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Plant Physiology 80:43-51 (1986)
© 1986 American Society of Plant Biologists

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Articles

Biogenesis and Light Regulation of the Major Light Harvesting Chlorophyll-Protein of Diatoms 1

Alan L. Friedman2 and Randall S. Alberte

Barnes Laboratory, Department of Molecular Genetics and Cell Biology, The University of Chicago, Chicago, Illinois 60637

The apoprotein of the major light harvesting pigment-protein complex from the diatom Phaeodactylum tricornutum (UTEX 646) is composed of two similar polypeptides of 17.5 and 18.0 kilodaltons (kD). The in vivo synthesis of these polypeptides is inhibited by the 80s protein synthesis inhibitor cycloheximide, but not by the 70s ribosome inhibitor chloramphenicol. When total poly(A)+ RNA was used in in vitro protein synthesis, a number of polypeptides were synthesized with a dominant product at 22 kD. When the polypeptides were immunoprecipitated with monospecific antibodies to the 17.5 and 18.0 polypeptides, a single protein zone of 22 kD was detected. Immunoprecipitation with preimmune serum failed to precipitate detectable levels of protein at any relative molecular weight (Mr). These findings indicate that the two apoprotein polypeptides of the diatom light harvesting pigment-protein are translated from polyadenylated message on cytoplasmic ribosomes as either a single or two (or more) similar Mr precursor proteins. These findings also suggest that this protein is encoded in the nucleus.

Photosynthetic light adaptation features of P. tricornutum UTEX 646 indicate that it responds to low light by increasing cell size and numbers of photosystem I and II reaction centers per cell, but does not change photosynthetic rate per cell or photosynthetic unit sizes significantly. When low light cells are exposed to higher photon flux densities, the in vivo incorporation of label into the apoprotein of the light harvesting complex decreases. In contrast, high light grown cells show rapid (<3 hour) increases in apoprotein synthesis when exposed to low light levels. This is the first demonstration of a specific role of photon flux density in regulating the synthesis of a major light harvesting pigment-protein during photosynthetic light adaptation.


2 Supported by NIH predoctoral training grant GM 07183 and a Hutchinson Foundation Fellowship. Present address: Department of Botany, University of Wisconsin, Madison, WI 53706.

1 Research support from National Science Foundation Grant OCE 82-14914 and National Aeronautics and Space Administration Grant NAGW-460 are acknowledged.




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Y. Fujita and K. Ohki
On the 710 nm Fluorescence Emitted by the Diatom Phaeodactylum tricornutum at Room Temperature
Plant Cell Physiol., April 15, 2004; 45(4): 392 - 397.
[Abstract] [Full Text] [PDF]




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