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To survive and thrive in nature, animals need to adapt their behavior to their environment. Behavioral adaptation is primarily due to changes within the brain and involves changes in the brain proteome (the collection of proteins in the brain). However, thus far very few studies have examined the proteomic changes during behavioral adaptation. Hence, with this work I set out to determine the proteomic changes induced in the brain of zebrafish larvae undergoing behavioral adaptation. Specifically, I examined the changes induced by adaptation to the natural challenge of strong water currents. To this end I took advantage of an assay developed by my collaborators Luis Castillo and Soojin Ryu. In this assay 5 days old zebrafish larvae were exposed to strong water currents. Subsequently they exhibited a reduction in cortisol response and initial locomotion, and increased rheotaxis, as defined by increased swimming directly against the water current when re-exposed to the water current. I employed this assay to investigate the changes to the larval zebrafish brain proteome during behavioral adaptation. Furthermore, I developed a method for extracting larval brains and prepare them for mass-spectrometric analysis. This work not only allowed the comparison of the brain proteome of naïve and behaviorally-adapted larvae, but also resulted in the most comprehensive proteome of the zebrafish brain observed to date and the first proteome of the larval zebrafish brain. In total 4309 proteins were identified in the brain. When the proteome of naïve and behaviorally adapted larvae were compared 41 proteins were found to be more abundant and 16 to be less abundant in the pre-exposed larvae. Of these 57 proteins, 28 have previously been found to have functions in the brain, 17 with functions identified in other tissues, and 12 proteins that have yet to be described. From examining the most relevant function of each protein I propose a speculative model in which the larval brain undergoes behavioral adaptation and becomes less susceptible to stress (reduction in mecp2 and hsp90 protein), form new neuronal connections (regulation of arid1b, fmn2b, ptpra, mycbp2, and pcyt2), modulate existing connections (regulation of asic1b, calsenilin, ptpra, aplp2, dag1, olfm1b, mycbp2, smad3a, and acvr2a abundance), undergo spatial learning in form of navigating the water vortex (increases in calsenilin, ptpra, and pcyt2), show an elevation in protein turnover (increases in lamp2, Ublcp1, larp4b, and ublcp1), have increased and regulated energy production (increases or reduction in rpia, ldhbb, and mitochondrial proteins; nfs1, eci1, MRPS2B, MRPL4, and mrps2), and a decrease in neurogenesis (reduction in smad3a, and ric8a).
To further investigate proteomic changes during behavioral adaptation, I investigated the translational response by metabolically labeling the larval forebrain with ANL and visualizing the labeled proteins using the fluorescent non-canonical amino acid tagging (FUNCAT). I detected a general increase in translation within the forebrain as a result of the water vortex adaptation, which correlated well with the range of changes observed in the brain proteome. Specifically, a region within the forebrain correlated with a region in the adult zebrafish that is homologous to the mammalian limbic region.
Taken together these results show that during behavioral adaptation, protein synthesis is significantly increased in the larval forebrain, and that throughout the brain regulation of the proteome includes proteins that could support the following functions: changes or modifications in neuronal connectivity, the stress response, spatial learning, changes in energy metabolism and changes in neurogenesis.
Lastly, I set out to provide a new tool for zebrafish researchers. Together with Güney Akbalik I introduced metabolic labeling of newly synthesized RNA using 5-ethynyluridine (EU) and subsequent visualization with a copper catalyzed clickreaction to the zebrafish larvae. With 5 hours of EU incubation I was able to visualize newly synthesized RNA and identify pentylenetetrazole-induced transcriptional increases. With this I showed that EU labeling could be implemented to examining transcriptional changes within the brain of zebrafish larvae.
Metabolic engineering can serve to convert microorganisms to
microbial cell factories with the goal of producing various chemicals. Commonly used strategies to modify metabolic pathways include deletions and overexpression of genes, as well as the introduction of heterologous genes or genes which have been optimized for the host organism or for a reaction of interest. Aside from these classic metabolic engineering strategies, researchers have also implemented pathway compartmentalization strategies, which mimic nature’s strategies of colocalizing enzymes for pathway optimization.
