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An important goal is to identify the direct activation domain (AD)-interacting components of the transcriptional machinery within the context of native complexes. Toward this end, we first demonstrate that the multisubunit TFIID, SAGA, mediator, and Swi/Snf coactivator complexes from transcriptionally competent whole-cell yeast extracts were all capable of specifically interacting with the prototypic acidic ADs of Gal4 and VP16. We then used hexahistidine tags as genetically introduced activation domain-localized cross-linking receptors. In combination with immunological reagents against all subunits of TFIID and SAGA, we systematically identified the direct AD-interacting subunits within the AD-TFIID and AD-SAGA coactivator complexes enriched from whole-cell extracts and confirmed these results using purified TFIID and partially purified SAGA. Both ADs directly cross-linked to TBP and to a subset of TFIID and SAGA subunits that carry histone-fold motifs.
Owing to their morphological complexity and dense network connections, neurons modify their proteomes locally, using mRNAs and ribosomes present in the neuropil (tissue enriched for dendrites and axons). Although ribosome biogenesis largely takes place in the nucleus and perinuclear region, neuronal ribosomal protein (RP) mRNAs have been frequently detected remotely, in dendrites and axons. Here, using imaging and ribosome profiling, we directly detected the RP mRNAs and their translation in the neuropil. Combining brief metabolic labeling with mass spectrometry, we found that a group of RPs rapidly associated with translating ribosomes in the cytoplasm and that this incorporation was independent of canonical ribosome biogenesis. Moreover, the incorporation probability of some RPs was regulated by location (neurites vs. cell bodies) and changes in the cellular environment (following oxidative stress). Our results suggest new mechanisms for the local activation, repair and/or specialization of the translational machinery within neuronal processes, potentially allowing neuronal synapses a rapid means to regulate local protein synthesis.
Owing to their morphological complexity and dense network connections, neurons modify their proteomes locally, using mRNAs and ribosomes present in the neuropil (tissue enriched for dendrites and axons). Although ribosome biogenesis largely takes place in the nucleus and perinuclear region, neuronal ribosomal protein (RP) mRNAs have been frequently detected remotely, in dendrites and axons. Here, using imaging and ribosome profiling, we directly detected the RP mRNAs and their translation in the neuropil. Combining brief metabolic labeling with mass spectrometry, we found that a group of RPs quickly associated with translating ribosomes in the cytoplasm and that this incorporation is independent of canonical ribosome biogenesis. Moreover, the incorporation probability of some RPs was regulated by location (neurites vs. cell bodies) and changes in the cellular environment (in response to oxidative stress). Our results suggest new mechanisms for the local activation, repair and/or specialization of the translational machinery within neuronal processes, potentially allowing remote neuronal synapses a rapid solution to the relatively slow and energy-demanding requirement of nuclear ribosome biogenesis.
Protein turnover, the net result of protein synthesis and degradation, enables cells to remodel their proteomes in response to internal and external cues. Previously, we analyzed protein turnover rates in cultured brain cells under basal neuronal activity and found that protein turnover is influenced by subcellular localization, protein function, complex association, cell type of origin, and by the cellular environment (Dörrbaum et al., 2018). Here, we advanced our experimental approach to quantify changes in protein synthesis and degradation, as well as the resulting changes in protein turnover or abundance in rat primary hippocampal cultures during homeostatic scaling. Our data demonstrate that a large fraction of the neuronal proteome shows changes in protein synthesis and/or degradation during homeostatic up- and down-scaling. More than half of the quantified synaptic proteins were regulated, including pre- as well as postsynaptic proteins with diverse molecular functions.
Viruses that carry a positive-sense, single-stranded (+ssRNA) RNA translate their genomes soon after entering the host cell to produce viral proteins, with the exception of retroviruses. A distinguishing feature of retroviruses is reverse transcription, where the +ssRNA genome serves as a template to synthesize a double-stranded DNA copy that subsequently integrates into the host genome. As retroviral RNAs are produced by the host cell transcriptional machinery and are largely indistinguishable from cellular mRNAs, we investigated the potential of incoming retroviral genomes to directly express proteins. Here we show through multiple, complementary methods that retroviral genomes are translated after entry. Our findings challenge the notion that retroviruses require reverse transcription to produce viral proteins. Synthesis of retroviral proteins in the absence of productive infection has significant implications for basic retrovirology, immune responses and gene therapy applications.
