Literature DB >> 32480627

Relative functional and optical absorption cross-sections of PSII and other photosynthetic parameters monitored in situ, at a distance with a time resolution of a few seconds, using a prototype light induced fluorescence transient (LIFT) device.

Barry Osmond1, Wah Soon Chow2, Rhys Wyber1, Alonso Zavafer2, Beat Keller3, Barry J Pogson2, Sharon A Robinson1.   

Abstract

The prototype light-induced fluorescence transient (LIFT) instrument provides continuous, minimally intrusive, high time resolution (~2s) assessment of photosynthetic performance in terrestrial plants from up to 2m. It induces a chlorophyll fluorescence transient by a series of short flashes in a saturation sequence (180 ~1μs flashlets in <380μs) to achieve near-full reduction of the primary acceptor QA, followed by a relaxation sequence (RQA; 90 flashlets at exponentially increasing intervals over ~30ms) to observe kinetics of QA re-oxidation. When fitted by the fast repetition rate (FRR) model (Kolber et al. 1998) the QA flash of LIFT/FRR gives smaller values for FmQA from dark adapted leaves than FmPAM from pulse amplitude modulated (PAM) assays. The ratio FmQA/FmPAM resembles the ratio of fluorescence yield at the J/P phases of the classical O-J-I-P transient and we conclude that the difference simply is due to the levels of PQ pool reduction induced by the two techniques. In a strong PAM-analogous WL pulse in the dark monitored by the QA flash of LIFT/FRR φPSIIWL ≈ φPSIIPAM. The QA flash also tracks PQ pool reduction as well as the associated responses of ETR QAPQ and PQ → PSI, the relative functional (σPSII) and optical absorption (aPSII) cross-sections of PSII in situ with a time resolution of ~2s as they relax after the pulse. It is impractical to deliver strong WL pulses at a distance in the field but a longer PQ flash from LIFT/FRR also achieves full reduction of PQ pool and delivers φPSIIPQ ≈ φPSIIPAM to obtain PAM-equivalent estimates of ETR and NPQ at a distance. In situ values of σPSII and aPSII from the QA flash with smaller antenna barley (chlorina-f2) and Arabidopsis mutants (asLhcb2-12, ch1-3 Lhcb5) are proportionally similar to those previously reported from in vitro assays. These direct measurements are further validated by changes in antenna size in response to growth irradiance. We illustrate how the QA flash facilitates our understanding of photosynthetic regulation during sun flecks in natural environments at a distance, with a time resolution of a few seconds.

Entities:  

Year:  2017        PMID: 32480627     DOI: 10.1071/FP17024

Source DB:  PubMed          Journal:  Funct Plant Biol        ISSN: 1445-4416            Impact factor:   3.101


  5 in total

1.  Photoinhibition, photo-ecophysiology, and biophysics, a special issue in honor of Wah Soon Chow.

Authors:  Milán Szabó; Alonso Zavafer
Journal:  Photosynth Res       Date:  2021-08-02       Impact factor: 3.573

Review 2.  Photosynthesis: basics, history and modelling.

Authors:  Alexandrina Stirbet; Dušan Lazár; Ya Guo; Govindjee Govindjee
Journal:  Ann Bot       Date:  2020-09-14       Impact factor: 4.357

Review 3.  Advances in field-based high-throughput photosynthetic phenotyping.

Authors:  Peng Fu; Christopher M Montes; Matthew H Siebers; Nuria Gomez-Casanovas; Justin M McGrath; Elizabeth A Ainsworth; Carl J Bernacchi
Journal:  J Exp Bot       Date:  2022-05-23       Impact factor: 7.298

4.  Photosynthetic sea slugs induce protective changes to the light reactions of the chloroplasts they steal from algae.

Authors:  Vesa Havurinne; Esa Tyystjärvi
Journal:  Elife       Date:  2020-10-20       Impact factor: 8.140

5.  Effects of MPK3 and MPK6 kinases on the chloroplast architecture and function induced by cold acclimation in Arabidopsis.

Authors:  Mariana Saucedo-García; Carla D González-Córdova; I Giordano Ponce-Pineda; Dora Cano-Ramírez; Fernanda M Romero-Colín; Erik E Arroyo-Pérez; Beatriz King-Díaz; Alonso Zavafer; Marina Gavilanes-Ruíz
Journal:  Photosynth Res       Date:  2021-06-16       Impact factor: 3.573

  5 in total

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