In this thesis, classic metabolic engineering strategies were combined with pathway compartmentalization strategies. For pathway compartmentalization, mitochondria and peroxisomes were harnessed, and additionally a new strategy to create artificial subcellular organelles was evaluated. In the latter approach, the so-called Zera peptide was fused to the enzymes of interest. Zera consists of the first 113 amino acids of the plant storage protein γ-Zein (Zea mays). Natively, plant storage proteins accumulate in endoplasmic reticulum (ER)-derived vesicles in plant seeds and serve as an amino acid source for the germinating plant. In this thesis, it was shown that Zera also induces the formation of artificial, ER-derived vesicles in Saccharomyces cerevisiae. Furthermore, it was shown that Zera fusion enzymes remained active, albeit with sometimes reduced activity.
In line with the goal of compartmentalizing pathways in these artificial, Zera-induced vesicles, a new tool was developed to determine the pH in the ER of S. cerevisiae and in the ER-derived vesicles. pHluorin, a pH-sensitive green fluorescent protein (GFP) variant, is commonly used to analyze the cytosolic pH or the pH of subcellular organelles. In this thesis, it was shown that pHluorin has very low fluorescence intensity and pH sensitivity in the ER and in Zera-induced ER-derived vesicles. Therefore, a superfolder variant of pHluorin was developed which allows reliable pH measurements in these compartments and can be used to analyze whether the organellar or vesicular pH suits a pathway of interest....
The adult mammalian heart is a non-regenerative organ that fails to recover neither functionally nor structurally after insults. Although, reports show that the presences of mitotic nuclei after pathological or physiological cardiac stress in humans, it is widely accepted that the regenerative capacity of the human heart is immensely inadequate to restore the loss of cardiomyocytes (CMs) (Beltrami et al., 2001; Kajstura et al., 1998). Consequently, myocardial infarctions (MIs) are the primary cause of cardiovascular morbidity and mortality. MIs is the irreversible loss of cardiac myocytes due to prolonged myocardial ischemia caused by an imbalance of the metabolic demand of the myocardium and myocardial blood flow (Whelan et al., 2010). Patients with MIs often die prematurely because of heart failure, resulting from irreversible scar formation on the ventricular wall and undermined heart function (Jessup and Brozena, 2003). Despite early intervention and advancements of medical devices for prevention, MIs are still untreatable, unless the heart transplantation approach considered, which is very limited by heart donation (Augoustides and Riha, 2009). Therefore, there is a high demand for standard therapy for heart failure that can restore the loss of CMs, prompt myocardial regeneration, and eventually, reduce morbidity and mortality rate of the disease.
Contrary to the adult mammalian heart, zebrafish display an extraordinary capacity for heart regeneration after the cardiac insult (Poss et al., 2002). This regenerative response relies on the ability of CMs to proliferate and replenish the lost tissue. Zebrafish is indeed one of the most commonly used experimental models for developmental and regenerative biology studies (Gemberling et al., 2013; Gonzalez-Rosa et al., 2017). For decades, the process of cardiac regeneration has been investigated using various cardiac injury models. The most commonly used and well-established injury methods are ventricular apical resection (Poss et al., 2002; Raya et al., 2003), cryoinjury (Chablais et al., 2011; Schnabel et al., 2011), as well as genetic and chemical ablation of heart cells (Curado et al., 2007; Wang et al., 2011). The origin of new cells is one of the most fundamental questions to be addressed during organ regeneration in any regenerative organism, and understanding of such phenomenon is crucial to design effective therapeutic strategies for non-regenerative organisms (Gonzalez-Rosa et al., 2017; Tanaka and Reddien, 2011).
Despite the robust cardiac regenerative potential, to date, only a handful of lineage tracing experiments have been reported in zebrafish heart regeneration. It was proposed that the cellular source of the renewed cardiac tissue might arise from progenitor or stem cells (Lepilina et al., 2006), through CMs dedifferentiation (Jopling et al., 2010; Kikuchi et al., 2010), transdifferentiation from other cell types in the heart tissue, and/or direct proliferation of the existing CMs (Kikuchi and Poss, 2012). Fate-mapping studies using transgenic lines driven by the myl7 promoter have shown that pre-existing CMs contribute to myocardial regeneration. However, myl7 expression is activated at early developmental stages in cardiac progenitor cells and hence precluding the identification of genuinely mature CMs in adult stages. Therefore, the cellular origin of the regenerating CMs remains elusive. Moreover, CM heterogeneity in the developing and adult zebrafish heart has never been explored to provide full insight into the process of regeneration. Therefore, I set out to identify genes exclusively expressed by either immature or mature CMs, generate promoter-driven reporter and CreERT2 lines to characterize the reporters during zebrafish heart development, and regeneration, and eventually to determine the contribution of the immature CMs to the regenerating CMs....
