APPLICATIONS OF PHYSIOLOGICAL ECOLOGY TO WEED SCIENCE

被引:12
作者
HOLT, JS
机构
关键词
ECOPHYSIOLOGY; ENVIRONMENT; PHOTOSYNTHESIS; GAS EXCHANGE; TECHNIQUES;
D O I
10.1017/S0043174500073318
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Weed scientists are trained broadly in agronomy, botany, chemistry, soils, and other agricultural disciplines. The study of weeds, rather than the techniques used or the questions asked, unifies weed scientists around a common focus. It is often difficult for weed scientists to identify closely with any one scientific discipline, since the techniques and questions of many disciplines are needed to address problems posed by weeds. One discipline with relevance and potential for addressing weed science problems is physiological ecology. The study of the functioning or adaptation of plants in relation to environmental influences has its roots in both classical ecology and experimental physiology. Application of this discipline to weed science may take an environmental approach (e.g., studying limiting factors in the environment), a physiological approach (e.g., studying the responses of critical plant processes to environmental stress), or a more autecological approach (e.g., studying the physiological basis for the adaptation of a particular weed to a particular habitat). Many methodologies and technologies are available for both field and laboratory investigations. For example, photosynthesis, a major determinant of plant growth, can be investigated in the field at the leaf, plant, or canopy level using plant growth analysis or a portable infrared gas analyzer (IRGA) and appropriate assimilation chambers. Investigations of photosynthesis in the laboratory can focus on the plant, leaf, chloroplast, or thylakoid level using an IRGA or the techniques of polarography (measurement of evolved oxygen) or fluorometry. Application of such approaches to weed science should improve our understanding of the basis for particular weed problems and thus broaden our options for management.
引用
收藏
页码:521 / 528
页数:8
相关论文
共 101 条
[81]  
Sestak Z., 1971, PLANT PHOTOSYNTHETIC
[82]   COMPARISON OF CHLOROPHYLL FLUORESCENCE AND FRESH WEIGHT AS HERBICIDE BIOASSAY TECHNIQUES [J].
SHAW, DR ;
PEEPER, TF ;
NOFZIGER, DL .
WEED SCIENCE, 1985, 33 (01) :29-33
[83]   EVALUATION OF CHLOROPHYLL FLUORESCENCE PARAMETERS FOR AN INTACT-PLANT HERBICIDE BIOASSAY [J].
SHAW, DR ;
PEEPER, TF ;
NOFZIGER, DL .
CROP SCIENCE, 1986, 26 (04) :756-760
[84]  
SHEEHY JE, 1985, INSTRUMENTATION ENV, P5
[85]  
SIVAK MN, 1986, BIOL CONTROL PHOTOSY, P1
[86]  
Slatyer R. O., 1961, PRACTICAL MICROCLIMA
[87]   RESPONSE OF SOYBEANS (GLYCINE-MAX) AND 4 BROADLEAF WEEDS TO REDUCED IRRADIANCE [J].
STOLLER, EW ;
MYERS, RA .
WEED SCIENCE, 1989, 37 (04) :570-574
[88]   COMPARISON OF TRIAZINE-RESISTANT AND TRIAZINE-SUSCEPTIBLE BIOTYPES OF SENECIO-VULGARIS AND THEIR F1 HYBRIDS [J].
STOWE, AE ;
HOLT, JS .
PLANT PHYSIOLOGY, 1988, 87 (01) :183-189
[89]   MULTIPLE ACTION SITES FOR PHOTOSYSTEM-II HERBICIDES AS REVEALED BY DELAYED FLUORESCENCE [J].
VASILEV, IR ;
MATORIN, DN ;
LYADSKY, VV ;
VENEDIKTOV, PS .
PHOTOSYNTHESIS RESEARCH, 1988, 15 (01) :33-39
[90]   PLANT-GROWTH ANALYSIS - RE-EXAMINATION OF THE METHODS OF CALCULATION OF RELATIVE GROWTH AND NET ASSIMILATION RATES WITHOUT USING FITTED FUNCTIONS [J].
VENUS, JC ;
CAUSTON, DR .
ANNALS OF BOTANY, 1979, 43 (05) :633-638