne JN (2003) Long-term patterns of acorn production for five oak species in xeric Florida uplands. Ecology 84:2476–2492

    Google Scholar 

  • Anderson JE, Inouye RS (2001) Landscape-scale changes in plant species abundance and biodiversity of a sagebrush steppe over 45 years. Ecol Monogr 71:531–556

    Article  Google Scholar 

  • Arnold GW, Dudzinski ML (1978) Ethology of the free-ranging domestic animal. Elsevier Scientific Publishing Company, New York

    Google Scholar 

  • Archer S (1994) Woody plant encroachment into Southwestern grasslands and savannas: rates, patterns and proximate causes. In: Vavra M, Laycock W, Pieper R (eds) Ecological implications of livestock herbivory in the West. Society for Range Management, Denver, CO, USA, pp 13–68

    Google Scholar 

  • Bailey DW, Gross JE, Laca EA, Rittenhouse LR, Coughenour MB, Swift DM, Sims PL (1996) Mechanisms that result in large herbivore grazing distribution patterns. J Range Manag 49:386–400

    Google Scholar 

  • Biondini ME, Patton BD, Nyren PE (1998) Grazing intensity and ecosystem processes in a northern mixed-grass prairie. Ecol Appl 8:469–479

    Google Scholar 

  • Breshears DD, Whicker JJ, Johansen MP, Pinder JE III (2003) Wind and water erosion and transport in semi-arid shrubland, grassland, and forest ecosystems: quantifying dominance of horizontal wind-driven transport. Earth Surf Proc Land 28:1189–1209

    Article  Google Scholar 

  • Brown BJ, Allen TFH (1989) The importance of scale in evaluating herbivory impacts. Oikos 54:189–194

    Google Scholar 

  • Buffington LC, Herbel CH (1965) Vegetational changes on a semidesert grassland range from 1858 to 1963. Ecol Monogr 35:139–164

    Article  Google Scholar 

  • Chevan A, Sutherland M (1991) Hierarchical partitioning. Amer Stat 45:90–96

    Article  Google Scholar 

  • Conley W, Conley MR, Karl TR (1992) A computational study of episodic events and historical context in long-term ecological process: climate and grazing in the northern Chihuahuan Desert. Coenoses 7:55–60

    Google Scholar 

  • Foster DR, Knight DH, Franklin JF (1998) Landscape patterns and legacies resulting from large, infrequent forest disturbances. Ecosystems 1:497–510

    Article  Google Scholar 

  • Fredrickson E, Havstad KM, Estell R, Hyder P (1998) Perspectives on desertification: southwestern United States. J Arid Environ 39:191–207

    Article  Google Scholar 

  • Gee GW, Bauder JW (1986) Particle-size analysis. In: Klute A (ed) Methods of soil analysis. Part I. Madison WI, ASA and SSSA, Agronomy Monographs, pp 383–411

    Google Scholar 

  • Gibbens RP, Beck RF (1987) Increase in number of dominant plants and dominance classes on a grassland in the northern Chihuahuan desert. J Range Manag 40:136–139

    Google Scholar 

  • Gibbens RP, Beck RF (1988) Changes in grass basal area and forb densities over a 64-year period on grassland types of the Jornada Experimental Range. J Range Manag 41:186–192

    Google Scholar 

  • Gibbens RP, Beck RF, Whitford WG (In press) Long-term vegetation trends in the Jornada basin: the 1950’s drought in historical perspective. In: Betancourt JL, Diaz HF (eds) The 1950s drought in the American Southwest: Hydrological, ecological and socioeconomic impacts. University of Arizona Press, Tucson, AZ, USA

  • Gibbens RP, McNeely RP, Havstad KM, Beck RF, Nolen B (2005) Vegetation changes in the Jornada Basin from 1858 to 1998. J Arid Environ 61:651–668

    Article  Google Scholar 

  • Gibbens RP, Tromble JM, Hennessy JT, Cardenas M (1983) Soil movement in mesquite dunelands and former grasslands of Southern New Mexico from 1933–1980. J Range Manag 36:145–148

    Google Scholar 

  • Gross BD (1984) Demographic sensitivity of two perennial desert grasses (Bouteloua eriopoda Torr. and Sporobolus flexuosus Thurb.) with inferences toward ecological dominance and subdominance. Ph.D. Dissertation. New Mexico State University, Las Cruces, NM, USA. 179 pp

  • Hennessy JT, Gibbens RP, Tromble J, Cardenas M (1983) Water properties of caliche. J Range Manag 36:723–726

    CAS  Google Scholar 

  • Herbel CH, Ares FN, Wright RA (1972) Drought effects on a semidesert grassland range. Ecology 53:1084–1093

