An Analysis of Translocation in the Phloem of the Bean Plant Using Tho, P, And C.

نویسندگان

  • O Biddulph
  • R Cory
چکیده

11. FOSTER, ROBERT J., MCRAE, D. HAROLD and BONNER, JAMES Auxin-antiauxin interaction at high auxin concentrations. Plant Physiol. 30: 323-327. 1955. 12. GALSTON, A. W. The effect of 2,3,5-triiodobenzoic acid on the growth and flowering of soybeans. Amer. Jour. Bot. 34: 356-360. 1947. 13. GALSTON, A. W. and SIEGEL, S. M. Antiperoxidative action of the cobaltous ion and its consequences for plant growth. Science 120: 1070-1071. 1954. 14. GREEN, MARION and FULLER, HARRY J. Indole-3acetic acid and flowering. Science 108: 415416. 1948. 15. HUNTER, F. E., JR. Oxidative phosphorylation during electron transport. In: Phosphorous Metabolism, I, W. D. McElroy and B. Glass, eds. Pp. 297-330. The Johns Hopkins Press, Baltimore, Maryland 1951. 16. HUSSEY, G. and GREGORY, F. G. The effect of auxin on the flowering behaviour of Wintex barley and Petkus rye. Plant Physiol. 29: 292-296. 1954. 17. KHUDAIRI, ABDUL-KARIM and HAMNER, K. C. The relative sensitivity of Xanthium leaves of different ages to photoperiodic induction. Plant Physiol. 29: 251-257. 1954. 18. KLEIN, W. H. and LEOPOLD, A. C. The effects of maleic hydrazide on flower initiation. Plant Physiol. 28: 293-298. 1953. 19. KRIBBEN, F. J. Wuchsstoffuntersuchungen. Ber. deut. bot. Ges. 67: 107-110. 1954. 20. LAIBACH, F. and KRIBBEN, F. J. Ein weiterer Beitrag zur Frage nach der Bedeutung des Wuchsstoffs fur die Bliutenbildung. Beitr. Biol. Pflanz. 29: 339352. 1953. 21. LANG, ANTON Gibberellin and flower formation. Naturwiss. 43: 544. 1956. 22. LEOPOLD, A. C. and GUERNSEY, FRANCES S. Interaction of auxin and temperatures in floral initiation. Science 118: 215-217. 1953. 23. LEOPOLD, A. C. and THIMANN, K. V. The effect of auxin on flower initiation. Amer. Jour. Bot. 36: 342-347. 1949. 24. LIVERMAN, JAMES L. The physiology of flowering. Ann. Rev. Plant Physiol. 6: 177-210. 1955. 25. LIVERMAN, J. L. and BONNER, J. The interaction of auxin and light in the growth responses of plants. Proe. Natl. Acad. Sci., U.S. 39: 905-916. 1953. 26. LIVERMAN, JAMES L. and LANG, ANTON Induction of flowering in long day plants by applied indoleacetic acid. Plant Physiol. 32: 147-150. 1956. 27. LOCKHART, JAMES A. and HAMNER, KARL Partial reactions in the formation of the floral stimulus in Xanthium. Plant Physiol. 29: 509-513. 1954. 28. MILLER, C. 0. Relationship of the cobalt and light effects on expansion of etiolated bean leaf disks. Plant Physiol. 27: 408412. 1952. 29. NAKAYAMA, SHIDAI and KIKUCHI, TADATOSHI Experimental researches on photoperiodism (4). The effect of auxin application on flower formation. Miyazaki University Bull. 1: 154-165. 1956. 30. NAYLOR, AUBREY W. Observations on the effects of maleic hydrazide on flowering of tobacco, maize, and cocklebur. Proc. Natl. Acad. Sci., U.S. 36: 230-232. 1950. 31. RESENDE, FLAVIO and VIANA, MARIA J. Some effects of synthetic auxins and antiauxins on the floral state. Bol. soc. portug. cienc. nat. 2a S: 74-78. 1952. 32. SALISBURY, F. B. The dual role of auxin in flowering. Plant Physiol. 30: 327-334. 1955. 33. SALISBURY, FRANK B. and BONNER, JAMES The reactions of the photoinductive dark period. Plant Physiol. 31: 141-147. 1956. 34. SCOTT, RALPH A., JR. and LIVERMAN, JAMES L. Promotion of leaf expansion by kinetin and benzylaminopurine. Plant Physiol. 31: 321-322. 1956. 35. VANSENDEN, HELENE Untersuchungen iiber den Einfluss von Heteroauxin und anderen Faktoren auf die Blutenbildung bei der Kurztagspflanze Kalanchoe blossfeldiana. Biol. Zentr. 70: 537-565. 1951. 36. SHIGEURA, G. Blossom formation and fruit setting in the Litchi. Agr. Expt. Sta. Univ. of Hawaii, Ann. Report 1948: 138. 1948. 37. WITTWER, S. H., BUKOVAC, M. J., SELL, H. H. and WELLER, L. E. Some effects of gibberellin on flowering and fruit setting. Plant Physiol. 32: 3941. 1957. 38. DE ZEEUW, D. Leaf induced inhibition of flowering in tomato. Koninkl. Ned. Akad. Wetenschap., ProC. 59: 535-540. 1956. 39. DE ZEEUW, D. and LEOPOLD, A. C. The promotion of floral initiation by auxin. Amer. Jour. Bot. 43: 47-50. 1956.