Ubiquitin and the ubiquitin-like protein ATG8 are covalently attached to their respective targets via a coordinated cascade involving E1 activating, E2 conjugating and E3 ligating enzymes. Whereas ubiquitin is conferred to proteins as mono- and/or polymer(s) to alter their stability, localization and/or activity, the ubiquitin-like modifier (UBL) ATG8 is conjugated to the phospholipid phosphatidylethanolamine (PE). The best understood function of ATG8 is during autophagy where ATG8-PE conjugates are incorporated into both layers of incipient autophagosomes and serve as multipurpose docking sites for autophagosomal cargo receptors as well as regulatory factors (termed adaptors) that drive formation and maturation of autophagosomes. Mammalian cells harbor six ATG8 family members that can be subclassified into the LC3- and GABARAP-family and that can all be lipidated. However, it is currently unclear to what extent these proteins are functionally redundant or fulfil unique roles.
Cullin-RING ligase complexes (CRLs) are modular E3 ubiquitin ligases that comprise a RING-finger protein that associates with the ubiquitin-charged E2 enzyme, a substrate recruiting module as well as a cullin scaffold as a linker between RING protein and substrate adaptor. Whereas SCF (SKP1-CUL1-F-box protein) complexes, the most studied CRLs, harbor cullin-1 (CUL1) as scaffold and F-box proteins as substrate binding modules, CUL3-containing CRL complexes employ cullin-3 (CUL3), RING-box protein 1 (RBX1) and BTB proteins as substrate adaptors. Here, the BTB domain serves as binding interface for CUL3 and is usually complemented by an additional protein-protein interaction domain such as MATH or Kelch that mediates binding to the substrate of the E3 ligase complex.
Besides ubiquitylation, guanine nucleotide binding is another common way to regulate protein activity and signaling in cells. Here, small Rho GTPases cycle between active and inactive states by binding of the guanine nucleotides GTP or GDP with the help of regulatory proteins. Whereas GTPase-activating proteins (GAP) render RAC1 inactive by facilitating GTP hydrolysis, guanine exchange factors (GEF) such as T-lymphoma invasion and metastasis-inducing protein 1 (TIAM1) activate RAC1 by stimulating the exchange of GDP to GTP. Local control of RAC1 activity is essential to allow a specific cellular response to stimuli such as growth factors or migratory impulses.
This study reports an unexpected link between the GABARAP subfamily of mammalian ATG8 proteins, the ubiquitin proteasome system and RAC1 through the ubiquitylation of the RAC1 GEF TIAM1. The Kelch repeat and BTB domain-containing proteins 6 (KBTBD6) and 7 (KBTBD7) were established as heterodimeric substrate adaptors for CUL3. Interestingly, a thorough proteomic analysis revealed a number of putative substrates but, out of 11 substrate candidates tested, only the RAC1 GEF TIAM1 appeared to be influenced by depletion of CUL3KBTBD6/KBTBD7. Binding studies showed that KBTBD7 binds TIAM1 via the Kelch repeats and that this binding was markedly enhanced when CUL3 activation was abolished upon treatment with the neddylation inhibitor MLN4924. Also, total TIAM1 abundance was increased upon CUL3KBTBD6/KBTBD7 depletion and accumulation of TIAM1 upon proteasome inhibition suggested that TIAM1 is degraded via the proteasome. In vivo ubiquitylation assays and denaturing immunoprecipitations as well as mass spectrometrical analysis confirmed that CUL3KBTBD6/KBTBD7 ubiquitylates TIAM1 at two distinct lysines (K1404 and K1420) close to its C-terminus.
