FP7Индивидуална стипендия2012–2014

MC VACUOLE · Trafficking to the Vacuoles in Plants

7РП — „Хора“ (Действия „Мария Кюри“)

Период
2012-07-01 → 2014-06-30
Финансиране от ЕС
233 705 €
Участници
1
Схема
MC-IIF

Линиите свързват координатора с партньорите.

Накратко на български

Транспортът на протеини и въглехидрати до вакуолите в растенията, като например при плодове и корени, се анализира чрез модела Arabidopsis thaliana. Разбирането на тези процеси помага за подобряване на продуктивността на растенията и хранителната им стойност за хората и животните.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

Trafficking to the Vacuoles in Plants

The ability for net carbohydrate and protein accumulation in storage tissues is at the core of the inorganic carbon fixation and energy accumulation processes in plants. Heterotrophic plant organs such as fruits, seeds, tubers, and roots contain specialized cell types that accumulate photo-assimilates and storage proteins as energy reserves in their central vacuole. These energy accumulation processes directly impact the overall productivity and final size of the plant, and also has nutritionally related significance for humans and livestocks. Due to the agronomic importance of storage proteins and metabolites accumulated in plant vacuoles, many studies have focused on this process. Comparatively, a lot of data in plant vacuolar trafficking have been generated, yet has fueled intense debate. Controversial points range from the number and nature of vacuolar compartments in different tissues, the presence of different vesicle mediated sorting routes to the vacuole within the same cell, and the nature of the receptors that recognize the sorting determinants of soluble cargo to package them into vesicles destined for the vacuole. The EU funded research project Trafficking to the vacuoles in plants was aimed to answer some of these questions and its long term goal was to obtain a mechanistic understanding of the cellular processes involved in the accumulation and mobilization of vacuolar targeted cargoes for biotechnological purposes. Throughout this project, the analysis of ribosomal protein mutants in the model plant Arabidopsis thaliana highlighted the importance of basic cellular mechanisms, such as translational regulation, for the proper delivery of vacuolar targeted cargoes. Thus, by using cell biology, physiology, and bioinformatic analyses, we were able to demonstrate that independent ribosomal mutations exerted translational regulation of vacuolar targeting pathways and cargoes through the control of transcription factors containing specific DNA sequences in their promoter region named upstream open reading frames (uORFs). As important as the description of regulatory aspects of the vacuolar trafficking pathways was the development of analytical tools with potential to generate useful information for biotechnological purposes in the field of vacuolar trafficking. Thus, to obtain a global perspective of the processes involved in the vacuolar delivery of cargoes we aimed to determine the protein and metabolite composition of specific vacuolar targeted vesicles. To achieve this objective we established a protocol to affinity purify intact SYP21 vacuolar targeted vesicles that will allow the future use proteomics and metabolomics approaches for machineries and vesicle cargoes identification. The basic knowledge derived from this Research Project establish the foundation for the future use of translational regulators to increase the net carbohydrate and protein accumulation in storage tissues of commercial crops of interest for the European Union farmers. 2. Wider societal implications of the project The global area under crops grew by about 12% over 1960 to 2000, but cereal production increased by over 100%. This increased production was made possible by scientific advances in the field of seeds, fertilizers, pesticides, etc. and by improved techniques of production, storage and distributions of the agricultural products. Still, the OECD-FAO Agricultural Outlook 2012-2021 points out that agricultural production needs to increase by 60% over the next 40 years to meet rising food demand. Globally, the scope for expanding agricultural land is limited, so additional tools need to be implemented in order to maintain the burgeoning population increase. In this context, the development of biotechnologically enhanced crops with higher yield and tolerance towards stresses could be essential for the sustainable use of our limited land and water resources.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

Occupying up to 90% of the volume of an individual cell, the vacuole is the most prominent compartment of the plant cell. The plant vacuoles are responsible for the transport and accumulation of nutrients, carbohydrates and storage proteins, and their function directly impacts plant yield and nutritional value. In plants, two types of vacuoles with different properties have been identified, the lytic vacuoles that carry out many of the same processes as yeast and mammalian lysosomes such as the breakdown and recycling of cellular components, and the protein storage vacuoles (PSVs) that carry out an additional number of plant-specific functions such as the accumulation and sequestration of toxic compounds and the storage of defense molecules such as alkaloids, phenolics, and protease inhibitors. Although components of the trafficking machinery to lytic vacuoles are well defined and appear to be conserved in yeast and multicellular eukaryotes, very little is known about the cellular machinery and regulatory mechanisms required for transport of vacuolar soluble proteins to the PSV. To define the genetic element and regulatory mechanisms required for the accumulation and mobilization of reserves into the storage vacuoles we will use a systems biology approach that combines computational tools (algorithm development), analytical tools (Proteomics), and a set of biological tools from the biochemistry, molecular biology and cell biology fields (Classical genetics, microscopy, and molecular biology) in the model plant Arabidopsis thaliana. The basic knowledge derived from this research will allow the design of experimental approaches aimed at improving biomass, production yield, and fitness through the enhancement of various vacuolar reserves in crops of economical interest.

Оригинален текст от CORDIS (на английски).

Участници

Връзки

Данни: CORDIS, © Европейски съюз