We examined the feedback between the major protein degradation pathway, the ubiquitin-proteasome system (UPS), and protein synthesis in rat and mouse neurons. When protein degradation was inhibited, we observed a coordinate dramatic reduction in nascent protein synthesis in neuronal cell bodies and dendrites. The mechanism for translation inhibition involved the phosphorylation of eIF2α, surprisingly mediated by eIF2α kinase 1, or heme-regulated kinase inhibitor (HRI). Under basal conditions, neuronal expression of HRI is barely detectable. Following proteasome inhibition, HRI protein levels increase owing to stabilization of HRI and enhanced translation, likely via the increased availability of tRNAs for its rare codons. Once expressed, HRI is constitutively active in neurons because endogenous heme levels are so low; HRI activity results in eIF2α phosphorylation and the resulting inhibition of translation. These data demonstrate a novel role for neuronal HRI that senses and responds to compromised function of the proteasome to restore proteostasis.
The prefrontal cortex (PFC) is considered the cognitive center of the mammalian brain. It is involved in a variety of cognitive functions such as decision making, working memory, goal-directed behavior, processing of emotions, flexible action selection, attention, and others (Fuster, 2015). In rodents, these functions are associated with the medial prefrontal cortex (mPFC). Experiments in mice and rats have shown that neurons in the mPFC are necessary for successful performance of many cognitive tasks. Moreover, measurements of neural activity in the mPFC show excitation or inhibition in different cells in relation to specific aspects of the tasks to be solved. To date, however, it is largely unknown whether prefrontal neurons are stably activated during the same behaviors within a task and whether similar aspects are represented by the same neurons in different tasks. In addition, it is unclear how specifically neurons are activated, for example, whether cells that are activated in response to reward are activated in a different task without reward in a different situation or remain inactive. To address these questions, we recorded the same neurons in the mPFC of mice over the course of several weeks while the animals performed various behaviors.
To do this, we expressed GCaMP6 in pyramidal neurons in the mPFC of mice. A small lens was implanted in the same location and a miniature microscope ("miniscope") was used to record neural activity. Later the extracted neurons got aligned based on their shape and position across multiple days and sessions. The mice performed five different behavioral tests while neural activity was measured: A spatial working memory test in a T-maze, exploration of the elevated plus maze (EPM), a novel object recognition (NO) test including free open field (OF) exploration, a social interaction (SI) test and discriminatory auditory fear conditioning (FC). Each task was repeated at least twice to check for stable task encoding across sessions. Behavioral performance and neural correlates to specific task events were similar to earlier studies across all tasks. We utilized generalized linear models (GLM) to determine which behavioral variables most strongly influence neural activity in the mPFC. The position of the mouse in the environment was found to explain most of the variance in neural activity, together with movement speed they were the strongest predictors of neural activity across all tasks. Reward time points in the working memory test, the conditioned stimulus after fear conditioning, or head direction in general were also strongly encoded in the mPFC.
Many of the recorded neurons showed a stable spatial activity profile across multiple sessions of the same task. Similarly, cells that coded for position in one task tended to code for position in other tasks. Not only did the same cells code for position across multiple tasks, but cells also coded for movement speed and head direction. This indicates that at least these general behavioral variables are each represented by the same neurons in the mPFC. Interestingly, the stability of position or speed coding did not depend on the time between two sessions, but only on whether it was within the same or across different tasks. Within the same task, stability was slightly higher than across different tasks.
To find out whether task-specific behavioral aspects were also stably encoded in the mPFC, difference scores as the difference in neural activity between two task aspects like left- and right-choice trials or exposed and enclosed locations were calculated. Many cells encoded these aspects stably across different sessions of each task. Both the left-right differences in the different phases of the working memory test, the open-closed-arm differences in the elevated plus maze, the different activity between center and corners in the open field, the social target-object differences in the social interaction test, and the differences between the two tones during fear conditioning were all stably encoded across the population of mPFC cells. Only the distinction between the novel and the familiar object during object recognition was not stably encoded, but also the preference for the novel object was not present in the second session of novel object exploration.
There was also an overlap in coding for different aspects within a task across multiple sessions. For example, cells stably encoded left-right differences in the T-maze between different sessions as a function of walking direction across different phases of working memory, an aspect that we could already show within one session (Vogel, Hahn et al., 2022). During fear conditioning, the same cells showed a discrimination between CS+ and CS- that also responded to the start of CS+.
Consistency in the neurons activity across different tasks was also found, but only between tasks with similar demands, the elevated plus-maze and free exploration of the open field. Cells that were more active in the open arms also showed more activity in the center of the open field and vice versa. This could be an indicator that the cells were coding for anxiety or exposure across those tasks, indicating that neurons in the mPFC also stably encode general task aspects independent of the specific environment. However, it remains unclear what exactly these neurons encode; in the case of a general fear signal, one would also expect activation during fear conditioning which could not be found.
Overall, we found that neurons in the mPFC of mice encoded multiple general behavioral variables across multiple tasks and task-specific variables were encoded stably within each of the tested tasks. However, we found little task-specific variables that were systematically encoded by the same neurons with the exception being the elevated plus-maze and open field exploration, two tasks with similar features.
