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Chlorosis As a Developmental Program in Cyanobacteria: The Proteomic Fundament for Survival and Awakening

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Date 2018 Jun 1
PMID 29848780
Citations 28
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Abstract

Cyanobacteria that do not fix atmospheric nitrogen gas survive prolonged periods of nitrogen starvation in a chlorotic, dormant state where cell growth and metabolism are arrested. Upon nutrient availability, these dormant cells return to vegetative growth within 2-3 days. This resuscitation process is highly orchestrated and relies on the stepwise reinstallation and activation of essential cellular structures and functions. We have been investigating the transition to chlorosis and the return to vegetative growth as a simple model of a cellular developmental process and a fundamental survival strategy in biology. In the present study, we used quantitative proteomics and phosphoproteomics to describe the proteomic landscape of a dormant cyanobacterium and its dynamics during the transition to vegetative growth. We identified intriguing alterations in the set of ribosomal proteins, in RuBisCO components, in the abundance of central regulators and predicted metabolic enzymes. We found O-phosphorylation as an abundant protein modification in the chlorotic state, specifically of metabolic enzymes and proteins involved in photosynthesis. Nondegraded phycobiliproteins were hyperphosphorylated in the chlorotic state. We provide evidence that hyperphosphorylation of the terminal rod linker CpcD increases the lifespan of phycobiliproteins during chlorosis.

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References
1.
Singh B, Pandey P, Singh S, Bisen P . Evidence for the nitrate assimilation-dependent nitrite excretion in cyanobacterium Nostoc MAC. World J Microbiol Biotechnol. 2014; 12(3):285-7. DOI: 10.1007/BF00360929. View

2.
Moronta-Barrios F, Espinosa J, Contreras A . In vivo features of signal transduction by the essential response regulator RpaB from Synechococcus elongatus PCC 7942. Microbiology (Reading). 2012; 158(Pt 5):1229-1237. DOI: 10.1099/mic.0.057679-0. View

3.
Boehm M, Romero E, Reisinger V, Yu J, Komenda J, Eichacker L . Investigating the early stages of photosystem II assembly in Synechocystis sp. PCC 6803: isolation of CP47 and CP43 complexes. J Biol Chem. 2011; 286(17):14812-9. PMC: 3083219. DOI: 10.1074/jbc.M110.207944. View

4.
Yang M, Qiao Z, Zhang W, Xiong Q, Zhang J, Li T . Global phosphoproteomic analysis reveals diverse functions of serine/threonine/tyrosine phosphorylation in the model cyanobacterium Synechococcus sp. strain PCC 7002. J Proteome Res. 2013; 12(4):1909-23. DOI: 10.1021/pr4000043. View

5.
de Lorimier R, Bryant D, Stevens Jr S . Genetic analysis of a 9 kDa phycocyanin-associated linker polypeptide. Biochim Biophys Acta. 1990; 1019(1):29-41. DOI: 10.1016/0005-2728(90)90121-j. View