Previously, KBTBD6 and KBTBD7 were found as interactors of several members of the human ATG8 family of proteins in a proteomic study analyzing the human autophagy network. This association was confirmed in the present work. Furthermore, peptide array technology and mutational analysis revealed that KBTBD6 and KBTBD7 employ a classical ATG8-family interacting motif (AIM; also referred to as LC3-interacting region or LIR) as binding interface. The AIMs of KBTBD6 (W-V-R-V) and KBTBD7 (W-V-Q-V) fulfil the consensus AIM sequence motif (F/W/Y1-X2-X3-I/L/V4) and are preceded by several acidic residues and serines. A series of structural and cell biological experiments revealed a binding preference for the GABARAP subfamily of human ATG8 proteins and most importantly, a requirement of the GABARAP-KBTBD6 and -KBTBD7 interaction for TIAM1 ubiquitylation. The finding that TIAM1 binding to KBTBD6 and KBTBD7 AIM mutants was diminished raised the possibility that GABARAP binding mediates the recruitment of CUL3KBTBD6/KBTBD7 to membranes where TIAM1 is localized. Interestingly, colocalization of KBTBD6, GABARAPL1 and TIAM1 in punctuate structures could be observed. Since only a very small fraction of GABARAPL1 colocalized with LC3B, and colocalization between KBTBD6 and LC3B was not observed, these vesicular structures are most likely distinct from autophagosomes. Furthermore, TIAM1 ubiquitylation was reduced when GABARAP, but not LC3B, was depleted or when lipidation of GABARAP was prevented.
Stabilization of TIAM1 upon KBTBD6 and/or KBTBD7 depletion led to elevated TIAM1-dependent RAC1 activity, altered actin morphology with increased cortical actin and loss of vinculin foci. Re-introduction of wild-type KBTBD6 or KBTBD7 but not AIM mutants reverted all these phenotypes. Moreover, depletion of KBTBD6 or KBTBD7 in human breast cancer cells massively increased their invasiveness, whereas TIAM1 knockdown had the opposite outcome. All physiological effects of KBTBD6 and KBTBD7 depletion were inhibited by additional depletion of TIAM1 or RAC1 confirming that the phenotypes observed are indeed mediated by the CUL3KBTBD6/KBTBD7-TIAM1-RAC1 signaling pathway. Intriguingly, KBTBD6 and KBTBD7 were not subject to autophagosomal degradation, thereby establishing a new function for GABARAP proteins beyond autophagosomal degradation in providing a signaling platform for recruitment of the E3 ligase CUL3KBTBD6/KBTBD7 in close proximity to its substrate TIAM1, enabling localized ubiquitylation.
Local restricted control of RAC1 activity by ubiquitylation has been described for TIAM1-RAC1 signaling previously. Examples are HECT, UBA and WWE domain-containing protein 1 (HUWE1)-mediated TIAM1 ubiquitylation that occurs predominantly at cell-cell-junctions in response to hepatocyte growth factor stimulation in MDCKII cells or inhibition of RAC1 activity by the RAC1 GAP protein BCR (breakpoint cluster region) at the leading edge of astrocytes through binding to the TIAM1-Par (polarity) complex. SCFBTRC mediates ubiquitylation of TIAM1 in response to mitogens or DNA damage, though it has not been explored whether this regulation is spatially restricted. Thus, this study adds a novel layer of complexity to the spatial regulation of RAC1 signaling by implicating membrane-bound human ATG8 proteins in this process.
Also, this study is the first report specifically implicating the GABARAP proteins in cellular signaling events. It will be interesting to explore whether the concept of localized signaling mediated by GABARAPs applies to other substrates of CUL3KBTBD6/KBTBD7 and membranerelated signaling processes in which GABARAP proteins are involved. Controlling RAC1 activity at GABARAP-decorated membranes might also be important for trafficking events or autophagy since it was described that RAC1 has an inhibitory function on autophagy. Therefore, spatial restricted ubiquitylation of TIAM1 resulting in specific deactivation of RAC1 could promote the autophagic process when locally needed. Although the catalytic mTOR inhibitor Torin1 and the lysosomal H+ ATPase inhibitor BafilomycinA1 promoted TIAM1 ubiquitylation by increasing the pool of membrane-conjugated GABARAP, but other signals that stimulate GABARAP-KBTBD6/KBTBD7 association and subsequent TIAM1 ubiquitylation are to be identified. Besides, determining the KBTBD6/KBTBD7 binding site in TIAM1 or uncovering a deubiquitylating enzyme (DUB) that locally counteracts the ubiquitylation of TIAM1 will enable a better comprehension of the complete localized signaling cascade.