In (eco-)toxicological studies the light/dark transition (LDT) test is one of the most frequently used behaviour assays with zebrafish eleutheroembryos. However, study results vary regarding data presentation and analysis and mostly focus on a limited amount of the recorded data. In this study, we investigated whether monitoring two behavioural outcomes (time and distance moved) together with analysing multiple parameters can improve test sensitivity and data interpretation. As a proof of principle 5-day old zebrafish (Danio rerio) eleutheroembryos exposed to either endocrine disruptors (EDs) or acetylcholine esterase (AChE) inhibitors were investigated. We analysed conventional parameters such as mean and sum and implemented additional endpoints such as minimum or maximum distance moved and new parameters assessing the bursting response of eleutheroembryos. Furthermore, changes in eleutheroembryonic behaviour during the moment of the light to dark transition were added. To improve data presentation control-normalised results were displayed in radar charts, enabling the simultaneous presentation of different parameters in relation to each other. This enabled us to identify parameters most relevant to a certain behavioural response. A cut off threshold using control data was applied to identify parameters that were altered in a biological relevant manner. Our approach was able to detect effects on different parameters that remained undetected when analysis was done using conventional bar graphs on - in most cases analysed - averaged, mean distance moved values. By combining the radar charts with additional parameters and by using control-based thresholds, we were able to increase the test sensitivity and promote a deeper understanding of the behaviour response of zebrafish eleutheroembryos in the LDT test and thereby increased its usability for behavioural toxicity studies.
Precise regulation of gene expression networks is required to develop and maintain a healthy organism before and after birth and throughout adulthood. Such networks are mostly comprised of regulatory proteins, but meanwhile many long non-coding transcripts (lncRNAs) are shown to participate in these regulatory processes. The functions and mechanisms of these lncRNAs vary greatly, however they are often associated with transcriptional regulation. Three lncRNAs, namely Sweetheart RNA (Swhtr), Fetal-lethal noncoding developmental regulatory RNA / Foxf1 adjacent non-Coding developmental regulatory RNA (Fendrr) and lncFsd2, were studied in this work to demonstrate the variety of cellular and biological processes that require lncRNA-mediated fine-tuning, in regard to the cardiopulmonary system.
Swhtr was found to be expressed exclusively in cardiomyocytes and became critical for regeneration after myocardial injury. Mice lacking Swhtr did not show issues under normal conditions, but failed to undergo compensatory hypertrophic remodeling after injury, leading to increased mortality. This effect was rescued by re-expressing Swhtr, demonstrating importance of the RNA. Genes dependent on Swhtr during cardiac stress were found to likely be regulated by NKX2-5 through physical interaction with Swhtr. Fendrr was found to be expressed in lung and interacted with target promoters through its RNA:dsDNA binding domain, the FendrrBox, which was partially required for Fendrr function. Fendrr, together with activated WNT signaling, regulated fibrosis related target genes via the FendrrBox in fibroblasts. LncFsd2, an ubiquitously expressed lncRNA, showed possible interaction with the striated muscle specific Fsd2, but its exact function and regulatory role remain unclear in muscle physiology. Immunoprecipitation and subcellular fractionation experiments suggest that lncFsd2 might be involved in nuclear retention of Fsd2 mRNA, thus fine-tuning FSD2 protein expression. These investigations have shed light on the roles of these lncRNAs in stress responses, fibrosis-related gene regulation, and localization processes, advancing our understanding of cardiovascular and pulmonary maintenance, reaction to injury, and diseases. The diverse and intricate roles of these three lncRNAs highlight how they influence various cellular processes and disease states, offering avenues for exploring lncRNA functions in different biological contexts.
Das Ziel der vorliegenden Studie war die vergleichende morphometrische Untersuchung der Molarenmorphologie rezenter Hominoidea. Im Mittelpunkt der Fragestellung stand die dreidimensionale Analyse des hominoiden Facettenmusters, neben dem quantitativen Vergleich der Relieftopographie und der konstruktiven Veränderung der Kauflächen mit zunehmender Abnutzung, im Hinblick auf die funktionellen Möglichkeiten zur effektiven Nahrungsaufschließung.
Die qualitative Analyse umfasst, neben der dentalmorphologischen Beschreibung, die digitale Fotodokumentation und die Klassifizierung der verschieden weit abgenutzten Molaren in vergleichende Abkauungsgrade.
