Phloem mobility of xenobiotics .8. A short review

被引:57
作者
Hsu, FC [1 ]
Kleier, DA [1 ]
机构
[1] DUPONT AGR PROD,STINE HASKELL RES CTR,NEWARK,DE 19714
关键词
xenobiotic; phloem mobility; model; review;
D O I
10.1093/jxb/47.Special_Issue.1265
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Great strides have been made in the last 15 years in our understanding of phloem mobility of xenobiotics. The subject has been transformed from a poorly understood phenomenon to a process that can be accurately described by the physicochemical properties of the xenobiotic and the nature of the vascular system through which it moves. The basic tenet of the unified mathematical model is that the combination of the permeability and the acid dissociation constant (pK(a)) determines phloem mobility, and this has been largely validated for many compounds in many plant systems. More precise testing of the model is, however, difficult due to the lack of requisite knowledge on the membrane composition of the sieve tube, permeation characteristics and sieve-cell biochemistry. Furthermore, attempts to relate quantitatively a compound's intrinsic mobility to its whole-plant mobility are often confounded by competing loss mechanisms. On the practical side, there is the challenge of coming up with efficacious phloem-mobile pesticides. Considerations are forwarded to explain why so far there are numerous phloem-mobile herbicides and yet precious few such insecticides and fungicides, and why the situation might be difficult to change. The knowledge of phloem mobility is robust enough to allow specific structural prescriptions to impart such mobility to existing pesticides. However, such structural changes often lead to a reduction of pesticidal activity. Recently, it has been demonstrated that this problem can be circumvented by combining oxamyl glucuronide (a phloem-mobile pro-nematicide) with a transgenic tobacco plant harboring a root-specific P-glucuronidase gene to release oxamyl for root-knot nematode control. This pro-pesticide and in situ activation strategy is one way to use the existing body of knowledge for practical purposes. The same principle should be generally applicable to other plant-xenobiotic technologies.
引用
收藏
页码:1265 / 1271
页数:7
相关论文
共 38 条
[31]   H+-TRANSLOCATING ATPASES - ADVANCES USING MEMBRANE-VESICLES [J].
SZE, H .
ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 1985, 36 :175-208
[32]  
Tomlin C., 1994, PESTICIDE MANUAL, V10th
[33]   SIMPLE THEORY REGARDING AMBIMOBILITY OF XENOBIOTICS WITH SPECIAL REFERENCE TO THE NEMATICIDE, OXAMYL [J].
TYREE, MT ;
PETERSON, CA ;
EDGINGTON, LV .
PLANT PHYSIOLOGY, 1979, 63 (02) :367-374
[34]  
WADE M, 1985, BCPC MONOGRAPH, V31, P455
[35]   MONITORING PHLOEM UNLOADING AND POST-PHLOEM TRANSPORT BY MICROPERFUSION OF ATTACHED WHEAT GRAINS [J].
WANG, N ;
FISHER, DB .
PLANT PHYSIOLOGY, 1994, 104 (01) :7-16
[36]   WALL GROWTH, PROTEIN EXCRETION AND MORPHOGENESIS IN FUNGI [J].
WESSELS, JGH .
NEW PHYTOLOGIST, 1993, 123 (03) :397-413
[37]  
WESSELS JGH, 1994, ANNU REV PHYTOPATHOL, V32, P413, DOI 10.1146/annurev.py.32.090194.002213
[38]   SYSTEMIC TRANSLOCATION OF C-14-LABELED METALAXYL IN TOMATO, AVOCADO, AND PERSEA-INDICA [J].
ZAKI, AI ;
ZENTMYER, GA ;
LEBARON, HM .
PHYTOPATHOLOGY, 1981, 71 (05) :509-514