Using chlorophyll (Chl) a fluorescence many aspects of the photosynthetic apparatus can be studied, both in vitro and, noninvasively, in vivo. Complementary techniques can help to interpret changes in the Chl a fluorescence kinetics. Kalaji et al. (Photosynth Res 122:121–158, 2014a) addressed several questions about instruments, methods and applications based on Chl a fluorescence. Here, additional Chl a fluorescence-related topics are discussed again in a question and answer format. Examples are the effect of connectivity on photochemical quenching, the correction of FV/FM values for PSI fluorescence, the energy partitioning concept, the interpretation of the complementary area, probing the donor side of PSII, the assignment of bands of 77 K fluorescence emission spectra to fluorescence emitters, the relationship between prompt and delayed fluorescence, potential problems when sampling tree canopies, the use of fluorescence parameters in QTL studies, the use of Chl a fluorescence in biosensor applications and the application of neural network approaches for the analysis of fluorescence measurements. The answers draw on knowledge from different Chl a fluorescence analysis domains, yielding in several cases new insights.

Frequently asked questions about chlorophyll fluorescence, the sequel

FERRONI, Lorenzo
Membro del Collaboration Group
;
PANCALDI, Simonetta
Membro del Collaboration Group
;
2017

Abstract

Using chlorophyll (Chl) a fluorescence many aspects of the photosynthetic apparatus can be studied, both in vitro and, noninvasively, in vivo. Complementary techniques can help to interpret changes in the Chl a fluorescence kinetics. Kalaji et al. (Photosynth Res 122:121–158, 2014a) addressed several questions about instruments, methods and applications based on Chl a fluorescence. Here, additional Chl a fluorescence-related topics are discussed again in a question and answer format. Examples are the effect of connectivity on photochemical quenching, the correction of FV/FM values for PSI fluorescence, the energy partitioning concept, the interpretation of the complementary area, probing the donor side of PSII, the assignment of bands of 77 K fluorescence emission spectra to fluorescence emitters, the relationship between prompt and delayed fluorescence, potential problems when sampling tree canopies, the use of fluorescence parameters in QTL studies, the use of Chl a fluorescence in biosensor applications and the application of neural network approaches for the analysis of fluorescence measurements. The answers draw on knowledge from different Chl a fluorescence analysis domains, yielding in several cases new insights.
2017
Kalaji, Hazem M; Schansker, Gert; Brestic, Marian; Bussotti, Filippo; Calatayud, Angeles; Ferroni, Lorenzo; Goltsev, Vasilij; Guidi, Lucia; Jajoo, Anjana; Li, Pengmin; Losciale, Pasquale; Mishra, Vinod K.; Misra, Amarendra N.; Nebauer, Sergio G.; Pancaldi, Simonetta; Penella, Consuelo; Pollastrini, Martina; Suresh, Kancherla; Tambussi, Eduardo; Yanniccari, Marcos; Zivcak, Marek; Cetner, Magdalena D.; Samborska, Izabela A.; Stirbet, Alexandrina; Olsovska, Katarina; Kunderlikova, Kristyna; Shelonzek, Henry; Rusinowski, Szymon; Bąba, Wojciech
File in questo prodotto:
File Dimensione Formato  
Kalaji2017_review.pdf

accesso aperto

Descrizione: versione editoriale
Tipologia: Full text (versione editoriale)
Licenza: PUBBLICO - Pubblico con Copyright
Dimensione 2.72 MB
Formato Adobe PDF
2.72 MB Adobe PDF Visualizza/Apri

I documenti in SFERA sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11392/2368353
Citazioni
  • ???jsp.display-item.citation.pmc??? 102
  • Scopus 400
  • ???jsp.display-item.citation.isi??? 384
social impact