    Article  Google Scholar 

  • Heyerdahl EK, Brubaker LB, Agee JK (2001) Spatial controls of historic fire regimes: a multiscale example from the Interior West, USA. Ecology 82:660–678

    Article  Google Scholar 

  • Hobbie JE, Carpenter SR, Grimm NB, Gosz JR, Seastedt TR (2003) The U.S. Long Term Ecological Research Program. BioScience 53:21–32

    Article  Google Scholar 

  • Hochstrasser T, Kröel-Dulay Gy, Peters DPC, Gosz JR (2002) Vegetation and climate characteristics of arid and semi-arid grasslands in North America and their biome transition zone. J Arid Environ 51:55–78

    Article  Google Scholar 

  • Hochstrasser T, Peters DPC (2004) Subdominant species distributions in microsites arund two lifeforms at a desert grassland-shrubland transition. J Veg Sci 15:615–622

    Article  Google Scholar 

  • Humphrey RR (1958) The desert grassland: a history of vegetational change and an analysis of causes. Bot Rev 24:193–252

    Article  Google Scholar 

  • Kie JG, Bowyer T, Nicholson MC, Boroski BB, Loft ER (2002) Landscape heterogeneity at differing scales: effects on spatial distribution of mule deer. Ecology 83:530–544

    Google Scholar 

  • Ludwig JA, Tongway DJ, Freudenberger DO (eds) (1997) Landscape ecology: function and management: principles from Australia’s rangelands. CSIRO Publishing, Melbourne, Australia

    Google Scholar 

  • Ludwig JA, Wilcox BP, Breshears DD, Tongway DJ, Imeson AC (2005) Vegetation patches and runoff-erosion as interacting ecohydrological processes in semiarid landscapes. Ecology 86:288–297

    Google Scholar 

  • Mack RN, Simberloff D, Lonsdale WM, Evans H, Clout M, Bazzaz FA (2000) Biotic invasions: causes, epidemiology, global consequences, and control. Ecol Appl 10:689–710

    Google Scholar 

  • MacNally R (2000) Regression and model-building in conservation biology, biogeography and ecology: the distinction between – and reconciliation of – ‘predictive’ and ‘explanatory’ models. Biodiv Conserv 9:655–671

    Article  Google Scholar 

  • MacNally R (2002) Multiple regression and inference in ecology and conservation biology: further comments on identifying important predictor variables. Biodiv Conserv 11:1397–1401

    Article  Google Scholar 

  • McAuliffe JR (1994) Landscape evolution, soil formation, and ecological patterns and processes in Sonoran Desert Bajadas. Ecol Monogr: 111–148

  • McEuen AB, Curran LM (2004) Seed dispersal and recruitment limitation across spatial scales in temperate forest fragments. Ecology 85:507–518

    Google Scholar 

  • Monger HC (2002) Arid soils. In: encyclopedia of soil science. New York, Marcel-Dekker, pp 84–88

  • Nash MS, Whitford WG, de Soyza AG, Van Zee JW, Havstad KM (1999) Livestock activity and Chihuahuan desert annual-plant communities: boundary analysis of disturbance gradients. Ecol Appl 9:814–823

    Google Scholar 

  • Nelson EW (1934) The influence of precipitation and grazing upon black grama grass range. USDA Technical Bulletin No. 409, Washington, DC

  • Okin GS, Gillette DA (2001) Distribution of vegetation in wind-dominated landscapes: implications for wind erosion modeling and landscape processes. J Geophys Res Atmos 106(D9):9673–9683

    Article  Google Scholar 

  • Parshall T, Foster DR, Faison E, MacDonald D, Hansen BCS (2003) Long-term history of vegetation and fire in pitch pine-oak forests on Cape Cod, Massachusetts. Ecology 84:736–748

    Google Scholar 

  • Paulsen HA, Ares FN (1962) Trends in carrying capacity and vegetation on an arid southwestern range. J Range Manag 14:78–83

    Google Scholar 

  • Peters DPC, Bestelmeyer BT, Herrick JE, Fredrickson E, Monger HC, Havstad KM. Disentangling complex landscapes: new insights to arid and semiarid system dynamics. BioScience (in press)

  • Peters DPC, Gibbens RP (2006) Plant communities in the Jornada Basin: the dynamic landscape. In: Havstad KM, Schlesinger WH, Huenneke LF (eds) Structure and function of a Chihuahuan Desert ecosystem: the Jornada Basin LTER. Oxford University Press, New York

    Google Scholar 

  • Peters DPC, Pielke RA Sr, Bestelmeyer BT, Allen CD, Munson McGee S, Havstad KM (2004) Cross-scale interactions, nonlinearities, and forecasting catastrophic events. Proc Natl Acad Sci 101:15130–15135

