Carbon status constrains light acclimation in the cyanobacterium Synechococcus elongatus

被引:42
作者
MacKenzie, TDB
Burns, RA
Campbell, DA [1 ]
机构
[1] Univ New Brunswick, Dept Biol, Fredericton, NB E3B 6E1, Canada
[2] Mt Allison Univ, Dept Biol, Sackville, NB E4L 1G7, Canada
[3] Mt Allison Univ, Coastal Wetlands Inst, Sackville, NB E4L 1G7, Canada
关键词
D O I
10.1104/pp.104.047936
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Acclimation to one environmental factor may constrain acclimation to another. Synechococcus elongates (sp. PCC7942), growing under continuous light in high inorganic carbon (Ci; approximately 4 mm) and low-Ci (approximately 0.02 mm) media, achieve similar photosynthetic and growth rates under continuous low or high light. During acclimation from low to high light, however, high-Ci cells exploit the light increase by accelerating their growth rate, while low-Ci cells maintain the prelight shift growth rate for many hours, despite increased photosynthesis under the higher light. Under increased light, high-Ci cells reorganize their photosynthetic apparatus by shrinking the PSII pool and increasing Rubisco pool size, thus decreasing the photosynthetic source-to-sink ratio. Low-Ci cells also decrease their reductant source-to-sink ratio to a similar level as the high-Ci cells, but do so only by increasing their Rubisco pool. Low-Ci cells thus invest more photosynthetic reductant into maintaining their larger photosystem pool and increasing their Rubisco pool at the expense of population growth than do highCi cells. In nature, light varies widely over minutes to hours and is ultimately limited by daylength. Photosynthetic acclimation in S. elongatus occurs in both high and low Ci, but low-Ci cells require more time to achieve acclimation. Cells that can tolerate low Ci do so at the expense of slower photosynthetic acclimation. Such differences in rates of acclimation relative to rates of change in environmental parameters are important for predicting community productivity under variable environments.
引用
收藏
页码:3301 / 3312
页数:12
相关论文
共 70 条
[1]   Cyclic, pseudocyclic and noncyclic photophosphorylation: new links in the chain [J].
Allen, JF .
TRENDS IN PLANT SCIENCE, 2003, 8 (01) :15-19
[2]   Untitled [J].
Anderson, RH .
CARDIOLOGY IN THE YOUNG, 2001, 11 (01) :1-2
[3]   CO2 concentrating mechanisms in cyanobacteria:: molecular components, their diversity and evolution [J].
Badger, MR ;
Price, GD .
JOURNAL OF EXPERIMENTAL BOTANY, 2003, 54 (383) :609-622
[4]   Compensatory changes in Photosystem II electron turnover rates protect photosynthesis from photoinhibition [J].
Behrenfeld, MJ ;
Prasil, O ;
Kolber, ZS ;
Babin, M ;
Falkowski, PG .
PHOTOSYNTHESIS RESEARCH, 1998, 58 (03) :259-268
[5]   Elemental composition of marine Prochlorococcus and Synechococcus:: Implications for the ecological stoichiometry of the sea [J].
Bertilsson, S ;
Berglund, O ;
Karl, DM ;
Chisholm, SW .
LIMNOLOGY AND OCEANOGRAPHY, 2003, 48 (05) :1721-1731
[6]   Measurement of photochemical quenching of absorbed quanta in photosystem I of intact leaves using simultaneous measurements of absorbance changes at 830 nm and thermal dissipation [J].
Bukhov, NG ;
Carpentier, R .
PLANTA, 2003, 216 (04) :630-638
[7]   Chlorophyll fluorescence analysis of cyanobacterial photosynthesis and acclimation [J].
Campbell, D ;
Hurry, V ;
Clarke, AK ;
Gustafsson, P ;
Öquist, G .
MICROBIOLOGY AND MOLECULAR BIOLOGY REVIEWS, 1998, 62 (03) :667-+
[8]   Photosystem I [J].
Chitnis, PR .
PLANT PHYSIOLOGY, 1996, 111 (03) :661-669
[9]   Photosystem I: Function and physiology [J].
Chitnis, PR .
ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 2001, 52 :593-626
[10]   RAPID INTERCHANGE BETWEEN 2 DISTINCT FORMS OF CYANOBACTERIAL PHOTOSYSTEM-II REACTION-CENTER PROTEIN-D1 IN RESPONSE TO PHOTOINHIBITION [J].
CLARKE, AK ;
SOITAMO, A ;
GUSTAFSSON, P ;
OQUIST, G .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1993, 90 (21) :9973-9977