Skip to main content
Log in

Canopy photosynthetic production in a Japanese larch stand. I. Seasonal and vertical changes of leaf characteristics along the light gradient in a canopy

  • Published:
Ecological Research

Abstract

In an 18 year old Japanese larch stand, leaf characteristics such as area, weight, gross photosynthetic rate and respiration rate were studied in order to obtain basic information on estimating canopy photosynthesis and respiration. The leaf growth courses in area and weight from bud opening were approximated by simple logistic curves. The growth coefficient for the area growth curve was 0.155–0.175 day−1, while that for the weight growth was 0.112–0.117 day−1. The larger growth coefficient in area growth caused the seasonal change in specific leaf area (SLA) that increased after bud opening to its peak early in May at almost 300 cm2 g−1 and then decreased until it leveled off at about 140 cm2g−1. The change inSLA indicates the possibility that leaf area growth precedes leaf thickness growth. The relationship between the coefficientsa andb of the gross photosynthetic rate (p)-light flux density (1) curve (p=bI/(1+aI)) and the mean relative light flux density (I′/I 0) at each canopy height were approximated by hyperbolic formulae:a=A/(I′/I 0)+B andb=C/(I′/I 0)+D. Leaf respiration rate was also increased with increasingI′/I 0. Seasonal change of gross photosynthetic rate and leaf respiration rate were related to mean air temperature through linear regression on semilogarithmic co-ordinates.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Similar content being viewed by others

References

  • Fry D. J. &Phillips I. D. J. (1977) Photosynthesis of conifers in relation to annual growth cycles and dry matter production. II. Seasonal photosynthetic capacity and mesophyll ultrastructure inAbies grandis, Picea sitchensis, Tsuga beterophylla andLarix leptolepis growing in SW England.Physiol. Plant. 40: 300–6.

    Google Scholar 

  • Hagihara A. &Hozumi K. (1977a) Studies on photosynthetic production and its seasonal change in aChamaecyparis obtusa, plantation.J. Jpn. For. Soc. 59: 327–37.

    Google Scholar 

  • Hagihara A. &Hozumi K. (1977b) Estimation of canopy respiration and its seasonal change in aChamaecyparis obtusa plantation.J. Jpn. For. Soc. 59: 405–13.

    Google Scholar 

  • Hagihara A., Ninomiya I. &Hozumi K. (1982) Evaluation of the light climate in aChamaecyparis obtusa plantation by a chemical light-meter.J. Jpn. For. Soc. 64: 220–8.

    Google Scholar 

  • Hozumi K. &Kirita H. (1970) Estimation of the rate of total photosynthesis in forest canopies.Bot. Mag. Tokyo 83: 144–51.

    Google Scholar 

  • Hozumi K., Kirita H. &Nishioka M. (1972) Estimation of canopy photosynthesis and its seasonal change in a warm-temperate evergreen oak forest at Minamata (Japan).Photosynthetica 6: 158–68.

    CAS  Google Scholar 

  • Hozumi K., Shinozaki K. &Kira T. (1962) Effect of light intensity and planting density on the growth ofHibiscus moscheutos Linn. III. Analysis of leaf growth based on the logistic theory.Physiol. Ecol. 11: 62–77 (in Japanese with English summary).

    Google Scholar 

  • Koike T. (1986) Photosynthetic responses to light intensity of deciduous broad-leaved tree seedlings raised under various artificial shade.Envir. Control Biol. 24 51–8.

    Google Scholar 

  • Koike T. & Sakagami Y. (1982) Light-photosynthetic rate relationship of deciduous broad-leaved trees in Hokkaido. Trans. 31 st Meeting of Hokkaido Branch of Jpn. For. Soc.85–7 (in Japanese).

  • Kurachi N., Hagihara A. &Hozumi K. (1986) Evaluation of the light interception by nonphotosynthetic organs in aLarix leptolepis plantation.Ecol. Res. 1: 173–83.

    Google Scholar 

  • Kurachi N., Hagihara A. &Hozumi K. (1989) Effect of light in interception by non-photosynthetic organs on canopy photosynthetic production.Ecol. Res. 4: 187–97.

    Article  Google Scholar 

  • Kuroiwa S. (1966) Dry matter production by plant. In:Modern Biology Series, vol. 9. pp. 71–100. Iwanami, Tokyo (in Japanese).

    Google Scholar 

  • Maeda T. (1983) Vertical distribution of CO2 concentration in forest canopy. Graduation thesis, Nagoya Univ. (in Japanese).

  • Matyssek R. &Schulze E-D. (1987) Heterosis in hybrid larch (Larix decidua x leptolepis). I. The role of leaf characteristics.Trees 1: 219–24.

    Google Scholar 

  • Monsi M. &Saeki T. (1953) Über den Lichtfaktor in den Pflanzengesellschaften und seine Bedeurung für die StoffproduktionJpn. J. Bot. 14: 22–52.

    Google Scholar 

  • Powell G. R. (1988) Shoot elongation, leaf demography and bud formation in relation to branch position onLarix laricina saplings.Trees 2: 150–64.

    Article  Google Scholar 

  • Saeki T. (1960) Interrelationships between leaf amount, light distribution and total photosynthesis in a plant community.Bot. Mag. Tokyo 73: 55–63.

    Google Scholar 

  • Shinozaki K. (1962) Logistic theory of plant growth. Doctorate thesis, Kyoto Univ. (in Japanese).

  • Totsuka T. (1966) Relationships between CO2 concentration of air and dry matter production of higher plants.Bot. Mag. Tokyo 79: 51–60 (in Japanese).

    CAS  Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

About this article

Cite this article

Kurachi, N., Hagihara, A. & Hozumi, K. Canopy photosynthetic production in a Japanese larch stand. I. Seasonal and vertical changes of leaf characteristics along the light gradient in a canopy. Ecol. Res. 7, 255–265 (1992). https://doi.org/10.1007/BF02347094

Download citation

  • Accepted:

  • Issue Date:

  • DOI: https://doi.org/10.1007/BF02347094

Key words

Navigation