Impact of F1Fo-ATP-synthase dimer assembly factors on mitochondrial function and organismic aging
(2018)
In aerobic organisms, mitochondrial F1Fo-ATP-synthase is the major site of ATP production. Beside this fundamental role, the protein complex is involved in shaping and maintenance of cristae. Previous electron microscopic studies identified the dissociation of F1Fo-ATP-synthase dimers and oligomers during organismic aging correlating with a massive remodeling of the mitochondrial inner membrane. Here we report results aimed to experimentally proof this impact and to obtain further insights into the control of these processes. We focused on the role of the two dimer assembly factors PaATPE and PaATPG of the aging model Podospora anserina. Ablation of either protein strongly affects mitochondrial function and leads to an accumulation of senescence markers demonstrating that the inhibition of dimer formation negatively influences vital functions and accelerates organismic aging. Our data validate a model that links mitochondrial membrane remodeling to aging and identify specific molecular components triggering this process.
Das Ziel dieser Dissertation war es die biologische Rolle der Ubiquitinierung und die Bedeutung für Alterungsprozesse im filamentösen Ascomyceten Podospora anserina zu untersuchen. Folgende Ergebnisse wurden dabei erzielt:
1. Ubiquitinierte Proteine wurden nachgewiesen und die Deubiquitinierung von Proteinen konnte durch den Einsatz der Inhibitoren Urea, PR-619 und PIC erfolgreich inhibiert werden, was die Anwesenheit aktiver Deubiquitinasen in P. anserina beweist. Zudem wurden erstmalig ubiquitinierte Proteine in P. anserina unter den zur Aufreinigung
gewählten Bedingungen über die Technik der LC-MS/MS identifiziert.
2. Insgesamt wurden 1745 ubiquitinierte Proteine in P. anserina identifiziert, was ca. 16,4 % des gesamten Proteoms darstellt. Somit wurde erstmalig das Ubiquitinom des Ascomyceten P. anserina charakterisiert, welches Proteine aus allen zellulären Kompartimenten enthält.
3. Die erste im Rahmen dieser Arbeit durchgeführte umfassende Studie altersabhängiger Veränderungen im Ubiquitinom eines Organismus zeigt eine Herabregulation der Ubiquitinierung im Alter in der gesamten Zelle. Dem gegenüber steigt die Ubiquitinierung an den Mitochondrien leicht an und unterstreicht die Rolle einer mitochondrialen Qualitätskontrolle durch diesen Prozess.
4. Die Untersuchung der am Ubiquitinierungsprozess beteiligten E3-Ligase PaMUS10 zeigt, dass es sich bei Mus10 um ein essentielles Gen in P. anserina handelt, da die Deletion zu starken mitochondrialen Beeinträchtigungen und dem sofortigen Absterben des Organismus direkt nach der Keimung führt.
5. Zur weiteren Untersuchung von PaMus10 wurde erstmalig und vollständig ein Hygromycin-basiertes „Knockdown“-System in P. anserina etabliert, was die detaillierte Untersuchung eines essentiellen Gens in diesem Organismus ermöglichte. Durch dessen Einsatz konnte eine reduzierte Fertilität, eine verkürzte Lebensspanne sowie Veränderungen der mitochondrialen Morphologie und Funktion als direkte Folge einer PaMus10-Herabregulation nachgewiesen werden.
6. PaMUS10 ist vorwiegend cytosolisch lokalisiert wird aber unter oxidativem Stress oder in gealterten Kulturen an die Mitochondrien rekrutiert, was einen vergleichbaren Mechanismus zur menschlichen E3-Ligase PARKIN darstellt.
7. Der Verlust von PaMUS10 verursacht ein Präseneszenzsyndrom und führt zum vorzeitigen Absterben des Organismus, wohingegen die zusätzliche Expression von PaMus10::Gfp offenbar positive Effekte nach sich zieht, da hier eine deutliche Verlängerung der Lebensspanne beobachtet wurde.
8. Der Vergleich der beiden Ubiquitinome von ∆PaMus10/PaMus10 und Wthph1/2 zeigt eine massive Reduzierung der globalen Ubiquitinierung, welche offenbar durch das Fehlen von PaMUS10 ausgelöst wird und damit dessen Funktion als E3-Ligase untermauert.
