HEИндивидуална стипендия2023–2025

FlexAggon · Evolutionary origin of cell adhesion: the basis of multicellularity in the choanoflagellate Choanoeca flexa

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

Период
2023-05-01 → 2025-04-30
Финансиране от ЕС
195 915 €
Участници
1
Схема
HORIZON-TMA-MSCA-PF-EF

Линиите свързват координатора с партньорите.

Накратко на български

Еволюцията на клетъчното свързване се проучва чрез организма Choanoeca flexa, който преминава от едноклетъчен към многоклетъчен стадий. Това помага да се разбере как първите многоклетъчни животни са се появили и как са използвали наличните си гени за тази цел.

Този кратък обзор е генериран от изкуствен интелект

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

Резултати накратко

Evolutionary origin of cell adhesion: the basis of multicellularity in the choanoflagellate Choanoeca flexa

Cell adhesion is a signature feature of animal multicellularity. Animal cells control and maintain stable cellular connections through direct or indirect contacts between cells using surface transmembrane receptors known as cell-adhesion molecules (CAMs). The activity of most CAMs – and thus cell adhesion – is primarily associated with their ligand binding and, in some cases, can also be regulated from inside the cell by proteins interacting with them or stabilised by extracellular molecules. Despite the importance of cell adhesion regulation in fundamental developmental processes, little is known about how cell adhesion evolved along the animal stem lineage. Recently, efforts to reconstruct the mechanisms by which the first multicellular animals evolved have greatly benefited from comparisons of extant animals and their closest living unicellular relatives. Sequencing the genomes and transcriptomes of the closest unicellular relatives of animals revealed that they encode homologs of many genes involved in animal multicellularity previously considered exclusive to animals, including cell adhesion genes. This points to ancestral gene repurposing (co-option) as an important driving force in the emergence of multicellular animals. Moreover, investigations on the developmental modes in these organisms significantly changed our vision of the unicellular ancestor’s biological capabilities: many members in each unicellular lineage can temporarily transition to multicellular stages in their life cycles, making them powerful systems for the study of the early evolution of cell adhesion regulation and multicellularity in animals. However, whether homologs of animal “cell adhesion genes” and/or environmental regulators mediate multicellular development among unicellular relatives of animals remains unknown. FlexAggon hypothesises that some of the molecular mechanisms for controlled cell adhesion in animals have preceded animals' evolution and might therefore still be found in their unicellular relatives. This hypothesis is suggested by comparative genomic studies and observations of the life history of extant unicellular relatives of animals, but remains to be tested on functional grounds. Thus, by systematically characterising and linking the extracellular (environmental) and endogenous (genetic) factors regulating cell adhesion during the formation of multicellular phenotypes in these extant unicellular species, we can clarify the cell adhesion mechanisms that permitted the unicellular-to-multicellular transition during animal evolution. The main aim of FlexAggon was to elucidate the cellular adhesion molecules and environmental regulators that govern multicellularity in one of the closest living relatives of animals, the recently discovered choanoflagellate Choanoeca flexa. FlexAggon replicated a range of environmental conditions of C. flexa’s natural habitat in the laboratory and systematically tested their effect on C. flexa colony formation. Based on preliminary data, I focused on systematically varying salinity, which proved to influence C. flexa colony formation. This included standardizing lab conditions to induce and monitor C. flexa colony formation using live imaging, Confocal/Airyscan microscopy and inhibitory assays; as well as understanding C. flexa life cycle in its natural context in its original isolation site in the field. A significant discovery I contributed to was that (1) C. flexa develops sheets through a mixed mode of clonal-aggregative multicellularity; (2) salinity regulates transitions into and out of multicellularity in C. flexa under laboratory conditions. In addition, we explored how this phenomenon regulates C. flexa life cycle in its natural context. I, together with my collaborators, performed two independent fieldwork expeditions on the Caribbean island of Curaçao, which resulted in four additional unforeseen findings: (3) the life cycle of C. flexa is linked to the natural cycles of evaporation and refilling in splash pools; (4) gradual evaporation in splash pools triggers loss of multicellularity and differentiation into desiccation-resistant cysts in C. flexa; (5) rehydration of soil samples induce a cyst-to-flagellate transition and restores multicellularity; (6) aggregation in C. flexa is constrained by kin recognition; (7) the sequencing of C. flexa genome from various strains revealed genetic differences between strains, allowing us to identify candidate genes potentially involved in selective adhesion.

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

Цел на проекта

How animal multicellularity evolved from unicellular ancestors remains an open evolutionary question. One key pre-requisite for the evolution of animal multicellularity was the evolution of cell adhesion. However, little is known about how cell adhesion evolved in the animal stem. In the last decades, considerable advances to reconstruct early animal evolution have come from investigations of the closest living unicellular relatives of animals, notably the choanoflagellates. These microeukaryotes have become powerful models to address the evolution of animals, for several reasons: (1) they are the sister group to all animals; (2) their genomes encode homologs of genes that can inform about animal origins, including an animal-like “cell-adhesion toolkit”; (3) they can temporarily adhere to each other and form multicellular colonies; and (4) they are amenable to functional genetics. Therefore, studies on choanoflagellate molecular and cell biology can inform the mechanisms of the emergence of multicellularity in animals. Here, I will investigate the cell adhesion mechanisms governing multicellularity in the recently discovered choanoflagellate Choanoeca flexa. C. flexa has direct cell-cell adhesion and aggregative multicellularity (unique in choanoflagellates) and also undergoes light-controlled collective contractility of colonies (unique in unicellular relatives of animals), making it a powerful model to study the emergence of collective behaviors. I will perform a systematic characterization of the environmental and endogenous factors regulating cell adhesion during colony formation in C. flexa using a combination of genetic engineering, biochemistry, proteomics, molecular and cell biology approaches, and functional genomics. The data generated here will contribute to converting C. flexa into an experimentally tractable species and has the potential to shed light on the pre-metazoan function of cell adhesion genes.

Оригинален текст от CORDIS (на английски).

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Данни: CORDIS, © Европейски съюз