Wanda Kukulski
Laboratory of Molecular Biology
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Publication
Featured researches published by Wanda Kukulski.
Journal of Cell Biology | 2011
Wanda Kukulski; Martin Schorb; Sonja Welsch; Andrea Picco; Marko Kaksonen; John A. G. Briggs
New methodology improves the spatial resolution and sensitivity of correlative light and EM tomography, revealing new insights into dynamic cellular processes.
Cell | 2012
Wanda Kukulski; Martin Schorb; Marko Kaksonen; John A. G. Briggs
Endocytosis, like many dynamic cellular processes, requires precise temporal and spatial orchestration of complex protein machinery to mediate membrane budding. To understand how this machinery works, we directly correlated fluorescence microscopy of key protein pairs with electron tomography. We systematically located 211 endocytic intermediates, assigned each to a specific time window in endocytosis, and reconstructed their ultrastructure in 3D. The resulting virtual ultrastructural movie defines the protein-mediated membrane shape changes during endocytosis in budding yeast. It reveals that clathrin is recruited to flat membranes and does not initiate curvature. Instead, membrane invagination begins upon actin network assembly followed by amphiphysin binding to parallel membrane segments, which promotes elongation of the invagination into a tubule. Scission occurs on average 9 s after initial bending when invaginations are ∼100 nm deep, releasing nonspherical vesicles with 6,400 nm2 mean surface area. Direct correlation of protein dynamics with ultrastructure provides a quantitative 4D resource.
Methods in Cell Biology | 2012
Wanda Kukulski; Martin Schorb; Sonja Welsch; Andrea Picco; Marko Kaksonen; John A. G. Briggs
The application of fluorescence and electron microscopy to the same specimen allows the study of dynamic and rare cellular events at ultrastructural detail. Here, we present a correlative microscopy approach, which combines high accuracy of correlation, high sensitivity for detecting faint fluorescent signals, as well as robustness and reproducibility to permit large dataset collections. We provide a step-by-step protocol that allows direct mapping of fluorescent protein signals into electron tomograms. A localization precision of <100 nm is achieved by using fluorescent fiducial markers which are visible both in fluorescence images and in electron tomograms. We explain the critical details of the procedure, give background information on the individual steps, present results from test experiments carried out during establishment of the method, as well as information about possible modifications to the protocol, such as its application to 2D electron micrographs. This simple, robust, and flexible method can be applied to a large variety of cellular systems, such as yeast cell pellets and mammalian cell monolayers, to answer a broad spectrum of structure-function related questions.
Molecular Biology of the Cell | 2015
Harsha Garadi Suresh; Aline X.S. Santos; Wanda Kukulski; Jens Tyedmers; Howard Riezman; Bernd Bukau; Axel Mogk
Lipid homeostasis is modulated upon starvation at three different levels manifested in reversible 1) spatial confinement of lipid biosynthetic enzymes, 2) mitochondrial and endoplasmic reticular reorganization, and 3) loss of organelle contact sites, thus highlighting a novel mechanism regulating lipid biosynthesis by simply modulating flux through the pathway.
EMBO Reports | 2016
Chiara Bertipaglia; Sarah Schneider; Arjen J. Jakobi; Abul K. Tarafder; Yury S. Bykov; Andrea Picco; Wanda Kukulski; Jan Kosinski; Wim J. H. Hagen; Arvind C. Ravichandran; Matthias Wilmanns; Marko Kaksonen; John A. G. Briggs; Carsten Sachse
Selective autophagy is the mechanism by which large cargos are specifically sequestered for degradation. The structural details of cargo and receptor assembly giving rise to autophagic vesicles remain to be elucidated. We utilize the yeast cytoplasm‐to‐vacuole targeting (Cvt) pathway, a prototype of selective autophagy, together with a multi‐scale analysis approach to study the molecular structure of Cvt vesicles. We report the oligomeric nature of the major Cvt cargo Ape1 with a combined 2.8 Å X‐ray and negative stain EM structure, as well as the secondary cargo Ams1 with a 6.3 Å cryo‐EM structure. We show that the major dodecameric cargo prApe1 exhibits a tendency to form higher‐order chain structures that are broken upon interaction with the receptor Atg19 in vitro. The stoichiometry of these cargo–receptor complexes is key to maintaining the size of the Cvt aggregate in vivo. Using correlative light and electron microscopy, we further visualize key stages of Cvt vesicle biogenesis. Our findings suggest that Atg19 interaction limits Ape1 aggregate size while serving as a vehicle for vacuolar delivery of tetrameric Ams1.
