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Obligate intracellular bacteria depend entirely on nutrients from the host cell for their reproduction. Here, we show that obligate intracellular Chlamydia downregulate the central tumor suppressor p53 in human cells. This reduction of p53 levels is mediated by the PI3K-Akt signaling pathway, activation of HDM2, and subsequent proteasomal degradation of p53. The stabilization of p53 in human cells severely impaired chlamydial development and caused the loss of infectious particle formation. DNA-damage-induced p53 interfered with chlamydial development through downregulation of the pentose phosphate pathway (PPP). Increased expression of the PPP key enzyme glucose-6-phosphate dehydrogenase rescued the inhibition of chlamydial growth induced by DNA damage or stabilized p53. Thus, downregulation of p53 is a key event in the chlamydial life cycle that reprograms the host cell to create a metabolic environment supportive of chlamydial growth.
Immune checkpoint blockade therapy is beneficial and even curative for some cancer patients. However, the majority don’t respond to immune therapy. Across different tumor types, pre-existing T cell infiltrates predict response to checkpoint-based immunotherapy. Based on in vitro pharmacological studies, mouse models and analyses of human melanoma patients, we show that the cytokine GDF-15 impairs LFA-1/β2-integrin-mediated adhesion of T cells to activated endothelial cells, which is a pre-requisite of T cell extravasation. In melanoma patients, GDF-15 serum levels strongly correlate with failure of PD-1-based immune checkpoint blockade therapy. Neutralization of GDF-15 improves both T cell trafficking and therapy efficiency in murine tumor models. Thus GDF-15, beside its known role in cancer-related anorexia and cachexia, emerges as a regulator of T cell extravasation into the tumor microenvironment, which provides an even stronger rationale for therapeutic anti-GDF-15 antibody development.
Die Entstehung maligner Zellen durch irreversible genetische Veränderungen ist ein allgegenwärtiger Prozess im menschlichen Organismus. Allein die spontane Mutationsrate genügt um in einem Organismus permanent transformierte Zellen entstehen zu lassen, welche den Körper in kürzester Zeit überschwemmen würden. Auch wenn bestimmte genetische Schäden frühzeitig durch Reparaturmechanismen beseitigt werden und sich nicht jede transformierte Zelle in einem Tumor manifestiert, so ist die eigentliche Frage nicht, warum Krebs entsteht, sondern warum er bei der hohen Mutationsrate so selten auftritt. Verantwortlich für die frühe Erkennung und Beseitigung transformierter Zellen ist das körpereigene Immunsystem, das in der Lage ist die meisten aberranten Zellen zu entfernen, sodass der manifeste Tumor die Ausnahme und nicht die Regel ist. Der menschliche Organismus verfügt über ein angeborenes und ein erworbenes Immunsystem. Bis heute ist nicht eindeutig geklärt, ob maligne Zellen mit ihren veränderten Oberflächenstrukturen erst eine Immunantwort induzieren müssen oder ob, wie bei der Abwehr infektiöser Partikel, die angeborene Immunität für die Beseitigung von Tumorzellen verantwortlich ist. Die in dieser Arbeit verwendete humane Hybridoma Technologie (Immortalisierung menschlicher Lymphozyten und Isolierung monoklonaler Antikörper) bietet die einzigartige Möglichkeit, sowohl aus an Krebs erkrankten Patienten als auch aus gesunden Probanden tumorspezifische Antikörper zu isolieren und durch deren genauere Charakterisierung Einblicke in die humorale Immunität gegen maligne Zellen zu erhalten. In der vorliegenden Arbeit werden fünf humane monoklonale Antikörper beschrieben, die aus verschiedenen Tumorpatienten gewonnen wurden, sowie zwei Antikörper, die aus gesunden Probanden isoliert werden konnten. In allen Fällen erwiesen sich die Antikörper als tumorspezifisch, d.h. sie reagieren nicht mit gesundem Gewebe und sind demnach keine Autoantikörper. Es handelt sich weiterhin in allen Fällen um Antikörper des IgM-Isotyps; es konnten keinen Antikörper anderer Ig-Klassen isoliert werden. Genetische Analysen ergaben, dass alle isolierten Antikörper gering oder gar nicht mutiert waren, was bedeutet, dass sie nicht durch Stimulation affinitätsgereift sind. Zudem konnte demonstriert werden, dass alle Antikörper Apoptose von Tumorzellen induzieren und dass sie an eine Zuckerkette ihrer Antigene binden oder solche Carbohydrate zumindest entscheidend in die Bindung involviert sind. Die Eigenschaften der in dieser Arbeit beschriebenen Antikörper wurden mit anderen bereits etablierten IgM-Antikörpern verglichen. Hierbei stellte sich heraus, dass alle Antikörper, welche sich als tumorspezifisch erwiesen, ähnliche Eigenschaften zeigen. Interessant ist zudem die Beobachtung, dass die Keuzreaktion der Antikörper, also ihre Reaktion mit anderen Tumorgeweben, reziprok mit dem Mutations-grad korreliert ist. Je mehr Mutationen ein Antikörper aufweist, desto eingeschränkter und spezifischer sind demnach seine Reaktionen mit anderen Tumoren. Dies deutet darauf hin, dass auch