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Biology subjects

Lehnart, S. E.

Publications and source records attributed to Lehnart, S. E..

7 recordsLinked to original sources

A versatile microfluidics platform for enhanced multi-target super-resolution microscopy

DNA-based Point Accumulation for Imaging in Nanoscale Topography (DNA-PAINT) is a powerful variant of single-molecule localization microscopy (SMLM) that overcomes the limitations of photobleaching, offers flexible fluorophore selection, and enables fine control of imaging parameters through tunable on- and off-binding kinetics. Its most distinctive feature is the capacity for multiplexing, which is achieved through a process known as Exchange-PAINT. This technique involves assigning orthogonal DNA strands to different targets within a sample and then sequentially adding and removing complementary imager strands that are specific to only one target at a time. However, manual Exchange-PAINT workflows are often inefficient, prone to drift and variability, and lack reproducibility. Here, we introduce a custom compressed-air-driven microfluidics system specifically designed for multiplexed SMLM. Featuring a stackable and modular design that is, in principle, not limited by the number of channels, the system ensures robust, reproducible, and material-efficient buffer exchange with minimal dead volume. It operates in both manual and automated modes and can be readily adapted to a wide range of commercial and custom microscopes, including wide-field, confocal, STED, and MINFLUX platforms. We demonstrate robust 5-plex Exchange-PAINT imaging in cancerous U2OS cells and, importantly, we establish multiplexed nanoscale imaging in fragile primary cardiomyocytes. These applications highlight the unique power of our platform to extend super-resolution multiplexing into physiologically relevant systems, thereby opening new avenues for biomedical research.

biophysics↗

Sarcomere analysis in human cardiomyocytes by computing radial frequency spectra

In cardiomyocytes, the basic contractile unit are sarcomeres, which are organized in a regular manner facilitating their function. Here, we present a new computational approach to assess the functional properties of sarcomeres at the nanoscale level in human cardiac cells, induced pluripotent stem cell-derived cardiomyocytes (iPSC-CMs). We combined our analysis to different types of high-resolution imaging data, structured illumination microscopy (SIM), stimulated emission depletion (STED) microscopy-based imaging, as well as confocal microscopy data. We show that the radially averaged magnitude spectrum (RAMS) revealed sarcomere properties in a human cardiomyocyte model, iPSC-CMs, and compared our RAMS-based analysis to a real-space approach based on manually selected regions of interest. Moreover, we found the RAMS method suitable to quantify molecular differences of sarcomeres such as present in severe cardiac diseases, such as dilated cardiomyopathy (DCM). Defects in the sarcomere organization that occur in the presence of inherited DCM mutations in sarcomere proteins were efficiently recapitulated by our analysis. This new approach may facilitate streamlined analysis of molecular disease-specific phenotypic imaging data of cardiac cells, aiding our deeper understanding of the molecular basis of cardiac diseases.

bioinformatics↗

Development of a protein synthesis network at the sarco/endoplasmic reticulum in adult cardiac myocytes

IntroductionThe endoplasmic reticulum (ER) is the site of synthesis and folding of membrane and secretory proteins, which constitute a large fraction of the total protein output of a mammalian cell. Striated muscle cells contain a specialized membrane system known as the sarcoplasmic reticulum (SR) that controls calcium homeoastasis and contraction, however the biochemical and physiological relationship between the ER and SR and how both compartments participate in protein synthesis remains incompletely understood. MethodsProtein quantification and imaging of selected marker proteins for ER and SR functions was performed to characterize the relationship of the ER and SR and its individual involvement in protein synthesis in neonatal and adult cardiac myocytes. Superresolution microscopy was used to examine the interaction of ribosomes and the SR in adult cardiac myocytes. ResultsQuantification of ER and SR-associated proteins of isolated ventricular cardiac myocytes showed that relative expression of ER/SR resident protein quality elements, as well as relative ribosome levels are decreased in adult cells, whereas SR-associated Ca2+ handling proteins increase. Immunocytoflourescence revealed that the membrane compartment that exists in early postpartum resembles mostly the ER and decreases in postnatal development. The SR is the main membrane network that exists in the adult cardiac myocytes, replacing the ER, in all but the perinuclear region. Immunocytoflourescence staining further indicated that both networks perform overlapping but distinct, specialized functions, such as localization of excitation-contraction coupling exclusively to the SR or initiation of secretion via the classical secretory pathway mainly from the ER. Ribosomes and mRNA were localized both in close proximity to the ER and the SR of adult ventricular cardiac myocytes. Superresolution microscopy confirmed that both the ER as well as the developed SR bind ribosomes and are direct sites of protein synthesis and protein homeostasis in adult cardiac myocytes. ConclusionOur findings suggest molecular differentiation and structural organization of the ER/SR in cardiac muscle development, resulting in the development of a protein synthesis network at the sarco/endoplasmic reticulum in adult cardiac myocytes.

cell biology↗

mini-Complexome Profiling (mCP), an FDR-controlled workflow for global targeted detection of protein complexes