9. Im Rahmen der hier durchgeführten Substratanalyse wurden insgesamt 131 Proteine identifiziert, von denen ca. 20 % dem Mitochondrium zugeordnet werden können. Aufgrund der diversen biologischen Prozesse und Funktionen dieser Substrate ist PaMUS10 sowohl in die Ubiquitinierung cytosolischer als auch mitochondrialer Proteine involviert und greift womöglich sogar als zentraler Schalter in die gesamte zelluläre Homöostase ein.
Aufgrund der nicht unerheblichen Zahl der identifizierten ubiquitinierten Proteine (Ubiquitinom) und den fatalen Auswirkungen, die der Verlust einer E3-Ligase in diesem Organismus nach sich zieht, lässt sich folgende grundlegende Erkenntnis formulieren:
Die Ubiquitinierung spielt in P. anserina eine bedeutende Rolle zur Aufrechterhaltung zellulärer Prozesse insbesondere der mitochondrialen Homöostase und beeinflusst dadurch positiv die Entwicklung und Alterung in diesem Organismus.
Halobacillus halophilus, a moderately halophilic bacterium isolated from salt marshes, produces various compatible solutes to cope with osmotic stress. Glutamate and glutamine are dominant compatible solutes at mild salinities. Glutamine synthetase activity in cell suspensions of Halobacillus halophilus wild type was shown to be salt dependent and chloride modulated. A possible candidate to catalyze glutamine synthesis is glutamine synthetase A2, whose transcription is stimulated by chloride. To address the role of GlnA2 in the biosynthesis of the osmolytes glutamate and glutamine, a deletion mutant (ΔglnA2) was generated and characterized in detail. We compared the pool of compatible solutes and performed transcriptional analyses of the principal genes controlling the solute production in the wild type strain and the deletion mutant. These measurements did not confirm the hypothesized role of GlnA2 in the osmolyte production. Most likely the presence of another, yet to be identified enzyme has the main contribution in the measured activity in crude extracts and probably determines the total chloride-modulated profile. The role of GlnA2 remains to be elucidated.
Wie herzig!
(2019)
Doch Vorsicht – dies ist kein Einblick in die Hirnwindungen eines verliebten Teenagers. Vielmehr handelt es sich hier um einen wissenschaftlichen Blick in die Großhirnrinde einer Maus. Die Forscherinnen und Forscher um Prof. Amparo Acker-Palmer vom Buchmann Institut für Molekulare Lebenswissenschaften und dem Institut für Zellbiologie und Neurowissenschaften der Goethe-Universität haben 2018 in der Zeitschrift "Science" darüber berichtet, dass Blutgefäße bei der Entwicklung neuronaler Zellnetzwerke im Gehirn eine bislang unbekannte Rolle spielen ...
Eine qualitative und quantitative Studie zum Einsatz der virtuellen Mikroskopie in der Schule
(2019)
Das Mikroskop stellt in der Alltagswelt ein Sinnbild für naturwissenschaftliches Arbeiten dar (Coleman 2009, Paulsen 2010). Im Bereich der Lehre eröffnet dieses Laborgerät das Eintauchen in die mikroskopische Dimension und besitzt eine wesentliche Rolle bei der damit verbundenen Erkenntnisgewinnung, insbesondere von funktionsmorphologischen Konzepten (Gropengießer & Kattmann 2008, Kremer 2002). Jedoch wird die Durchführung der klassischen Mikroskopie und damit die aktive Auseinandersetzung mit mikroskopischen Präparaten im schulischen (Biologie-)Unterricht durch verschiedene Faktoren erschwert. Zu den Limitierungen gehören beispielsweise die Verfügbarkeit geeigneter Mikroskope und Dauerpräparate, die aufwendige Vor- und Nachbereitungszeit sowie der zeitliche Aufwand bei der Herstellung hochwertiger mikroskopischer Frischpräparate. Die virtuelle Mikroskopie könnte diese Schwierigkeiten umgehen. Das virtuelle Mikroskop kann als eine Simulation verstanden werden, bei der die bildanalytischen Vorgehensweisen bei mikroskopischen Präparaten analog zur klassischen Mikroskopie nachvollzogen werden können (Gu & Oglivie 2005, Hentschel 2009). Hierbei umfasst das virtuelle Mikroskop ein Akquisitionssystem zum Einscannen und Digitalisieren mikroskopischer Präparate, einen Server zum Speichern und Bereitstellen der entstandenen virtuellen hochauflösenden Aufnahmen (WSI) sowie eine Bildbetrachtungssoftware auf einem Anwendungsrechner (Kalinski et al. 2006). Basierend auf einer Nutzerbefragung wurde eine Betrachtungssoftware programmiert, die hinsicht¬lich ihrer Benutzerfreundlichkeit und ihren Eigenschaften auf den schulischen Einsatz angepasst wurde. Um die Relevanz in diesem Anwendungsfeld zu testen, wurden die Untersuchungen der vorliegenden Arbeit sowohl im Schülerlabor Goethe BioLab als auch in der universitären Lehre der Abteilung für Didaktik der Biowissen¬schaften der Goethe–Universität Frankfurt am Main durchgeführt. Der Schülerlabortag „Blut und das virtuelle Mikroskop“ wurde entwickelt, um die computerbasierte virtuelle Mikroskopie mit Schülern ergänzend zur klassischen Mikroskopie in einem fachlichen Kontext anzuwenden und zu erforschen.
