| Literature DB >> 27250540 |
Chew Yee Ngan1, Chee-Hong Wong1, Cindy Choi1, Yuko Yoshinaga1, Katherine Louie1,2, Jing Jia3, Cindy Chen1, Benjamin Bowen1,2, Haoyu Cheng1, Lauriebeth Leonelli4, Rita Kuo1, Richard Baran1,2, José G García-Cerdán4, Abhishek Pratap1, Mei Wang1, Joanne Lim1, Hope Tice1, Chris Daum1, Jian Xu3, Trent Northen1,2, Axel Visel1,5,6, James Bristow1, Krishna K Niyogi2,7, Chia-Lin Wei1.
Abstract
Alga-derived lipids represent an attractive potential source of biofuels. However, lipid accumulation in algae is a stress response tightly coupled to growth arrest, thereby imposing a major limitation on productivity. To identify transcriptional regulators of lipid accumulation, we performed an integrative chromatin signature and transcriptomic analysis to decipher the regulation of lipid biosynthesis in the alga Chlamydomonas reinhardtii. Genome-wide histone modification profiling revealed remarkable differences in functional chromatin states between the algae and higher eukaryotes and uncovered regulatory components at the core of lipid accumulation pathways. We identified the transcription factor, PSR1, as a pivotal switch that triggers cytosolic lipid accumulation. Dissection of the PSR1-induced lipid profiles corroborates its role in coordinating multiple lipid-inducing stress responses. The comprehensive maps of functional chromatin signatures in a major clade of eukaryotic life and the discovery of a transcriptional regulator of algal lipid metabolism will facilitate targeted engineering strategies to mediate high lipid production in microalgae.Entities:
Year: 2015 PMID: 27250540 DOI: 10.1038/nplants.2015.107
Source DB: PubMed Journal: Nat Plants ISSN: 2055-0278 Impact factor: 15.793