Rapid plant diversification: Planning for an evolutionary future

被引:126
作者
Cowling, RM
Pressey, RL
机构
[1] Univ Port Elizabeth, Dept Bot, Terr Ecol Res Unit, ZA-6000 Port Elizabeth, South Africa
[2] New S Wales Natl Parks & Wildlife Serv, Armidale, NSW 2350, Australia
关键词
D O I
10.1073/pnas.101093498
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Systematic conservation planning is a branch of conservation biology that seeks to identify spatially explicit options for the preservation of biodiversity. Alternative systems of conservation areas are predictions about effective ways of promoting the persistence of biodiversity; therefore, they should consider not only biodiversity pattern but also the ecological and evolutionary processes that maintain and generate species. Most research and application, however, has focused on pattern representation only. This paper outlines the development of a conservation system designed to preserve biodiversity pattern and process in the context of a rapidly changing environment. The study area is the Cape Floristic Region (CFR), a biodiversity hotspot of global significance, located in southwestern Africa. This region has experienced rapid (post-Pliocene) ecological diversification of many plant lineages; there are numerous genera with large clusters of closely related species (flocks) that have subdivided habitats at a very fine scare. The challenge is to design conservation systems that will preserve both the pattern of large numbers of species and various natural processes, including the potential for lineage turnover. We outline an approach for designing a system of conservation areas to incorporate the spatial components of the evolutionary processes that maintain and generate biodiversity in the CFR. We discuss the difficulty of assessing the requirements for pattern versus process representation in the face of ongoing threats to biodiversity, the difficulty of testing the predictions of alternative conservation systems, and the widespread need in conservation planning to incorporate and set targets for the spatial components (or surrogates) of processes.
引用
收藏
页码:5452 / 5457
页数:6
相关论文
共 65 条
[51]  
PRESSEY RL, 1999, PARKS, V5, P41
[52]  
Rebelo A.G., 1992, P309
[53]   PHYLOGENETIC AND SYSTEMATIC INFERENCES FROM CHLOROPLAST DNA AND ISOZYME VARIATION IN HELIANTHUS SECT HELIANTHUS (ASTERACEAE) [J].
RIESEBERG, LH ;
BECKSTROMSTERNBERG, SM ;
LISTON, A ;
ARIAS, DM .
SYSTEMATIC BOTANY, 1991, 16 (01) :50-76
[54]  
Rourke JP, 1972, J S AFR BOT S, V8, P1
[55]  
Rutherford M. C., 1986, Memoirs, Botanical Survey of South Africa
[56]  
Rutherford M. C., 1999, Diversity and Distributions, V5, P253, DOI 10.1046/j.1472-4642.1999.00061.x
[57]   Realized niche spaces and functional types: A framework for prediction of compositional change [J].
Rutherford, MC ;
OCallaghan, M ;
Hurford, JL ;
Powrie, LW ;
Schulze, RE ;
Kunz, RP ;
Davis, GW ;
Hoffman, MT ;
Mack, F .
JOURNAL OF BIOGEOGRAPHY, 1995, 22 (2-3) :523-531
[58]   FIRE-SURVIVAL STRATEGY - A CHARACTER OF TAXONOMIC, ECOLOGICAL AND EVOLUTIONARY IMPORTANCE IN FYNBOS LEGUMES [J].
SCHUTTE, AL ;
VLOK, JHJ ;
VANWYK, BE .
PLANT SYSTEMATICS AND EVOLUTION, 1995, 195 (3-4) :243-259
[59]  
SCHWARZBACH A, 1995, PL SYST EVOL S, V9, P159
[60]   THE INFLUENCE OF ANTS ON THE DISPERSAL DISTANCE AND SEEDLING RECRUITMENT OF LEUCOSPERMUM-CONOCARPODENDRON (L) BUEK (PROTEACEAE) [J].
SLINGSBY, P ;
BOND, WJ .
SOUTH AFRICAN JOURNAL OF BOTANY, 1985, 51 (01) :30-34