نتایج جستجو برای: secondary plastids

تعداد نتایج: 306522  

Journal: :Journal of experimental botany 2011
Ulf-Ingo Flügge Rainer E Häusler Frank Ludewig Markus Gierth

The energy status of plant cells strongly depends on the energy metabolism in chloroplasts and mitochondria, which are capable of generating ATP either by photosynthetic or oxidative phosphorylation, respectively. Another energy-rich metabolite inside plastids is the glycolytic intermediate phosphoenolpyruvate (PEP). However, chloroplasts and most non-green plastids lack the ability to generate...

2015
David Roy Smith

Within plastid-bearing species, the mutation rate of the plastid genome is often assumed to be greater than that of the mitochondrial genome. This assumption is based on early, pioneering studies of land plant molecular evolution, which uncovered higher rates of synonymous substitution in plastid versus mitochondrial DNAs. However, much of the plastid-containing eukaryotic diversity falls outsi...

Journal: :Plant & cell physiology 2012
Takanori Maruta Tadashi Yoshimoto Daisuke Ito Takahisa Ogawa Masahiro Tamoi Kazuya Yoshimura Shigeru Shigeoka

Although flavins, riboflavin (RF), FMN and FAD, are essential for primary and secondary metabolism in plants, the metabolic regulation of flavins is still largely unknown. Recently, we found that an Arabidopsis Nudix hydrolase, AtNUDX23, has FAD pyrophosphohydrolase activity and is distributed in plastids. Levels of RF and FAD but not FMN in Arabidopsis leaves significantly increased under cont...

Journal: :Current Biology 2002
Jan O. Andersson Andrew J. Roger

Since the incorporation of mitochondria and chloroplasts (plastids) into the eukaryotic cell by endosymbiosis, genes have been transferred from the organellar genomes to the nucleus of the host, via an ongoing process known as endosymbiotic gene transfer. Accordingly, in photosynthetic eukaryotes, nuclear genes with cyanobacterial affinity are believed to have originated from endosymbiotic gene...

Journal: :Proceedings of the National Academy of Sciences of the United States of America 2005
Natalia Dudareva Susanna Andersson Irina Orlova Nathalie Gatto Michael Reichelt David Rhodes Wilhelm Boland Jonathan Gershenzon

Terpenoids, the largest class of plant secondary metabolites, play essential roles in both plant and human life. In higher plants, the five-carbon building blocks of all terpenoids, isopentenyl diphosphate (IPP) and dimethylallyl diphosphate, are derived from two independent pathways localized in different cellular compartments. The methylerythritol phosphate (MEP or nonmevalonate) pathway, loc...

2007
Ansgar Gruber Franziska Hempel Peter G. Kroth

Plastids of diatoms and related algae evolved by secondary endocytobiosis, the uptake of a eukaryotic alga into a eukaryotic host cell and its subsequent reduction into an organelle. As a result diatom plastids are surrounded by four membranes. Protein targeting of nucleus encoded plastid proteins across these membranes depends on N-terminal bipartite presequences consisting of a signal and a t...

Journal: :Journal of cell science 1980
L Pellegrini

Physodes have been recognized in meristodermic and promeristematic cells by correlated light- and electron-microscope investigations using different fixation procedures. They are vesicles which contain an osmiophilic material of phenolic nature. Their content changes in appearence according to the fixative used. Osmiophilic deposits are often associated with coiled and disturbed lamellar format...

2016
Shigekatsu Suzuki Ken-Ichiro Ishida Yoshihisa Hirakawa

Chlorarachniophyte algae possess complex plastids acquired by the secondary endosymbiosis of a green alga, and the plastids harbor a relict nucleus of the endosymbiont, the so-called nucleomorph. Due to massive gene transfer from the endosymbiont to the host, many proteins involved in plastid and nucleomorph are encoded by the nuclear genome. Genome sequences have provided a blueprint for the f...

2006
Elizabeth A.H. Pilon-Smits Marinus Pilon

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2005
M. MOROLDO M. BARBARO S. SCALABRIN R. VELASCO M. MORGANTE

Plant genetic engineering will likely contribute to the required continued increase in agricultural productivity during the coming decades. Moreover, plants can potentially provide inexpensive production platforms for pharmaceuticals and nutraceuticals. With the advent of technologies to alter the genetic information inside plastids (chloroplasts), a new attractive target for genetic engineerin...

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