Literature DB >> 18349145

Photosynthetic maximum quantum yield increases are an essential component of the Southern Ocean phytoplankton response to iron.

Michael R Hiscock1, Veronica P Lance, Amy M Apprill, Robert R Bidigare, Zackary I Johnson, B Greg Mitchell, Walker O Smith, Richard T Barber.   

Abstract

It is well established that an increase in iron supply causes an increase in total oceanic primary production in many regions, but the physiological mechanism driving the observed increases has not been clearly identified. The Southern Ocean iron enrichment experiment, an iron fertilization experiment in the waters closest to Antarctica, resulted in a 9-fold increase in chlorophyll (Chl) concentration and a 5-fold increase in integrated primary production. Upon iron addition, the maximum quantum yield of photosynthesis (phi(m)) rapidly doubled, from 0.011 to 0.025 mol C.mol quanta(-1). Paradoxically, this increase in light-limited productivity was not accompanied by a significant increase in light-saturated productivity (P(max)(b)). P(max)(b), maximum Chl normalized productivity, was 1.34 mg C.mg Chl(-1).h(-1) outside and 1.49 mg C.mg Chl(-1).h(-1) inside the iron-enriched patch. The importance of phi(m) as compared with P(max)(b) in controlling the biological response to iron addition has vast implications for understanding the ecological response to iron. We show that an iron-driven increase in phi(m) is the proximate physiological mechanism affected by iron addition and can account for most of the increases in primary production. The relative importance of phi(m) over P(max)(b) in this iron-fertilized bloom highlights the limitations of often-used primary productivity algorithms that are driven by estimates of P(max)(b) but largely ignore variability in phi(m) and light-limited productivity. To use primary productivity models that include variability in iron supply in prediction or forecasting, the variability of light-limited productivity must be resolved.

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Year:  2008        PMID: 18349145      PMCID: PMC2290768          DOI: 10.1073/pnas.0705006105

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  5 in total

1.  A mesoscale phytoplankton bloom in the polar Southern Ocean stimulated by iron fertilization.

Authors:  P W Boyd; A J Watson; C S Law; E R Abraham; T Trull; R Murdoch; D C Bakker; A R Bowie; K O Buesseler; H Chang; M Charette; P Croot; K Downing; R Frew; M Gall; M Hadfield; J Hall; M Harvey; G Jameson; J LaRoche; M Liddicoat; R Ling; M T Maldonado; R M McKay; S Nodder; S Pickmere; R Pridmore; S Rintoul; K Safi; P Sutton; R Strzepek; K Tanneberger; S Turner; A Waite; J Zeldis
Journal:  Nature       Date:  2000-10-12       Impact factor: 49.962

2.  Southern Ocean iron enrichment experiment: carbon cycling in high- and low-Si waters.

Authors:  Kenneth H Coale; Kenneth S Johnson; Francisco P Chavez; Ken O Buesseler; Richard T Barber; Mark A Brzezinski; William P Cochlan; Frank J Millero; Paul G Falkowski; James E Bauer; Rik H Wanninkhof; Raphael M Kudela; Mark A Altabet; Burke E Hales; Taro Takahashi; Michael R Landry; Robert R Bidigare; Xiujun Wang; Zanna Chase; Pete G Strutton; Gernot E Friederich; Maxim Y Gorbunov; Veronica P Lance; Anna K Hilting; Michael R Hiscock; Mark Demarest; William T Hiscock; Kevin F Sullivan; Sara J Tanner; R Mike Gordon; Craig N Hunter; Virginia A Elrod; Steve E Fitzwater; Janice L Jones; Sasha Tozzi; Michal Koblizek; Alice E Roberts; Julian Herndon; Jodi Brewster; Nicolas Ladizinsky; Geoffrey Smith; David Cooper; David Timothy; Susan L Brown; Karen E Selph; Cecelia C Sheridan; Benjamin S Twining; Zackary I Johnson
Journal:  Science       Date:  2004-04-16       Impact factor: 47.728

3.  The low-light reduction in the quantum yield of photosynthesis: potential errors and biases when calculating the maximum quantum yield.

Authors:  Zackary Johnson; Richard T Barber
Journal:  Photosynth Res       Date:  2003       Impact factor: 3.573

Review 4.  Mesoscale iron enrichment experiments 1993-2005: synthesis and future directions.

Authors:  P W Boyd; T Jickells; C S Law; S Blain; E A Boyle; K O Buesseler; K H Coale; J J Cullen; H J W de Baar; M Follows; M Harvey; C Lancelot; M Levasseur; N P J Owens; R Pollard; R B Rivkin; J Sarmiento; V Schoemann; V Smetacek; S Takeda; A Tsuda; S Turner; A J Watson
Journal:  Science       Date:  2007-02-02       Impact factor: 47.728

5.  Iron-induced changes in light harvesting and photochemical energy conversion processes in eukaryotic marine algae.

Authors:  R M Greene; R J Geider; Z Kolber; P G Falkowski
Journal:  Plant Physiol       Date:  1992-10       Impact factor: 8.340

  5 in total
  3 in total

1.  Simultaneous quantum yield measurements of carbon uptake and oxygen evolution in microalgal cultures.

Authors:  Niu Du; Pardis Gholami; David I Kline; Christopher L DuPont; Andrew G Dickson; Dominick Mendola; Todd Martz; Andrew E Allen; B Greg Mitchell
Journal:  PLoS One       Date:  2018-06-19       Impact factor: 3.240

2.  Diel Patterns of Variable Fluorescence and Carbon Fixation of Picocyanobacteria Prochlorococcus-Dominated Phytoplankton in the South China Sea Basin.

Authors:  Yuyuan Xie; Edward A Laws; Lei Yang; Bangqin Huang
Journal:  Front Microbiol       Date:  2018-08-02       Impact factor: 5.640

3.  Phytoplankton blooms during austral summer in the Ross Sea, Antarctica: Driving factors and trophic implications.

Authors:  Olga Mangoni; Vincenzo Saggiomo; Francesco Bolinesi; Francesca Margiotta; Giorgio Budillon; Yuri Cotroneo; Cristina Misic; Paola Rivaro; Maria Saggiomo
Journal:  PLoS One       Date:  2017-04-21       Impact factor: 3.240

  3 in total

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