H2020Individual fellowship2015–2017

KGBVIFEF · Utilizing the fusion machinery of Herpes Simplex Virus to unveil the general process of membrane fusion

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2015-05-01 → 2017-04-30
EU contribution
€183,455
Participants
1
Scheme
MSCA-IF-EF-ST

Lines connect the coordinator with its partners.

Results in brief

Utilizing the fusion machinery of Herpes Simplex Virus to unveil the general process of membrane fusion

Membrane fusion is a basic mechanisms of cell biology, but its molecular details remain poorly understood. A better knowledge will advance the understanding of a multitude of processes ranging from initial steps of pathogenic attack to developmental diseases and help developing new therapeutic drugs. Cell entry of Herpes simplex virus-1 (HSV-1) by membrane fusion is supposedly mediated by the surface glycoprotein gB. Unlike many other viral fusion proteins, the process including the initial recognition, approximation and fusion of the two membranes, plus its regulation is distributed to four glycoproteins, namely gB, gD and gH/gL. The overall objective of this project was to take advantage of this modularity to better understand the individual steps of the fusion process and hence HSV-1 cell entry. This approach included the structural determination of the full-length, membrane bound fusogen gB as well as investigating its interaction with other fusion complex members. By reconstitution of the protein complex in vitro and determination of the fusion trigger, the cascade of events during fusion was to be analysed in molecular detail. This information would then be applied to determine the structural arrangement of the full complex on the virus particle. The project employed a multidisciplinary, structure-functional study combining different methods and data from structural biology, biochemistry and biophysics. This includes fluorescence microscopy, full-length membrane glycoprotein purification and biochemical reconstitution, but also in-depth training in and application of state-of-the-art electron cryo microscopy/tomography (cryo-EM/ET), sub-volume averaging, classification and single particle imaging. In the course of this project significant advances have been made towards understanding HSV-1 membrane fusion. This includes structural determination of the full-length, membrane anchored fusion protein gB in two distinct conformations (one is novel) and its processing and interaction with other fusion complex members. As complex formation requires a deeper understanding of the regulation of interaction, an expansion of the approach, including further technologies was necessary and deciphering of the full mechanism is still ongoing. Integral to the project a full personal training in latest, high resolution imaging technology and qualifying me now as highly skilled scientist in state-of-the-art cryoEM and also allowed me to set up an extensive scientific network at conferences, workshops and via numerous collaborations, helping me to establish myself as independent scientist in the field of European life science.

Data: CORDIS, © European Union

Project objective

Membrane fusion is a basic cell biological process found in diverse pathways ranging from vesicle trafficking and cell division to viral host entry. It is mediated by fusion proteins residing in the membrane. The underlying molecular mechanisms are supposed to follow a common order of events, i.e. fusion through hemifusion. Cell entry of Herpes simplex virus-1 (HSV-1) is enabled by glycoproteins residing on the viral envelope membrane. In contrast to other viruses, this is accomplished by different glycoprotein species, mediating together the attachment and subsequent fusion between the viral and host cell membrane. At least four of these proteins are essential for membrane deformation leading to fusion pore formation. In the here proposed project, I will take advantage of the modularity of the HSV-1 fusion machinery to dissect this process into discrete steps which I will analyse in situ at molecular resolution to determine the molecular details of membrane fusion. To do so, I will employ a multidisciplinary approach combining methods and data from structural biology, biochemistry as well as biophysics and molecular dynamics to solve the mechanistic details of a cell biological question. This includes fluorescence and cryo electron microscopy and tomography full-length membrane glycoprotein purification and biochemical reconstitution methods, biomolecular interaction and structural X-ray analysis, sub-volume averaging and classification as well as single particle imaging. To find the nenecessary triggers for fusion I will reconstitute the complete fusion system and thereby reveal the spatio-temporal changes that catalyse the fusion process. Taken together this structure-functional study will enable insights into hitherto ill-characterised intermediates in the conserved mechanism of membrane fusion. This project is a great opportunity to expand my research competence at the interphase of different fields ranging from cellular and structural biology to biophysics.

Original text from CORDIS.

Participants

  • THE CHANCELLOR, MASTERS AND SCHOLARS OF THE UNIVERSITY OF OXFORD · OxfordCoordinatorUnited Kingdom

Links

Data: CORDIS, © European Union