Nonintrusive Indicator for Rapid Assessment of In Vivo Photosynthesis
69
Keuper HJK, Sauer K (1989) Effect of photo system II reaction center closure on nanosecond fluorescence relaxation kinetics. Photosynth Res 20: 85-103
Krause GH, Weis E (1991) Chlorophyll fluorescence and photosynthesis: the basics.
Annu Rev Plant Physiol 42: 313-349
Krall JP, Edwards GE, Ku MSB (1991) Quantum yield of photosystem II and efficiency
of COz-fixation in Flaveria (Asteraceae) species at varying light and CO2, Aust J Plant
Physiol 18: 369-383
Krieger A (1992) pH-abhangige Regulation von Photosystem II: EinfluB von Calcium.
Thesis, Heinrich-Heine Universitat, Diisseldorf
Lavorel J, Etienne AL (1977) In vivo chlorophyll fluorescence. In: Barber J (ed) Primary
processes of photosynthesis. Elsevier, Amsterdam, pp 203-268
Melis T (1985) Functional properties of photosystem II~ in spinach chloroplasts. Biochim
Biophys Acta 808: 334-342
Melis T (1991) Dynamics of photosynthetic membrane composition and function. Biochim
Biophys Acta 1058: 87-106
Melis T, Schreiber U (1979) The kinetic relationship between the C550 absorbance
change, the reduction of Q (A32o) and the variable fluorescence yield change in
chloroplasts at room temperature. Biochim Biophys Acta 547: 47-57
Mi H, Endo T, Schreiber U, Ogawa T, Asada K (1992) Electron donation from cyclic and
respiratory flows to photosynthetic intersystem chain is mediated by pyridine nucleotide
dehydrogenase in the cyanobacterium Synechacystis PCC 6803. Plant Cell Physiol 33:
1233-1237
Moss DA, Bendall DS (1984) Cyclic electron transport in chloroplasts. The Q-cycle and
the site of action of antimycin. Biochim Biophys Acta 767: 389-395
Munday JC, Govindjee (1969) Light-induced changes in the fluorescence yield of
chlorophyll a in vivo point III. The dip and the peak in the fluorescence transient of
Chiarella pyrenaidasa. Biophys J 9: 1-21
Murata N, Nishimura M, Takamiya A (1966) Fluorescence of chlorophyll in photosynthetic systems. II. Induction of fluorescence in isolated spinach chloroplasts. Biochim
Biophys Acta 120: 23-33
Neubauer C, Schreiber U (1987) The polyphasic rise of chlorophyll fluorescence upon
onset of strong continuous illumination. I. Saturation characteristics and partial control
by the photosystem II acceptor side. Z Naturforsch 42: 1246-1254
Neubauer C, Schreiber U (1988) Induction of photochemical and nonphotochemical
quenching of chlorophyll fluorescence by low concentrations of m-dinitrobenzene.
Photosynth Res 15: 233-246
Neubauer C, Schreiber U (1989a) Photochemical and non-photochemical quenching of
chlorophyll fluorescence induced by hydrogen peroxide. Z Naturforsch 44c: 262-270
Neubauer C, Schreiber U (1989b) Dithionite-induced fluorescence quenching does not
reflect reductive activation in spinach chloroplasts. Bot Acta 102: 314-318
Reising H, Schreiber U (1992) Pulse-modulated photoacoustic measurements reveal strong
gas-uptake component at high COz-concentrations. Photosynth Res 31: 227-238
Renger G, Schreiber U (1986) Practical applications of fluorometric methods to algae and
higher plant research. In: Govindjee, Amesz J, Fork CD (eds) Light emission by plants
and bacteria. Academic Press, New York, pp 587-619
Schreiber U (1986) Detection of rapid induction kinetics with a new type of high-frequency
modulated chlorophyll fluorometer. Photosynth Res 9: 261-272
Schreiber U, Bilger W (1987) Rapid assessment of stress effects on plant leaves by
chlorophyll fluorescence measurements. In: Tenhunen JD, Catarino FM, Lange OL,
Oechel WD (eds) Plant response to stress. Springer, Berlin Heidelberg New York, pp
27-53
Schreiber U, Bilger W (1992) Progress in chlorophyll fluorescence research: major developments during the last years in retrospect. Prog Bot 54: 151-173
Schreiber U, Neubauer C (1987) The polyphasic rise of chlorophyll fluorescence upon
onset of strong continuous illumination. II. Partial control by the photosystem II donor
side and possible ways of interpretation. Z Naturforsch 42: 1255-1264
69
Keuper HJK, Sauer K (1989) Effect of photo system II reaction center closure on nanosecond fluorescence relaxation kinetics. Photosynth Res 20: 85-103
Krause GH, Weis E (1991) Chlorophyll fluorescence and photosynthesis: the basics.
