ARCHAEAL MOTILITY · Motiliy in the third domain of life: the haloarchaeal way to move
7РП — „Хора“ (Действия „Мария Кюри“)
- Период
- 2015-03-01 → 2017-08-02
- Финансиране от ЕС
- 161 969 €
- Участници
- 2
- Схема
- MC-IEF
Линиите свързват координатора с партньорите.
Накратко на български
Археите използват специални протеинови нишки, наречени архелиуми, за да се движат към подходящи условия. Разбирането на тези структури помага да се създаде модел за това как тези микроорганизми променят посоката си на движение.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Motiliy in the third domain of life: the haloarchaeal way to move
Background: Motility is important for all living organisms. It allows them to move to environments with optimal conditions for growth (such as temperature, nutrient availability, ect). Members of the three domains of life, archaea, bacteria and eukaryotes have developed different structures to achieve motility. Archaea and bacteria both use a rotating filament to propel themselves forward. Their functions are similar, however the structure of these filaments is fundamentally different. The motility structure of archaea is composed of proteins with homology to type IV pili. To distinguish it from its bacterial counterpart it is named the archaellum. Via horizontal gene transfer archaea have received the chemotaxis machinery that is in bacteria responsible for the transfer of environmental signals to the base of the motility structure, which results in a change of direction of rotation. As the motility structures of archaea and bacteria are so different it is surprising that the bacterial chemotaxis components, notably the CheY response regulator protein, can still bind to the archaeal motility structure. Therefore, the objective of this project is to identify subunits of the archaellum important for rotational switching. This information can be used to design a model how archaea can achieve directional movement. Results: To meet the objective a new model system was established in the laboratory of Prof Albers. We opted for a euryarchaeal model, as it has both the archaellum and a chemotaxis system. The halophile Haloferax volcanii was chosen because of the good microscopy and genetic tools available for this system. We used this model to construct various genetic knock-outs and studied their phenotype on semi-solid agar plates to determine their ability for directional movement. Their swimming behavior was studied with thermomicroscopy at 45 °C, the native growth temperature of H.volcanii. In addition, we created several mutants of the chemotaxis protein, CheY, with amino acid substitution and also studied their phenotype. This showed the mechanism of action of the central chemotaxis protein, CheY, is generally conserved between bacteria and archaea. However, the crystal structure of CheY also revealed some specific structural adaptations to allow for binding with archaeal specific partners of the chemotaxis system. Conclusion: Conclusively, archaeal CheY proteins conserved the central mechanistic features between bacteria and archaea, but evolved towards a new archaellum specific interaction partner. Therefore the chemotaxis systems represents an adaptive evolutionary plug-and-play device. Impact: The knowledge obtained in the course of this project has contributed to mapping the diversity of the motility machinery amongst archaea and as such impacts has broad impact: 1) Due to the homology of the archaellum with bacterial type IV pili the obtained knowledge is also helping to understand the mechanism of type IV pili formation. Since type IV pili are crucial for the pathogenicity of many Gram negative bacteria, this research might help to develop possible strategies to fight infectious bacteria and prevent their invasion of eukaryotic hosts. 2) While initially all archaea were believed to be extremophilic, research in the past decade has led to the realization that archaea can be found nearly in all habitats, including the human gut. Knowledge on archaeal motility is highly relevant, because a changed motility potential of cells has high importance in the development of several clinical symptoms and syndromes. Altered chemotactic activity of pathogens can be a clinical target. Alteration of motility potential of microorganisms with pharmaceutics can decrease infections or spreading of infectious diseases. 3) The archaellum contains only few subunits, and this system represents one of the smallest biological motors. This project has enablee us to obtain valuable basic knowledge, but also contributes information required to employ this latter to develop a nano-motor for future biotechnological applications.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
The first representatives of the third domain of life, Archaea, were isolated from particularly harsh environments. Long it was thought that all archaea are ‘extremophiles’, but recently archaea were discovered in many temperate habitats, including the human gut, sea and soil, where they perform key roles in biochemical cycles.Archaea are the least explored domain of life and little is known about the mechanisms underlying motility and adhesion. Understanding these processes is especially timely since the widespread occurrence of archaeal species in environments including the human body is becoming more and more apparent.Archaeal motility has initially been studied using a thermophilic model organism, which has revealed that the structure responsible for swimming behavior of archaea is the ‘archaellum’. The archaellum has structural homology with bacterial type IV pili, which are at the basis of the pathogenicity of many Gram negative bacteria. However, the archaellum is rotating and thereby functionally resembles the bacterial flagellum.Taking advantage of this initial expertise and knowledge on archaeal motility available in the host laboratory, this project aims to focus on the mesophilic euryarchaeal model: Haloferax volcanii. This model is very appealing to study the molecular mechanism underlying motility, because genes encoding the archaellum components are linked with those of the bacterial chemotaxis pathway in haloarchaea. In addition, this model is one of the few genetically tractable archaeal systems that allows for advanced engineering, offering the unique option to study the mechanism of rotational switching, which influences the cells ‘decision’ to move or stay.The proposed research is important from both fundamental and medical perspective. In addition it opens the exiting possibility to develop a stable minimal nano-motor for synthetic biology, because the archaellum represents the biological rotating filament with lowest complexity
Оригинален текст от CORDIS (на английски).
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Данни: CORDIS, © Европейски съюз