برای دانلود متن کامل این مقاله و بیش از 32 میلیون مقاله دیگر ابتدا ثبت نام کنید

ثبت نام

اگر عضو سایت هستید لطفا وارد حساب کاربری خود شوید

منابع مشابه

Translocation of sugar and tritiated water in squash plants.

When (14)C-sugar and THO were simultaneously introduced through a cut side vein or flap of a squash leaf (Cucurbita melopepo, Bailey cv. torticollis) concurrent translocation of (14)C-sugars, T-photosynthates and THO with parallel, almost flat, gradients was observed in the petiole for periods of 1 to 3 hr. Parallel translocation gradients were not observed when (14)C was introduced as (14)CO(2...

متن کامل

Generation mean analysis for yield components in common bean. Nasim Akhshi1, Kianoush Cheghamirza2 &3, Farhad Nazarian-Firouzabadi1*, Hadi Ahmadi1

In order to choose an efficient breeding procedure, it is necessary to have knowledge of the genetic system controlling agronomically important traits. Common bean is one of the major legumes containing large amount of proteins and other valuable nutrients. The aim of this study was to determine genetic parameters for yield and yield components, using six generations (P1, P2, F1, F2, BC1, and B...

متن کامل

Some factors regulating auxin translocation in intact bean seedlings.

Several factors which influence the translocation patterns of stem-injected indoleacetic acid, 2,4-dichlorophenoxyacetic acid, and 2,4,5-trichlorophenoxyacetic acid in bean seedlings (Phaseolus vulgaris L. cv. Stringless Greenpod) were characterized. The acropetal translocation of auxin from the site of injection is markedly sensitive to concentration in the range of 1.0 to 5.0 micrograms per p...

متن کامل

Differences in antioxidant, morphological and biochemical responses to drought stress in different cultivars of common bean (Phaseolus vulgaris L.)

Drought stress is the most common environmental stress that can significantly influence crop productivity. In this study, morphological and biochemical properties of 17 genotypes of common bean were evaluated under different levels of drought stress and the most sensitive and tolerant genotypes were identified using multivariate analysis. The results indicated that morphological and biochemical...

متن کامل

Phloem mobility of magnesium.

Magnesium-28 was applied to specific leaves of bean (Phaseolus vulgaris) and barley (Hordeum vulgare) plants. After 24 hours, as much as 7% of the absorbed Mg was exported from the treated bean leaves and 11% was transported basipetally from the treated zone of the barley leaves. Transport of Mg did not occur past a heat-killed section of the treated leaf, thereby indicating that translocation ...

متن کامل

Comparison of Variations of Water Stress Index of Chika Bean Plant under Surface Irrigation and Drip Tape Irrigation using Infrared Thermometer

The Plant Water Resistance Index (CWSI) is a tool that can be used for the rapid monitoring of plant water status, which is a key requirement for the accurate product irrigation management.The purpose of this study was to calculate the CWSI index for bean hares in the Khorramabad region for two methods of surface irrigation and drip tape ‎irrigation. For this purpose, a design was implemented i...

متن کامل

ذخیره در منابع من


  با ذخیره ی این منبع در منابع من، دسترسی به آن را برای استفاده های بعدی آسان تر کنید

برای دانلود متن کامل این مقاله و بیش از 32 میلیون مقاله دیگر ابتدا ثبت نام کنید

ثبت نام

اگر عضو سایت هستید لطفا وارد حساب کاربری خود شوید

عنوان ژورنال:
  • Plant physiology

دوره 32 6  شماره 

صفحات  -

تاریخ انتشار 1957