Die quantitative Auswertung der virtuellen Zahnmodelle schließt die Vermessung der größten Länge, Breite und Höhe, die Berechnung des prozentualen Dentin- und Facettenflächenanteils, des Relief-Index sowie die Neigung und Orientierung der antagonistischen Facetten des Oberund Unterkiefers mit ein. Die Berechnung der korrespondierenden Facettenwinkel in einem einheitlichen Koordinatensystem erlaubt die Kalibrierung der okkludierenden Flächenareale und die Berechnung dreidimensionaler Richtungsvektoren, die die buccale und linguale Mandibelbewegung widerspiegeln. Je nach der Art der Verzahnung der in Okklusion tretenden Höckerflanken lassen sich aus dem räumlichen Zusammenspiel der Funktionselemente quetschende und scherende Komponenten differenzieren.
Die Ergebnisse, die am Rezentmaterial (244 Einzelzähne) gewonnen wurden, sind auf 16 ausgewählte Einzelzähne aus Sangiran und Punung (Java, Indonesien) der Sammlung VON KOENIGSWALD der Abteilung Paläoanthropologie und Quartärpaläontologie des Forschungsinstituts Senckenberg, übertragen worden.
Entsprechend der zu Anfang aufgeworfenen Fragestellung konnte ein für jede Gattung charakteristisches Reliefmuster der Okklusalfläche und dessen Veränderung im Laufe der Abkauung etabliert werden. Infolge des Abschleifens der konvexen Höckerspitzen kommt es zu einer unterschiedlich schnellen und intensiven Reliefverflachung. Die Reliefunterschiede zwischen den Gattungen bleiben im Laufe der Abnutzung erhalten. Gorilla besitzt das am stärksten ausgeprägte okklusale Relief und zeigt die intensivste Abnutzung der Kauflächen und grenzt sich von Pan und Hylobates und insbesondere von Pongo deutlich ab. Pongo besitzt das flachste okklusale Relief und zeigt eine geringere Abnutzung der Kauflächen.
Auf der Grundlage der rekonstruierten Facettenwinkel lässt sich das homologe Facettengrundmuster der Hominoidea weiter differenzieren. Alle Gattungen stimmen in der Position der Facettenareale weitgehend überein. Dieses homologe Facettenmuster resultiert aus der relativ zyklischen Kaubewegung. Die Relieftopographie und Profilierung der Kaufläche sind für die individuelle Bewegungsführung entscheident. Es konnte gezeigt werden, dass aus der unterschiedlichen Steilheit der Zahn-zu-Zahn-Kontakte, unter Berücksichtigung der auf der dreidimensionalen Orientierung der Facetten basierenden Bewegungsbahnen, verschiedene Funktionalitäten resultieren. Durch die Unterschiede in der räumlichen Facettenausdehnung prägt sich ein gattungsspezifisches Grundmusters aus, welches direkt mit der Funktion korreliert und die hohe Effizienz bei der unterschiedlichen Nahrungsaufbereitung bewirkt. Jene quantitativ erfassten Flächen und Bewegungen können funktionell interpretiert werden und stellen eine eindeutige Verbindung zu den in der Literatur aufgeführten Ernährungsweisen der Hominoidea her. Die Kauflächen der vier rezenten Gattungen können unter unterschiedlichen Nutzungsbedingungen im Hinblick auf eine spezifische Ernährungsweise verstanden werden.
Es wurde gezeigt, dass die dreidimensionale Ausrichtung homologer Facetten zu unterschiedlicher Funktionalität führen kann und demzufolge über die zweidimensionale Analyse hinausgeht.
Gorilla nutzt die Vielzahl steiler und kleiner Kontaktflächen zum Zerschneiden der überwiegenden faserigen Nahrungsbestandteile durch hohe Scherkräfte. Aufgrund der stark profilierten Kaufläche folgt die Bewegungsführung restriktiv dem Furchungsverlauf.
Pongo besitzt infolge der Konstruktion der Kaufläche große Kontaktareale, die in flachem Winkel aufeinandertreffen und so ein effizientes Quetschen oder Zermahlen der überwiegenden Früchtenahrung erlauben. Das flache Kauflächenprofil ermöglicht einen größeren Spielraum in der Bewegungsführung.
Pan und Hylobates besitzen ein Repertoire aus schneidenden und quetschenden Funktionselementen und somit einen geringeren Spezialisierungsgrad.
Die Beurteilung der Konstruktion und Funktion der pleistozänen Einzelmolaren im Vergleich mit den erarbeiteten Rezentmodellen ergibt eine Ähnlichkeit mit dem modernen Pongo. Die flache Relieftopographie, die geringe Steilheit der Winkel und die zusätzlichen Schmelzrunzelungen lassen auf ein Quetschen der Nahrung schließen. Eine phylogenetische Aussage zur Differenzierung zwischen Homo oder Pongo konnte aufgrund der kleinen und als exemplarisch anzusehenden Zahl fossilen Materials nicht eindeutig erfolgen.