eLife | 2016
Wanda Kukulski; Andrea Picco; Tanja Specht; John A. G. Briggs; Marko Kaksonen
In a previous paper (Picco et al., 2015), the dynamic architecture of the protein machinery during clathrin-mediated endocytosis was visualized using a new live imaging and particle tracking method. Here, by combining this approach with correlative light and electron microscopy, we address the role of clathrin in this process. During endocytosis, clathrin forms a cage-like coat around the membrane and associated protein components. There is growing evidence that clathrin does not determine the membrane morphology of the invagination but rather modulates the progression of endocytosis. We investigate how the deletion of clathrin heavy chain impairs the dynamics and the morphology of the endocytic membrane in budding yeast. Our results show that clathrin is not required for elongating or shaping the endocytic membrane invagination. Instead, we find that clathrin contributes to the regularity of vesicle scission and thereby to controlling vesicle size. DOI: http://dx.doi.org/10.7554/eLife.16036.001
Structure | 2018
Tanmay A. M. Bharat; Patrick C. Hoffmann; Wanda Kukulski
Summary Electron microscopy imaging of macromolecular complexes in their native cellular context is limited by the inherent difficulty to acquire high-resolution tomographic data from thick cells and to specifically identify elusive structures within crowded cellular environments. Here, we combined cryo-fluorescence microscopy with electron cryo-tomography of vitreous sections into a coherent correlative microscopy workflow, ideal for detection and structural analysis of elusive protein assemblies in situ. We used this workflow to address an open question on BAR-domain coating of yeast plasma membrane compartments known as eisosomes. BAR domains can sense or induce membrane curvature, and form scaffold-like membrane coats in vitro. Our results demonstrate that in cells, the BAR protein Pil1 localizes to eisosomes of varying membrane curvature. Sub-tomogram analysis revealed a dense protein coat on curved eisosomes, which was not present on shallow eisosomes, indicating that while BAR domains can assemble at shallow membranes in vivo, scaffold formation is tightly coupled to curvature generation.
Methods in Cell Biology | 2017
Nicholas R. Ader; Wanda Kukulski
Fiducial-based correlation of fluorescence and electron microscopy data from high-pressure frozen and resin-embedded samples allows for high-precision localization of fluorescent signals to subcellular ultrastructure. Here we introduce the triCLEM procedure to facilitate the identification of very rare events for high-precision correlation. We present a detailed protocol to screen high-pressure frozen cell monolayers on sapphire disks for very rare signals by cryo-fluorescence microscopy, relocate the cells of interest after freeze substitution and Lowicryl embedding, and perform fiducial-based correlation of the identified fluorescent signals to high-magnification electron tomograms. We show the applicability of the protocol to localize and image damaged mitochondria marked by the presence of Parkin, a protein involved in initiating mitophagy. We discuss how this extension to previously published fiducial-based correlation procedures has potential to both allow identifying very rare events and assess the quality of preservation in high-pressure frozen samples.
Biology of the Cell | 2017
Patrick C. Hoffmann; Wanda Kukulski
Membrane contact sites (MCS) are platforms of physical contact between different organelles. They are formed through interactions involving lipids and proteins, and function in processes such as calcium and lipid exchange, metabolism and organelle biogenesis. In this article, we discuss emerging questions regarding the architecture, organisation and assembly of MCS, such as: What is the contribution of different components to the interaction between organelles? How is the specific composition of different types of membrane contacts sites established and maintained? How are proteins and lipids spatially organised at MCS and how does that influence their function? How dynamic are MCS on the molecular and ultrastructural level? We highlight current state of research and point out experimental approaches that promise to contribute to a spatiomechanistic understanding of MCS functions.
bioRxiv | 2018
Nicholas R. Ader; Patrick C. Hoffmann; Iva Ganeva; Alicia C. Borgeaud; Chunxin Wang; Richard J Youle; Wanda Kukulski
During apoptosis, Bcl-2 proteins such as Bax and Bak mediate the release of pro-apoptotic proteins from the mitochondria by clustering on the outer mitochondrial membrane and thereby permeabilizing it. However, it remains unclear how outer membrane openings form. Here, we combined different correlative microscopy and electron cryo-tomography approaches to visualize the effects of Bax activity on mitochondria in human cells. Our data show that Bax clusters localize near outer membrane ruptures of highly variable size. Bax clusters contain structural elements suggesting a higher-order organization of their components. Furthermore, unfolding of inner membrane cristae is coupled to changes in the supramolecular assembly of ATP synthases, particularly pronounced at membrane segments exposed to the cytosol by ruptures. Based on our results, we propose a comprehensive model in which molecular reorganizations of the inner membrane and sequestration of outer membrane components into Bax clusters interplay in the formation of outer membrane ruptures.