School of Marine Sciences, University of Maine, Orono, ME 04469;
School of Marine Sciences, University of Maine, Orono, ME 04469.
Proc Natl Acad Sci U S A. 2017 Aug 1;114(31):E6361-E6370. doi: 10.1073/pnas.1703088114. Epub 2017 Jul 17.
(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 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 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 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 , 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.
(Laver) 属于古老的红藻门(Bangiophyceae),被人类采集食用,生长在潮间带的恶劣环境中。在这里,我们呈现了 87.7-Mbp 的单倍体基因组(65.8% 的 G+C 含量,13125 个基因座),并阐明了一些特征,这些特征使我们对红藻的生物学有了更深入的了解,因为红藻是少数几个多细胞真核生物谱系之一。该基因组与其他红藻共享的一些新特征与细胞骨架、钙信号、细胞周期以及应激耐受机制有关,包括光保护。在 中,细胞骨架的运动蛋白仅限于一小部分驱动蛋白,它们似乎是红藻中唯一普遍存在的细胞骨架马达。缺少动力蛋白马达,而大多数红藻,包括 ,也缺乏肌球蛋白。这种令人惊讶的最小细胞骨架为为什么红藻细胞和多细胞结构的大小比大多数多细胞谱系更有限提供了一个潜在的解释。进一步与 Bangiophytes 应激耐受相关的发现包括亲水半乳糖丰富细胞壁硫酸化的祖先酶、绿藻和红藻分化之前起源的甘露聚糖合成证据,以及对营养物质吸收的高能力。我们的分析提供了对红藻的全面了解,红藻不仅在商业上很重要,而且通过二次内共生在其他藻类群体的进化中发挥了重要作用。