H2020Индивидуална стипендия2021–2023

CLAVHUB · Regulation of plasmodesmata signalling and transport by the CLAVATA1 and ARABIDOPSIS CRINKLY 4 receptor-like kinases

„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“

Период
2021-12-27 → 2023-12-26
Финансиране от ЕС
174 806 €
Участници
1
Схема
MSCA-IF

Линиите свързват координатора с партньорите.

Накратко на български

Протеините CLV1 и ACR4 при растението Arabidopsis thaliana регулират работата на меристемите, които създават нови корени, клони и цветове. Разбирането на тези механизми помага за създаването на култури с по-голям добив и по-добра устойчивост.

Този кратък обзор е генериран от изкуствен интелект

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

Резултати накратко

Regulation of plasmodesmata signalling and transport by the CLAVATA1 and ARABIDOPSIS CRINKLY 4 receptor-like kinases

With global population growth and the threats of climate change, producing hardy, pest-resistant crops with larger yields is the holy grail of plant science. Historically, selectively breeding crops may have taken thousands of years and there was no knowledge of the genetic mechanisms underlying advantageous traits. In recent decades, researchers have linked phenotypic traits to specific genes and have found that many desirable traits are determined by a set of genes involved in regulating plant meristems. Meristems are regions of the plant that maintain pools of undifferentiated stem cells and enable it to generate new structures, like roots, branches or flowers, throughout its entire lifetime. It is the regulation of these meristems that controls the plant’s overall architecture, allowing it to respond to environmental inputs and adapt its growth accordingly. By taking advantage of naturally-arising differences in meristem regulation, scientists have been able to modify crop architecture to increase yields, for example by selecting tomato plants with larger floral meristems that produce more and lager fruits, or dwarf rice plants that divert more resources to seed production rather than stem tissue. Despite their agricultural significance, we still don’t fully understand the fundamental ways in which meristems are controlled. To investigate this, the CLAVHUB project used the model plant Arabidopsis thaliana, a member of the brassica family whose small size, short lifecycle and relatively simple genetics makes it particularly suitable for study and propagation in the lab. CLAVHUB concentrated on two Arabidopsis proteins involved in meristem regulation: ARABIDOPSIS CRINKLY 4 (ACR4) and CLAVATA 1 (CLV1). ACR4 and CLV1 are both receptor kinases, a class of proteins straddling the cell membrane that can receive messages from outside the cell and relay them to effectors inside the cell. One interesting feature of ACR4 and CLV1 is that, as well as being distributed throughout the cell membrane, they also concentrate at specific points along the membrane. These points correspond to plasmodesmata, membrane-lined channels that enable nutrients and informational molecules to move from cell to cell through the cell wall. While small molecules can freely diffuse through plasmodesmata, the movement of larger molecules, such as RNAs or transcription factors, is selective. This is particularly important in plant development, which relies on regulatory molecules being able to move between specific regions to establish cell identity. However, how this selectivity is achieved it not well understood. This brings us back to ACR4 and CLV1 because, in addition to clustering at plasmodesmata, the two proteins form complexes there. Furthermore, these complexes differ from the complexes they form elsewhere in the plasma membrane. This suggests that ACR4 and CLV1 have a plasmodesmata-specific function. The aim of CLAVHUB was to try to find out what this function was: a) whether plasmodesmata simply provide a platform on which to assemble signalling hubs, and/or b) if ACR4 and CLV1 are somehow influencing the function of plasmodesmata by modulating their permeability, and c) what other proteins are involved.

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

Цел на проекта

Meristems are the stem cell reservoirs that enable plants to grow and develop throughout their lifetime. Meristem activities shape a plant’s architecture and phenotype, and enable it to acclimate and respond to its environment. However, little is known of the mechanisms through which meristem maintenance and functions are regulated. The receptor-like kinase (RLK) CLAVATA1 (CLV1) promotes cell differentiation and forms a negative feedback loop with the mobile, stem cell fate-promoting transcription factor WUSCHEL (WUS) in the shoot meristem to balance the generation of new organs with stem cell maintenance. Mutations in the CLV1 pathway are responsible for several advantageous crop traits achieved through selective breeding, such as larger tomato fruit, making meristems the focus of further attempts to improve crop productivity. A similar stem cell control pathway acts in the root meristem, involving the RLKs ARABIDOPSIS CRINKLY 4 (ACR4) and CLV1, which form complexes that preferentially localise to plasmodesmata (PDs). This led to the hypothesis that these complexes control the symplastic exchange of molecules, such as transcription factors that promote stem cell fate, through PDs. Here I will use state-of-the-art proteomics, super-resolution nanoscopy and high-resolution in vivo fluorescence microscopy methods to characterise these PD-localised RLK complexes in Arabidopsis, and identify novel downstream signalling effectors. Using CRISPR knock-out mutants and novel in vivo signalling and transport assays, I will analyse the roles of CLV1/ACR4-signalling in regulating PD signalling and transport, and in controlling meristem maintenance and development. A greater understanding of CLV1/ACR4-signalling functions and the effect of changes in regulatory gene expression will enable the development of synthetic peptides or targeted plant breeding strategies to control plant phenology and architecture, ensuring crops can be adapted to grow in an ever-changing climate.

Оригинален текст от CORDIS (на английски).

Участници

  • HEINRICH-HEINE-UNIVERSITAET DUESSELDORF · DusseldorfКоординаторГермания

Връзки

Данни: CORDIS, © Европейски съюз