Annu Rev Plant Physiol 42: 313-349
Krall JP, Edwards GE, Ku MSB (1991) Quantum yield of photosystem II and efficiency
of COz-fixation in Flaveria (Asteraceae) species at varying light and CO2, Aust J Plant
Physiol 18: 369-383
Krieger A (1992) pH-abhangige Regulation von Photosystem II: EinfluB von Calcium.
Thesis, Heinrich-Heine Universitat, Diisseldorf
Lavorel J, Etienne AL (1977) In vivo chlorophyll fluorescence. In: Barber J (ed) Primary
processes of photosynthesis. Elsevier, Amsterdam, pp 203-268
Melis T (1985) Functional properties of photosystem II~ in spinach chloroplasts. Biochim
Biophys Acta 808: 334-342
Melis T (1991) Dynamics of photosynthetic membrane composition and function. Biochim
Biophys Acta 1058: 87-106
Melis T, Schreiber U (1979) The kinetic relationship between the C550 absorbance
change, the reduction of Q (A32o) and the variable fluorescence yield change in
chloroplasts at room temperature. Biochim Biophys Acta 547: 47-57
Mi H, Endo T, Schreiber U, Ogawa T, Asada K (1992) Electron donation from cyclic and
respiratory flows to photosynthetic intersystem chain is mediated by pyridine nucleotide
dehydrogenase in the cyanobacterium Synechacystis PCC 6803. Plant Cell Physiol 33:
1233-1237
Moss DA, Bendall DS (1984) Cyclic electron transport in chloroplasts. The Q-cycle and
the site of action of antimycin. Biochim Biophys Acta 767: 389-395
Munday JC, Govindjee (1969) Light-induced changes in the fluorescence yield of
chlorophyll a in vivo point III. The dip and the peak in the fluorescence transient of
Chiarella pyrenaidasa. Biophys J 9: 1-21
Murata N, Nishimura M, Takamiya A (1966) Fluorescence of chlorophyll in photosynthetic systems. II. Induction of fluorescence in isolated spinach chloroplasts. Biochim
Biophys Acta 120: 23-33
Neubauer C, Schreiber U (1987) The polyphasic rise of chlorophyll fluorescence upon
onset of strong continuous illumination. I. Saturation characteristics and partial control
by the photosystem II acceptor side. Z Naturforsch 42: 1246-1254
Neubauer C, Schreiber U (1988) Induction of photochemical and nonphotochemical
quenching of chlorophyll fluorescence by low concentrations of m-dinitrobenzene.
Photosynth Res 15: 233-246
Neubauer C, Schreiber U (1989a) Photochemical and non-photochemical quenching of
chlorophyll fluorescence induced by hydrogen peroxide. Z Naturforsch 44c: 262-270
Neubauer C, Schreiber U (1989b) Dithionite-induced fluorescence quenching does not
reflect reductive activation in spinach chloroplasts. Bot Acta 102: 314-318
Reising H, Schreiber U (1992) Pulse-modulated photoacoustic measurements reveal strong
gas-uptake component at high COz-concentrations. Photosynth Res 31: 227-238
Renger G, Schreiber U (1986) Practical applications of fluorometric methods to algae and
higher plant research. In: Govindjee, Amesz J, Fork CD (eds) Light emission by plants
and bacteria. Academic Press, New York, pp 587-619
Schreiber U (1986) Detection of rapid induction kinetics with a new type of high-frequency
modulated chlorophyll fluorometer. Photosynth Res 9: 261-272
Schreiber U, Bilger W (1987) Rapid assessment of stress effects on plant leaves by
chlorophyll fluorescence measurements. In: Tenhunen JD, Catarino FM, Lange OL,
Oechel WD (eds) Plant response to stress. Springer, Berlin Heidelberg New York, pp
27-53
Schreiber U, Bilger W (1992) Progress in chlorophyll fluorescence research: major developments during the last years in retrospect. Prog Bot 54: 151-173
Schreiber U, Neubauer C (1987) The polyphasic rise of chlorophyll fluorescence upon
onset of strong continuous illumination. II. Partial control by the photosystem II donor
side and possible ways of interpretation. Z Naturforsch 42: 1255-1264
