| Literature DB >> 28716924 |
Susan H Brawley1, Nicolas A Blouin2,3, Elizabeth Ficko-Blean4, Glen L Wheeler5, Martin Lohr6, Holly V Goodson7, Jerry W Jenkins8,9, Crysten E Blaby-Haas10, Katherine E Helliwell5,11, Cheong Xin Chan12,13, Tara N Marriage14, Debashish Bhattacharya15, Anita S Klein16, Yacine Badis17, Juliet Brodie18, Yuanyu Cao16, Jonas Collén4, Simon M Dittami4, Claire M M Gachon17, Beverley R Green19, Steven J Karpowicz20, Jay W Kim21, Ulrich Johan Kudahl11, Senjie Lin22, Gurvan Michel4, Maria Mittag23, Bradley J S C Olson14, Jasmyn L Pangilinan9, Yi Peng9, Huan Qiu15, Shengqiang Shu9, John T Singer24, Alison G Smith11, Brittany N Sprecher22, Volker Wagner23, Wenfei Wang25, Zhi-Yong Wang26, Juying Yan9, Charles Yarish27, Simone Zäuner-Riek28, Yunyun Zhuang22, Yong Zou23, Erika A Lindquist9, Jane Grimwood8,9, Kerrie W Barry9, Daniel S Rokhsar9, Jeremy Schmutz8,9, John W Stiller29, Arthur R Grossman26, Simon E Prochnik9.
Abstract
Porphyra umbilicalis (laver) belongs to an ancient group of red algae (Bangiophyceae), is harvested for human food, and thrives in the harsh conditions of the upper intertidal zone. Here we present the 87.7-Mbp haploid Porphyra genome (65.8% G + C content, 13,125 gene loci) and elucidate traits that inform our understanding of the biology of red algae as one of the few multicellular eukaryotic lineages. Novel features of the Porphyra genome shared by other red algae relate to the cytoskeleton, calcium signaling, the cell cycle, and stress-tolerance mechanisms including photoprotection. Cytoskeletal motor proteins in Porphyra are restricted to a small set of kinesins that appear to be the only universal cytoskeletal motors within the red algae. Dynein motors are absent, and most red algae, including Porphyra, lack myosin. This surprisingly minimal cytoskeleton offers a potential explanation for why red algal cells and multicellular structures are more limited in size than in most multicellular lineages. Additional discoveries further relating to the stress tolerance of bangiophytes include ancestral enzymes for sulfation of the hydrophilic galactan-rich cell wall, evidence for mannan synthesis that originated before the divergence of green and red algae, and a high capacity for nutrient uptake. Our analyses provide a comprehensive understanding of the red algae, which are both commercially important and have played a major role in the evolution of other algal groups through secondary endosymbioses.Entities:
Keywords: calcium-signaling; carbohydrate-active enzymes; cytoskeleton; stress tolerance; vitamin B12
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Year: 2017 PMID: 28716924 PMCID: PMC5547612 DOI: 10.1073/pnas.1703088114
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205