    Article  PubMed  CAS  Google Scholar 

  • Peters DPC, Schlesinger WH, Herrick JE, Huenneke LF, Havstad KM (2006) Future directions in Jornada research: developing and applying an interactive landscape model to solve old and new problems. In: Havstad KM, Schlesinger WH, Huenneke LF (eds) Structure and function of a Chihuahuan Desert ecosystem: the Jornada Basin LTER. Oxford University Press, New York

    Google Scholar 

  • Peters DPC, Yao J, Havstad KM (2004) Insights to invasive species dynamics from desertification studies. Weed Technol 18:1221–1225

    Article  Google Scholar 

  • Powers JS, Sollins P, Harmon ME, Jones JA (1999). Plant-pest interactions in time and space: a Douglas-fir bark beetle outbreak as a case study. Landscape Ecol 14:105–120

    Article  Google Scholar 

  • Reynolds JF, Virginia RA, Kemp PR, De Soyza AG, Tremmel DC (1999) Impact of drought on desert shrubs: effect of seasonality and degree of resource island development. Ecol Monogr 69:69–106

    Article  Google Scholar 

  • Saxton KE, Rawls WJ, Romberger JS, Papandick JS (1986) Estimating generalized soil–water characteristics from texture. Soil Sci Soc Amer J 50:1031–1036

    Article  Google Scholar 

  • Schlesinger WH, Reynolds JF, Cunningham GL, Huenneke LF, Jarrell WM, Virginia RA, Whitford WG (1990). Biological feedbacks in global desertification. Science 247:1043–1048

    PubMed  CAS  Google Scholar 

  • Senft RL, Coughenour MB, Bailey DW, Rittenhouse LR, Sala OE, Swift DM (1987) Large herbivore foraging and ecological hierarchies. BioScience 37:789–799

    Article  Google Scholar 

  • Steffen W, Jager J, Carson DJ, Bradshaw C (eds) (2002) Challenges of a changing Earth. Springer, Berlin

    Google Scholar 

  • Teaschner TB (2001) Influence of soil depth and texture on mesquite (Prosopis glandulosa) density and canopy cover in the northern Chihuahuan Desert, New Mexico. Influence of soil depth and texture on mesquite (Prosopis glandulosa) density and canopy cover in the northern Chihuahuan Desert, New Mexico, New Mexico State University, Las Cruces, New Mexico

  • Tongway DJ, Valentin C, Seghieri J (eds) (2001) Banded vegetation patterning in arid and semiarid environments. Springer, New York

    Google Scholar 

  • Turner MG, Collins SL, Lugo AE, Magnuson JJ, Rupp TS, Swanson FJ (2003) Disturbance dynamics and ecological response: the contribution of the Long-Term Ecological Research. BioScience 53:46–56

    Article  Google Scholar 

  • Van de Koppel J, Reitkerk M, van Langevelde F, Kumar L, Klausmier CA, Fryxell JM, Hearne JW, van Andel J, de Ridder N, Skidmore A, Stroosnijder L, Prins HHT (2002) Spatial heterogeneity and irreversible vegetation change in semiarid grazing systems. Amer Nat 159:209–218

    Article  Google Scholar 

  • Walsh CJ, MacNally R (2004) The hier.part package version 1.0 Hierarchical Partitioning. http://cran.r-project.org/.

  • Wainwright JA, Parsons AJ, Schlesinger WH, Abrahams AD (2002) Hydrology-vegetation interactions in areas of discontinuous flow on a semi-arid bajada, southern New Mexico. J Arid Environ 51:219–258

    Article  Google Scholar 

  • Whittaker RH (1975) Communities and ecosystems. MacMillan Publishing Company, New York

    Google Scholar 

  • With KA (2002) The landscape ecology of invasive spread. Conserv Biol 16:1192–1203

    Article  Google Scholar 

  • Wondzell SM, Cornelius JM, Cunningham GL (1990) Vegetation patterns, microtopography, and soils on a Chihuahuan desert playa. J Veg Sci 1:403–410

    Article  Google Scholar 

  • Woodhouse CA, Overpeck JT (1998) 2000 years of drought variability in the Central United States. Bull Amer Meteorol Soc 79:2693–2714

    Article  Google Scholar 

  • Wright RG, Van Dyne GM (1976) Environmental factors influencing semidesert grassland perennial grass demography. Southwest Nat 21:259–274

    Google Scholar 

Download references

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Correspondence to Debra P. C. Peters.

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Yao, J., Peters, D.P.C., Havstad, K.M. et al. Multi-scale factors and long-term responses of Chihuahuan Desert grasses to drought. Landscape Ecol 21, 1217–1231 (2006). https://doi.org/10.1007/s10980-006-0025-8

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