IntroductionCo-fractionation mass spectrometry couples native-like separations of protein/protein complexes with mass spectrometric proteome analysis for global characterization of protein networks. The technique allows for both de novo detection of complexes and for the detection of subtle changes in their protein composition. The typical requirement for fine-grained fractionation of >80 fractions, however, translates into significant demands on sample quantity and mass spectrometric instrument time, and represents a significant barrier to experimental replication and the use of scarce sample material (ex. Patient biopsies). MethodsWe developed mini-Complexome Profiling (mCP), a streamlined workflow with reduced requirements for fractionation and, thus, biological material and laboratory and instrument time. Soluble and membrane-associated protein complexes are extracted from biological material under mild conditions, and fractionated by Blue Native electrophoresis using commercial equipment. Each fraction is analyzed by data independent acquisition mass-spectrometry, and known protein complexes are detected based on the coelution of known components using a novel R package with a controlled false discovery rate approach. The tool is available to the community on a GitHub repository. ResultsmCP was benchmarked using HEK293 cell lysate and exhibited performance similar to established workflows, but from a significantly reduced number of fractions. We then challenged mCP by performing comparative complexome analysis of cardiomyocytes isolated from different chambers from a single mouse heart, where we identified subtle chamber-specific changes in mitochondrial OxPhos complexes. DiscussionThe reduced sample and instrument time requirements open up new applications of co-fractionation mass spectrometry, specifically for the analysis of sparse samples such as human patient biopsies. The ability to identify subtle changes between similar tissue types (left/right ventricular and atrial cardiomyocytes) serves as a proof of principle for comparative analysis of mild/asymptomatic disease states.

systems biology↗

Unbiased complexome profiling and global proteomics analysis reveals mitochondrial impairment and potential changes at the intercalated disk in presymptomatic R14Delta/+ mice hearts

BackgroundPhospholamban (PLN) is a sarco-endoplasmic reticulum (SER) membrane protein that regulates cardiac contraction/relaxation by reversibly inhibiting the SERCA2a Ca2+-reuptake pump. The R14{Delta}-PLN mutation causes severe cardiomyopathy that is resistant to conventional treatment. Protein complexes and higher-order supercomplexes such as intercalated disk components and Ca+2-cycling domains underlie many critical cardiac functions, a subset of which may be disrupted by R14{Delta}-PLN. MethodsWe developed an improved complexome profiling (CP) workflow specifically geared towards identifying disruption of very high molecular-weight (>2 MDa) protein complexes and supercomplexes in presymptomatic R14{Delta}/+ mice hearts. Ventricular tissues were homogenized under non-denaturing conditions, fractionated by size-exclusion chromatography (SEC) and subjected to quantitative data-independent acquisition mass spectrometry (DIA-MS) proteomics analysis. Systematic analysis of CP data using conventional strategies yielded limited insights, likely due to underrepresentation of cardiac-specific complexes in the curated protein complex databases used as ground-truth for analysis. We thus developed PERCOM: a novel data analysis strategy that does not rely upon protein complex databases and can, furthermore, be implemented on widely available spreadsheet software. ResultsSEC-DIA-MS coupled with PERCOM identified 296 proteins with disrupted elution profiles in presymptomatic 28wk-old R14{Delta}/+ mice. Hits were significantly enriched for mitochondrial and intercalated disk (ICD) components. Alterations to mitochondrial and ICD supercomplexes were observed in mice as young as 9wks of age and were associated with reduced expression of mitochondrial proteins and maximal oxygen consumption rate. ConclusionUsing a novel CP workflow, we identify mitochondrial alterations as an early-stage R14{Delta}-PLN event and provide preliminary data showing effects at the ICD. These molecular components underlie critical cardiac functions and their alteration at a young age may contribute to R14{Delta}-PLN pathogenesis.

cell biology↗

Nanoscale architecture and dynamics of CaV1.3 channel clusters in cardiac myocytes revealed by single channel nanoscopy

The clustering of L-type calcium channels for functional regulation of intracellular calcium signaling remains poorly understood. Here we applied super-resolution imaging to study CaV1.3 channel clusters in human iPSC-derived atrial cardiomyocytes (hiPSC-aCM) to analyze subcellular localization, dimensions, architecture, and dynamics, which were largely unexplored previously. STimulated Emission Depletion (STED) imaging characterized the localization and structure of CaV1.3 channel clusters in living cardiomyocytes. DNA Points Accumulation for Imaging in Nanoscale Topography (DNA-PAINT) achieved true molecular resolution, revealing an irregular channel distribution with substantial spacing. Single Particle Tracking (SPT) showed that channels co-diffuse in confined and stationary membrane nanodomains. The cytosolic C-terminal tail of CaV1.3 by itself was found sufficient for cluster formation. In conclusion, our LTCC clustering studies demonstrate that CaV1.3 channel clusters consist of mobile individual channels inside defined membrane nanodomains, in contrast to previous models of dense channel packing.

cell biology↗

Visualizing sarcomere and cellular dynamics in skeletal muscle to improve cell therapies

The giant striated muscle protein titin integrates into the developing sarcomere to form a stable myofilament system that is extended as myocytes fuse. The logistics underlying myofilament assembly and disassembly have started to emerge with the possibility to follow labeled sarcomere components. Here, we generated the mCherry knock-in at titins Z-disk to study skeletal muscle development and remodeling. We find titins integration into the sarcomere tightly regulated and its unexpected mobility facilitating a homogenous distribution of titin after cell fusion - an integral part of syncytium formation and maturation of skeletal muscle. In adult mCherry-titin mice, treatment of muscle injury by implantation of titin-eGFP myoblasts reveals how myocytes integrate, fuse and contribute to the continuous myofilament system across cell boundaries. Unlike in immature primary cells, titin proteins are retained at the proximal nucleus and do not diffuse across the whole syncytium with implications for future cell-based therapies of skeletal muscle disease.

cell biology↗