Climate and Vegetation Change, Hillslope Soil Erosion, and the Complex Nature of Late Quaternary Environmental Transitions, Eastern Mojave Desert, USA
Dados Bibliográficos
| ID | 15801997 |
|---|---|
| Autores | Joseph R McAuliffe (0000-0002-9940-8342, Desert Botanical Garden, autor correspondente), Leslie D McFadden (University of New Mexico), Lyman P Persico (0000-0003-1027-3021, Whitman College), Tammy M Rittenour (0000-0003-1925-0395, Utah State University) |
| Ano | 2022 |
| Volume | 5 |
| Fascículo | 4 |
| Páginas | 43-43 |
| Data de publicação | 2022-10-14 |
| Peer Reviewed | Sim |
| Open Access | Sim |
| Tipo | ARTICLE |
| Periódico | Quaternary (JOURNAL) |
| Identificadores do periódico | ISSN: 2571-550X • E-ISSN: 2571-550X |
| Editora | Multidisciplinary Digital Publishing Institute (PUBLISHER • CH) |
| DOI | 10.3390/quat5040043 |
| OpenAlex | W4306399563 |
| Idioma | EN |
| Referências citadas | 61 |
In what are now the warm deserts of the American Southwest, direct effects of changing climate on plant distributions are typically viewed as the principal driver of vegetation changes that followed the late Pleistocene–Holocene transition (LPH). However, at a semi-arid site in the eastern Mojave Desert, the transition to modern, shrub-dominated desert scrub on xeric, south-aspect hillslopes occurred only after the erosion of relatively thick soils toward the end of the mid-Holocene. Soils with well-developed Bt horizons began to form in the late Pleistocene on both north- and south-aspect hillslopes through the entrapment and accumulation of aeolian sediments in coarse colluvium. Those soils are capable of absorbing and retaining substantial moisture and support relatively dense stands of perennial C4 grasses that have diffuse, fibrous root systems. The age of alluvial deposits on the basin floor indicates a surge in sediment production through the erosion of some of those hillslope soils toward the end of the mid-Holocene. However, that erosion was largely limited to the more xeric, more sparsely vegetated, south-aspect hillslopes. The soils formed on mesic north-aspect hillslopes remain largely non-eroded to the present day, demonstrating the central role of vegetation in modulating erosion and sediment supply. The loss of soils from south-aspect hillslopes fundamentally changed the capacity of those environments to absorb and store moisture, and altered the depth and temporal durations of plant-available moisture. Those hydrological changes drove a loss of perennial C4 grasses and a transition to dominance by xerophytic plants—shrubs with deeper taproots capable of extracting moisture stored within bedrock joints and fractures, and shallow-rooted succulent plants that store moisture internally. Following the LPH, vegetation change at the site apparently occurred in two distinct phases separated in time: (1) initial vegetation changes driven directly by increasing climatic aridity and (2) subsequent changes linked to the later episode of soil erosion. Although climate shifts ultimately generate vegetation changes, the proximate mechanisms to which plants directly respond can lag far behind climatic transitions and involve complex relationships of vegetation, soils, and changing soil hydrologic conditions
Aeolian processes · Alluvium · Colluvium · Deserts and xeric shrublands · Erosion · Geography · Geomorphology · Holocene · Hydrology (agriculture · Physical geography · Quaternary · Soil water · Vegetation (pathology · Aeolian processes and effects · Geology and Paleoclimatology Research · Soil erosion and sediment transport · Ecology · Geology · Oceanography · Paleontology · Soil Science
A Middle Holocene Vegetation Record from the Mojave Desert of North America and its Paleoclimatic Significance
Influence of Late Quaternary Climatic Changes on Geomorphic and Pedogenic Processes on a Desert Piedmont, Eastern Mojave Desert, California
Calibrated, late Quaternary age indices using clast rubification and soil development on alluvial surfaces in Pilot Knob Valley, Mojave Desert, southeastern California
Holocene environmental change and vegetation contraction in the Sonoran Desert
Rock type and dust influx control accretionary soil development on hillslopes in the Sandia Mountains, New Mexico, USA
Global ecosystem thresholds driven by aridity
Variability of El Niño/Southern Oscillation activity at millennial timescales during the Holocene epoch
Morphological and Genetic Sequences of Carbonate Accumulation in Desert Soils
Biological Feedbacks in Global Desertification
Desert Ecosystems
El Niño variability off Peru during the last 20,000 years
Holocene landscape response to seasonality of storms in the Mojave Desert
Soil horizon development and the tempo and modes of vegetation change during the Holocene in a Sonoran Desert basin, USA
Ecology of Sonoran Desert Plants and Plant Communities
| Velocidade de citação | historical |
|---|---|
| Altamente citado | Não |