CO2 Assimilation Rate in Production Systems for Papaya Crops

被引:1
|
作者
Ariza-Flores, R. [1 ]
Trujillo-Garcia, D. [2 ]
Otero-Sanchez, M. A. [2 ]
Canales Sosa, E. [2 ]
Avendano-Arrazate, C. H. [3 ]
Galvez-Marroquin, L. A. [4 ]
Cadena Iniguez, P. [5 ]
机构
[1] Natl Inst Forest Agr & Livestock Res INIFAP, Iguala Expt Stn, Iguala 40000, Mexico
[2] Super Agr Coll State Guerrero, Iguala 40000, Guerrero, Mexico
[3] INIFAP, Rosario Izapa Expt Stn, Tuxtla Chico 30870, Chiapas, Mexico
[4] INIFAP, Valles Cent Expt Stn, Oaxaca 68200, Oaxaca, Mexico
[5] INIFAP, Ctr Chiapas Expt Stn, Ocozocoautla 29140, Chiapas, Mexico
关键词
Respiration; production system; Carica papaya L;
D O I
10.32604/phyton.2021.013227
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The aim of this study was to evaluate some physiological aspects of papaya crops in semi conventional and organic production systems. The following factors assessed in this experiment were: 1. Production systems (organic and semi conventional); 2. Genotypes (Maradol and Maradona F1), and 3. Cover crop plants (Canavalia, vegetative cover and no cover). Twelve treatments were obtained -product of factors' combination- and distributed under a three-repetition experimental design of subdivided parcels. The factors examined in this study, that changed the CO2 assimilation rate, were production system and genotype. It was determined that the greatest gas exchange in papaya crops happened at 13:40 h but achieving the highest CO2 assimilation was also affected by the production system and genotype. Similarly, they showed some effects in CO2 assimilation, transpiration, stomatal conductance, intercellular CO2, leaf temperature, chlorophyll, and temperature. In general, the combination of factors that accentuated in this experiment were the semi conventional-Maradona-Canavalia with a crop yield of 53.5 t ha(-1), followed by treatments organic-Maradona-no cover and semi conventional-Maradona-vegetative cover.
引用
收藏
页码:933 / 947
页数:15
相关论文
共 50 条
  • [41] PHOTOCHEMICAL REACTIONS AND CO2 ASSIMILATION IN PHOTOSYNTHESIS BY CHLOROPLASTS
    ARNON, DI
    TREBST, AV
    LOSADA, M
    FEDERATION PROCEEDINGS, 1959, 18 (01) : 183 - 183
  • [42] METAL CATIONS IN CO2 ASSIMILATION AND CONVERSION BY PLANTS
    Shabala, Sergey
    ENERGY TECHNOLOGY PERSPECTIVES: CONSERVATION, CARBON DIOXIDE REDUCTION AND PRODUCTION FROM ALTERNATIVE SOURCES, 2009, : 5 - 16
  • [43] Metal Cations in CO2 Assimilation and Conversion by Plants
    Shabala, Sergey
    JOM, 2009, 61 (04) : 28 - 34
  • [44] A new algorithm for inverting Co2 assimilation flux
    Zhang, RH
    Sun, XM
    Su, HB
    Zhu, ZL
    Tang, XZ
    Liu, ZM
    IGARSS 2001: SCANNING THE PRESENT AND RESOLVING THE FUTURE, VOLS 1-7, PROCEEDINGS, 2001, : 3323 - 3325
  • [45] Seasonal changes in CO2 assimilation of cranberry leaves
    Hagidimitriou, M
    Roper, TR
    SCIENTIA HORTICULTURAE, 1995, 64 (04) : 283 - 292
  • [46] CO2 assimilation in relation to nitrogen in apple leaves
    Cheng, L
    Fuchigami, LH
    JOURNAL OF HORTICULTURAL SCIENCE & BIOTECHNOLOGY, 2000, 75 (04): : 383 - 387
  • [47] Genetics and control of CO2 assimilation in the chemoautotroph Ralstoniaeutropha
    Botho Bowien
    Bernhard Kusian
    Archives of Microbiology, 2002, 178 : 85 - 93
  • [48] CO2 ASSIMILATION BY CHLOROPLASTS ILLUMINATED ON FILTER PAPER
    COOMBS, J
    BALDRY, CW
    NATURE, 1970, 228 (5278) : 1349 - &
  • [49] STIMULATION OF CO2 ASSIMILATION BY INDOLEACETIC ACID IN LEAVES
    BIDWELL, RGS
    TURNER, WB
    PLANT PHYSIOLOGY, 1965, S 40 : R66 - &
  • [50] MODEL FOR CRUDE PHOTOSYNTHESIS ASSIMILATION OF CO2 BY LEAVES
    COSTES, C
    GAUDILLE.JP
    COMPTES RENDUS HEBDOMADAIRES DES SEANCES DE L ACADEMIE DES SCIENCES SERIE D, 1973, 277 (24): : 2821 - 2824