Reexamining the empirical relation between plant growth and leaf photosynthesis

被引:91
作者
Kruger, EL
Volin, JC
机构
[1] Univ Wisconsin, Dept Forest Ecol & Management, Madison, WI 53706 USA
[2] Florida Atlantic Univ, Dept Biol Sci, Ft Lauderdale, FL 33314 USA
关键词
growth response coefficients; leaf area ratio; leaf mass ratio; net assimilation rate; relative growth rate; specific leaf area;
D O I
10.1071/FP05310
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Technological advances during the past several decades have greatly enhanced our ability to measure leaf photosynthesis virtually anywhere and under any condition. Associated with the resulting proliferation of gas-exchange data is a lingering uncertainty regarding the importance of such measurements when it comes to explaining intrinsic causes of plant growth variation. Accordingly, in this paper we rely on a compilation of data to address the following questions: from both statistical and mechanistic standpoints, how closely does plant growth correlate with measures of leaf photosynthesis? Moreover, in this context, does the importance of leaf photosynthesis as an explanatory variable differ among growth light environments? Across a wide array of species and environments, relative growth rate (RGR) was positively correlated with daily integrals of photosynthesis expressed per unit leaf area (A(area)), leaf mass (A(mass)), and plant mass (A(plant)). The amount of RGR variation explained by these relationships increased from 36% for the former to 93% for the latter. Notably, there was close agreement between observed RGR and that estimated from Aplant after adjustment for theoretical costs of tissue construction. Overall, based on an analysis of growth response coefficients (GRCs), gross assimilation rate (GAR), a photosynthesis-based estimate of biomass gain per unit leaf area, explained about as much growth variation as did leaf mass ratio (LMR) and specific leaf area (SLA). Further analysis of GRCs indicated that the importance of GAR in explaining growth variation increased with increasing light intensity. Clearly, when considered in combination with other key determinants, appropriate measures of leaf gas exchange effectively capture the fundamental role of leaf photosynthesis in plant growth variation.
引用
收藏
页码:421 / 429
页数:9
相关论文
共 59 条
[31]   Plant production and emission of volatile organic compounds [J].
Lerdau, M ;
Guenther, A ;
Monson, R .
BIOSCIENCE, 1997, 47 (06) :373-383
[32]   Growth temperature influences the underlying components of relative growth rate: an investigation using inherently fast- and slow-growing plant species [J].
Loveys, BR ;
Scheurwater, I ;
Pons, TL ;
Fitter, AH ;
Atkin, OK .
PLANT CELL AND ENVIRONMENT, 2002, 25 (08) :975-987
[33]   LEAF-AREA COMPENSATION AND NUTRIENT INTERACTIONS IN CO2-ENRICHED SEEDLINGS OF YELLOW-POPLAR (LIRIODENDRON-TULIPIFERA L) [J].
NORBY, RJ ;
ONEILL, EG .
NEW PHYTOLOGIST, 1991, 117 (04) :515-528
[34]   GROWTH DEPRESSION IN MYCORRHIZAL CITRUS AT HIGH-PHOSPHORUS SUPPLY - ANALYSIS OF CARBON COSTS [J].
PENG, SB ;
EISSENSTAT, DM ;
GRAHAM, JH ;
WILLIAMS, K ;
HODGE, NC .
PLANT PHYSIOLOGY, 1993, 101 (03) :1063-1071
[35]   CHEMICAL-COMPOSITION OF 24 WILD-SPECIES DIFFERING IN RELATIVE GROWTH-RATE [J].
POORTER, H ;
BERGKOTTE, M .
PLANT CELL AND ENVIRONMENT, 1992, 15 (02) :221-229
[36]  
Poorter H, 1998, INHERENT VARIATION IN PLANT GROWTH, P309
[37]   A genetic analysis of relative growth rate and underlying components in Hordeum spontaneum [J].
Poorter, H ;
van Rijn, CPE ;
Vanhala, TK ;
Verhoeven, KJF ;
de Jong, YEM ;
Stam, P ;
Lambers, H .
OECOLOGIA, 2005, 142 (03) :360-377
[38]   LEAF-AREA RATIO AND NET ASSIMILATION RATE OF 24 WILD-SPECIES DIFFERING IN RELATIVE GROWTH-RATE [J].
POORTER, H ;
REMKES, C .
OECOLOGIA, 1990, 83 (04) :553-559
[39]   GROWTH AND CARBON ECONOMY OF A FAST-GROWING AND A SLOW-GROWING GRASS SPECIES AS DEPENDENT ON ONTOGENY [J].
POORTER, H ;
POTHMANN, P .
NEW PHYTOLOGIST, 1992, 120 (01) :159-166
[40]   CARBON AND NITROGEN ECONOMY OF 24 WILD-SPECIES DIFFERING IN RELATIVE GROWTH-RATE [J].
POORTER, H ;
REMKES, C ;
LAMBERS, H .
PLANT PHYSIOLOGY, 1990, 94 (02) :621-627