Beruhend auf der Vergleichbarkeit beider Mikroskopiemethoden (Paulsen et al. 2010) lagen die Forschungsschwerpunkte neben der Nutzung der Software durch Schülerinnen und Schülern auf einer gegenüberstellenden Beurteilung beider mikroskopischer Verfahren von Schülern und Lehramtsstudierenden. Es wurden in diesem Zusammenhang drei zentrale Forschungsfragen formuliert.
Die erste Forschungsfrage untersucht das Nutzerverhalten der Schüler (n = 123) bei der virtuellen Mikroskopie mittels automatisch generierter Datensätze während der Anwendung der Bildbetrachtungssoftware. Die Analyse der Anwendungsdaten zeigt, dass das mikroskopische Sehen, insbesondere das Fokussieren auf relevante Bildbereiche, im virtuellen Humanblutausstrich angewandt wurde.
Die zweite Forschungsfrage untersuchte das aktuelle Interesses bei Schülern (n = 293) im direkten Vergleich zwischen virtueller und klassischer Mikroskopie. Dabei wurde das aktuelle Interesse aufgrund des engen Zusammenhangs zum Lernen (vgl. Krapp 1992a) als Indikator der Lernwirksamkeit gewählt. Die Erhebung erfolgte mittels eines Fragebogens. Die Ergebnisse dieser Untersuchung zeigen, dass der Einsatz beider mikroskopischer Verfahren das aktuelle Interesse fördert, das emotionale und das wertbezogene Merkmal sich jedoch zugunsten der klassischen Mikroskopie signifikant unterscheiden.
Im Rahmen der dritten Forschungsfrage erfolgte eine Beurteilung der Vorteile virtueller Mikroskopie gegenüber der klassischen Mikroskopie von Schülern (n = 504) sowie Lehramtsstudierenden (n = 247). Hierbei diente ebenfalls ein Fragebogen als Grundlage der Erhebung. Die Auswertung zeigt, dass sowohl die Schüler als auch die Studierenden die Vorteile der virtuellen Mikroskopie klar erkennen. Es liegen jedoch signifikante Unterschiede zwischen den Versuchsgruppen vor. Die Schüler bewerten die Vorteile betreffend der Förderung von Lernprozessen, des Erkennens von Strukturen und des mikroskopischen Zeichnens höher.
Zusammenfassend bestärken die Ergebnisse dieser Studie die Ansicht, dass das virtuelle Mikroskop nicht als Ersatz, sondern als sinnvolle Ergänzung zu der klassischen Lichtmikroskopie angesehen werden sollte (Bloodgood et al. 2006, Berg et al. 2016, Braun & Kearns 2008, Hufnagl et al. 2012, Mione et al. 2013, Santiago 2018, Scoville & Buskirk 2007). Dabei sollte die vorliegende Arbeit als Einstieg verstanden werden, um bestehende Forschungslücken zu verkleinern, damit ein Transfer der virtuellen Mikroskopie in den schulischen Kontext möglichst lernwirksam erfolgen kann.