Maxwell A. Ware
Queen Mary University of London
22 Papers
32 Citations
Maxwell A. Ware is an academic researcher from Queen Mary University of London. The author has contributed to research in topics: Photoinhibition & Photosynthesis. The author has an hindex of 10, co-authored 16 publications. Previous affiliations of Maxwell A. Ware include Colorado State University.
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Papers
Photoprotective capacity of non-photochemical quenching in plants acclimated to different light intensities.
TL;DR: A model based upon the existence of an uncoupled population LHCII is proposed to explain the discrepancies in calculated and measured values of F′o.o. and F′ocalc in the dark in low-light grown plants.
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Green diatom mutants reveal an intricate biosynthetic pathway of fucoxanthin
Yu Bai,Tianjun Cao,Oliver Dautermann,Paul Buschbeck,Michael Cantrell,Yinjuan Chen,Christopher D Lein,Xiaohuo Shi,Maxwell A. Ware,Fenghua Yang,Huan Zhang,Lihan Zhang,Graham Peers,Xiaobo Li,Martin Lohr +14 more
TL;DR: This work proposes a complete biosynthetic path to fucoxanthin in diatoms and haptophytes based on the carotenoid intermediates identified in the mutants and in vitro biochemical assays and reveals diadinoxanthin metabolism as the central regulatory hub connecting the photoprotective xanthophyll cycle and the formation of fu Coxanthin.
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PsbS protein modulates non-photochemical chlorophyll fluorescence quenching in membranes depleted of photosystems
TL;DR: The results directly demonstrate the importance of LHCII aggregation in the NPQ mechanism and show that the PSII supercomplex structure plays no role in formation of the observed quenching.
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Biogas properties and enzymatic analysis during anaerobic fermentation of Phragmites australis straw and cow dung: influence of nickel chloride supplement.
Yonglan Tian,Yonglan Tian,Huayong Zhang,Yang Chai,Lijun Wang,Xueyue Mi,Luyi Zhang,Maxwell A. Ware +7 more
TL;DR: The results showed that Ni2+ addition increased the cumulative biogas yields by >18 % by improving the efficiency of first peak stage and bringing forward the second peak stage, and it is suggested that Ni1+ addition was mainly dependent on the methanogenic stage.
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Cross-compartment metabolic coupling enables flexible photoprotective mechanisms in the diatom Phaeodactylum tricornutum
Jared T. Broddrick,Niu Du,Niu Du,Sarah R. Smith,Yoshinori Tsuji,Denis Jallet,Maxwell A. Ware,Graham Peers,Yusuke Matsuda,Christopher L. Dupont,B. Greg Mitchell,Bernhard O. Palsson,Andrew E. Allen,Andrew E. Allen +13 more
TL;DR: A flexible metabolic network is suggested in P. tricornutum that tunes intercompartment metabolism to optimize energy transport between the organelles, consuming excess energy as needed.
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