Dissertation/ Thesis

Vesicle Adhesion, Fusion, and Neurotransmitter Uptake Studied by Small-Angle X-ray Scattering

التفاصيل البيبلوغرافية
العنوان: Vesicle Adhesion, Fusion, and Neurotransmitter Uptake Studied by Small-Angle X-ray Scattering
المؤلفون: Komorowski, Karlo
المساهمون: Salditt, Tim Prof. Dr., Steinem, Claudia Prof. Dr.
سنة النشر: 2022
المجموعة: Georg-August-Universität Göttingen: eDiss
مصطلحات موضوعية: Physik (PPN621336750), small-angle x-ray scattering, time-resolved small-angle x-ray scattering, stopped-flow mixing, microfluidics, lipid vesicles, synaptic vesicles, vesicle adhesion, vesicle fusion, neurotransmitter uptake, x-ray structure analysis of vesicles, electrostatic strong coupling
Time: 530
الوصف: Synaptic neurotransmission is a highly complex and crucial process in the communication between neuronal cells, and is thus directly related to the complex functions of the neural system, including information processing in the brain, sensory reactions, and learning. The last decades have considerably shaped our current understanding of the underlying processes in synaptic neurotransmission on the molecular level, and up to the level of the entire synapse. X-ray crystallography and more recently also cryo-electron microscopy have provided the structural basis to elucidate the function of many synaptic proteins. At the same time, synaptic neurotransmission also relies crucially on processes governed by biological membranes. Synaptic vesicles as small membranous organelles store neurotransmitters in the cytoplasm of the synapse and release them into the synaptic cleft in a highly controlled manner. While synaptic vesicles can be described in a very detailed picture in terms of their molecular composition, less is known about structural rearrangements involved in the dynamic processes of neurotransmitter uptake and fusion with the presynaptic plasma membrane. This work employs X-ray diffraction, in particular small-angle X-ray scattering (SAXS), for structural investigations of vesicles in view of adhesion, fusion and neurotransmitter uptake. To this end, we study model lipid vesicles, as well as vesicles with reconstituted proteins and synaptic vesicles. SAXS is a powerful non-invasive technique which enables to probe the structure of the membrane as well as vesicle size and size distribution (polydispersity) under quasi-physiological conditions in solution. Membrane adhesion and fusion in the physiological system are the result of a complex interplay between lipids, fusiogenic proteins, ions and water molecules. From a physical point of view, attractive and repulsive forces are balanced in membrane adhesion, and repulsion has to be overcome to enable fusion. Experimentally, we show that adhesion of lipid vesicles ...
نوع الوثيقة: doctoral or postdoctoral thesis
اللغة: English
ردمك: 978-1-79469-470-5
1-79469-470-6
Relation: http://resolver.sub.uni-goettingen.de/purl?ediss-11858/13867; http://dx.doi.org/10.53846/goediss-47; urn:nbn:de:gbv:7-ediss-13867-6
DOI: 10.53846/goediss-47
الاتاحة: http://resolver.sub.uni-goettingen.de/purl?ediss-11858/13867
https://doi.org/10.53846/goediss-47
https://nbn-resolving.org/urn:nbn:de:gbv:7-ediss-13867-6
Rights: http://creativecommons.org/licenses/by/4.0/
رقم الانضمام: edsbas.53726109
قاعدة البيانات: BASE
الوصف
ردمك:9781794694705
1794694706
DOI:10.53846/goediss-47