Chlamydomonas xanthophyll cycle mutants identified by video imaging of chlorophyll fluorescence quenching

被引:281
作者
Niyogi, KK
Bjorkman, O
Grossman, AR
机构
关键词
D O I
10.2307/3870388
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The photosynthetic apparatus in plants is protected against oxidative damage by processes that dissipate excess absorbed light energy as heat within the light-harvesting complexes, This dissipation of excitation energy is measured as nonphotochemical quenching of chlorophyll fluorescence. Nonphotochemical quenching depends primarily on the Delta pH that is generated by photosynthetic electron transport, and it is also correlated with the amounts of zeaxanthin and antheraxanthin that are formed from violaxanthin by the operation of the xanthophyll cycle. To perform a genetic dissection of nonphotochemical quenching, we have isolated npq mutants of Chlamydomonas by using a digital videoimaging system. In excessive light, the npq1 mutant is unable to convert violaxanthin to antheraxanthin and zeaxanthin; this reaction is catalyzed by violaxanthin de-epoxidase, The npq2 mutant appears to be defective in zeaxanthin epoxidase activity, because it accumulates zeaxanthin and completely lacks antheraxanthin and violaxanthin under all light conditions. Characterization of these mutants demonstrates that a component of nonphotochemical quenching that develops in vivo in Chlamydomonas depends on the accumulation of zeaxanthin and antheraxanthin via the xanthophyll cycle. However, observation of substantial, rapid, Delta pH-dependent nonphotochemical quenching in the npq1 mutant demonstrates that the formation of zeaxanthin and antheraxanthin via violaxanthin de-epoxidase activity is not required for all Delta pH-dependent nonphotochemical quenching in this alga. Furthermore, the xanthophyll cycle is not required for survival of Chlamydomonas in excessive light.
引用
收藏
页码:1369 / 1380
页数:12
相关论文
共 65 条
[41]   STABLE NUCLEAR TRANSFORMATION OF CHLAMYDOMONAS USING THE CHLAMYDOMONAS GENE FOR NITRATE REDUCTASE [J].
KINDLE, KL ;
SCHNELL, RA ;
FERNANDEZ, E ;
LEFEBVRE, PA .
JOURNAL OF CELL BIOLOGY, 1989, 109 (06) :2589-2601
[42]   CHLOROPHYLL FLUORESCENCE AND PHOTOSYNTHESIS - THE BASICS [J].
KRAUSE, GH ;
WEIS, E .
ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 1991, 42 :313-349
[44]   PHOTOSYSTEM-II EXCITATION PRESSURE AND DEVELOPMENT OF RESISTANCE TO PHOTOINHIBITION .1. LIGHT-HARVESTING COMPLEX-II ABUNDANCE AND ZEAXANTHIN CONTENT IN CHLORELLA-VULGARIS [J].
MAXWELL, DP ;
FALK, S ;
HUNER, NPA .
PLANT PHYSIOLOGY, 1995, 107 (03) :687-694
[46]   Isolation of high-chlorophyll-fluorescence mutants of Arabidopsis thaliana and their characterisation by spectroscopy, immunoblotting and Northern hybridisation [J].
Meurer, J ;
Meierhoff, K ;
Westhoff, P .
PLANTA, 1996, 198 (03) :385-396
[47]   CHLOROPLAST REACTIONS OF PHOTOSYNTHETIC MUTANTS IN ZEA-MAYS [J].
MILES, CD ;
DANIEL, DJ .
PLANT PHYSIOLOGY, 1974, 53 (04) :589-595
[48]   THE RELATIONSHIP BETWEEN ZEAXANTHIN, ENERGY-DEPENDENT QUENCHING OF CHLOROPHYLL FLUORESCENCE, AND TRANS-THYLAKOID PH GRADIENT IN ISOLATED-CHLOROPLASTS [J].
NOCTOR, G ;
REES, D ;
YOUNG, A ;
HORTON, P .
BIOCHIMICA ET BIOPHYSICA ACTA, 1991, 1057 (03) :320-330
[49]  
Owens T., 1994, PHOTOINHIBITION PHOT, P95
[50]   CHLOROPHYLL A/B-BINDING PROTEINS [J].
PAULSEN, H .
PHOTOCHEMISTRY AND PHOTOBIOLOGY, 1995, 62 (03) :367-382