H2020Индивидуална стипендия2016–2018

Class II PI3K · Characterization of the signalling and physiological roles of the class II PI3Ks

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

Период
2016-02-01 → 2018-01-31
Финансиране от ЕС
183 455 €
Участници
1
Схема
MSCA-IF-EF-ST

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Накратко на български

Фосфоинозитид 3-киназите от клас II регулират транспорта на вещества между различните части на клетката, подобно на движението между стаите в къща. Разбирането на техните функции помага да се установи дали могат да бъдат използвани за създаване на нови лекарства.

Този кратък обзор е генериран от изкуствен интелект

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

Резултати накратко

Characterization of the signalling and physiological roles of the class II PI3Ks

This project deals with important regulators of fundamental processes inside mammalian cells, called phosphoinositide 3-kinases (abbreviated as PI3Ks). This family comprises 8 members, called isoforms, in mammals. One function of PI3Ks is to transmit signals from the outside to the inside of cells, and make the cells respond in appropriate ways. This process is called signal transduction, and four members of the PI3K family, called the class I PI3K, have been shown to be essential for this. Another function is to remodel intracellular membranes in a process called vesicular trafficking, and this is what the other four PI3Ks (the class II and III isoforms) are believed to control. Vesicular traffic serves to exchange contents with the outside and in between different compartments of a cell, much like rooms within a house that have distinct functions. However, much less is known about those class II and III PI3Ks and how signal transduction and vesicular trafficking are interconnected. An important scientific question is to clarify the functions of the different PI3K family members and understand how they work. Thus far, scientists have mainly studied the class I PI3Ks and discovered specialised functions of the different family members, both in healthy tissue and in cancer, inflammation and diabetes. Drugs against class I PI3Ks are currently being tested in clinical trials in human cancer and allergy. The class III PI3K has been shown to be important for the distribution and processing of materials taken up by cells, as well as for a process called self-eating that helps to keep the cell clean and organized. To date, comparably little is known about the class II PI3Ks, especially about their physiological importance and whether they could be useful drug targets. In this project, we have set out to explore novel functions of the class II PI3Ks that depend on their enzymatic activity and could hence indicate their potential as drug targets. These studies are largely based on mice in which class II PI3Ks have been inactivated, an approach that has been shown to successfully model inactivation in a drug-like fashion (illustrated in the scheme below). The most common approach of genetic manipulation of model organisms, the so-called knock-out, entirely removes the targeted enzyme from the organism. The important difference to our approach is that the enzyme is still present, but will be inactive – just as if a drug against this enzyme were being used.

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

Цел на проекта

Phosphoinositide 3-kinases (PI3Ks) are lipid kinases that generate intracellular second messengers in signal transduction and membrane trafficking pathways and are important drug targets. This proposal seeks to delineate the roles and mechanism of action of a group of PI3Ks which have remained enigmatic ever since their discovery over a decade ago.The PI3K family comprises eight members in three subclasses. Class I PI3Ks signal downstream of growth factor and G protein-coupled receptors, are amongst the most commonly mutated genes in cancer and are being exploited as drug targets. The class II and III PI3Ks have in part emerged as regulators of membrane trafficking pathways but their physiological roles remain poorly understood.We aim to identify the physiological roles of the class II PI3K-C2α and β and to characterize the impact of their kinase activity on signalling pathways. To analyse the roles of class II PI3K activity in vivo, the Host Laboratory has created constitutive global and conditional knock-in kinase-inactive mice (unpublished). In contrast to PI3K gene knockout models, these mouse lines allow us to specifically address kinase-dependent functions and hence are an ideal model to evaluate the potential of class II PI3Ks as drug targets.The class II PI3K-C2α (C2α) is involved in endo- and exocytosis as well as endocytic recycling, whereas PI3K-C2β (C2β) has been implicated in cell migration. However, their influence on cellular signalling is unknown. As an initial approach, the Host Laboratory performed a screen for proteins interacting with C2α or C2β (unpublished). We will explore hits from this screen using the kinase-inactive knock-in mice and cells derived thereof as discovery tools. The combination of my expertise in membrane traffic and phosphoinositide regulation with the mouse and signalling studies of the Host Laboratory form an excellent and timely basis to uncover the roles of the class II PI3Ks in mammalian biology.

Оригинален текст от CORDIS (на английски).

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Данни: CORDIS, © Европейски съюз