innerhalb der Keimbahn-kodierten Antikörper durch vereinzelte Mutationen eine höhere Variabilität erzeugt werden kann. Ähnlich wie bei der Affinitätsreifung der erworbenen Immunität scheint sich auch hier die Spezifität mit der Anzahl der Mutationen zu erhöhen. Zusammenfassend weisen die erhaltenen Ergebnisse darauf hin, dass zumindest die humorale Immunität gegen maligne Zellen das Resultat der angeborenen Immunität ist und nicht von Tumorzellen induziert wird. Dies bedeutet zudem, dass Moleküle wie natürliche Antikörper in der Immunität eine viel größere Rolle spielen als bisher angenommen. Ähnliche Ergebnisse wurden bereits bei der Untersuchung der Immunität gegen bakterielle Antigene erzielt, sodass hier vermutet werden kann, dass die gleichen Mechanismen zugrunde liegen wie bei der Abwehr transformierter Zellen. Darüber hinaus wird die Frage beantwortet, warum ein manifester Tumor eine Ausnahme bleibt. Die angeborene, primäre Immunität verfügt über ein existierendes Repertoire an Rezeptoren, welche eine ausreichende Variabilität aufweisen, und muss daher nicht erst über ein komplexes System von Erkennung und Stimulation, wie die adaptierte Immunität, induziert werden. Dieser logistische Vorsprung der natürlichen Immunität garantiert eine permanente Überwachung und eine schnelle Reaktion gegenüber veränderten Zellen und fremden Partikeln.
Interleukin 4 (IL-4) exerts a decisive role in the coord.ination of proteelive immune responses against parasites, particularly helminths. A disregulation of ll.r4 function is possibly involved in the genesis of allergic disease states. The search for important amino acid residues in human ll.r4 by mutational analysis of charged invariant amino acid positions identified two distinct functional sites in the 4-helix-bundle protein. Site 1 was marked by amino acid substitutions of the glutamic acid at position 9 in helix A and arginine at position 88 in helix C. Exchanges at both positions led to IL-4 variants deficient in binding to the extracellular domain of the ll.r4 receptor (IL-4ReJ. In parallel, up to 1000-fold increased concentrations of this type of variant were required to induce T -cell proliferation and B-eeil CD23 expression. Site 2 was marked by amino acid exchanges in helix D at positions 121, 124 and 125 (arginine, tyrosine and serine respectively in the wild-type).ß.A variants affected at site 2 exhibited partial agonist activity during T -cell proliferation; however, they still bound with high affinity to IL-4Rex. [The generation of an IL-4 antagonist by replacing tyrosine 124 with aspartic acid has been described before by Kruse et al. (1992) (EMBO }., 11, 3237-3244)]. These findings indicate that IL-4 functions by bind.ing IL-4Rex via site 1 which is constituted by residues on helices A and C. They further suggest that the association of a second, still undetined receptor protein with site 2 in helix D activates the receptor system and generates a transmembrane signal.
In Peninsular Malaysia the trees Saraca thaipingensis (Caesalpiniaceae) and Crypteronia griffithii (Crypteroniaceae) are inhabited by ants. In the vicinity ofGombak, near Kuala Lumpur, the hollow internodes of young Saraca thaipingensis plants are colonized mainly by two Cladomyrma species. In larger trees a Crematogaster sp. is also found. Crypteronia griffithii is inhabited by a third species of Cladomyrma. None of these species is conspecific with any of the three Cladomyrma taxa so far described. The colonies are founded by single mated queens, which have a conspicuous, sphecid wasp-like behaviour when searching for host plants and nest sites. They chew holes into the plant intern odes and hollow them out to provide nest sites. Coccids and pseudococcids are cultivated within the internodes. The homopterans are not carried by queens on their nuptial flights. They apparently find their way by themselves into the cavities or are perhaps carried there by the worker ants. The Cladomyrma ants on Crypteronia are not aggressive, in contrast to those on Saraca thaipingensis. The relationship of Crypteronia with ants seems to be obligatory, whereas Saraca was only partly colonized by Cladomyrma. The interaction of Saraca with Crematogaster sp. is loose and facultative, since the Crematogaster sp. also lives on other tree species. Our studies have now revealed four Cladomyrma spp. which are regularly associated with plants. The genus therefore seems to have an entirely myrmecophytic way of life.
Fanconi anemia (FA) is a genetically heterogeneous disorder with 22 disease-causing genes reported to date. In some FA genes, monoallelic mutations have been found to be associated with breast cancer risk, while the risk associations of others remain unknown. The gene for FA type C, FANCC, has been proposed as a breast cancer susceptibility gene based on epidemiological and sequencing studies. We used the Oncoarray project to genotype two truncating FANCC variants (p.R185X and p.R548X) in 64,760 breast cancer cases and 49,793 controls of European descent. FANCC mutations were observed in 25 cases (14 with p.R185X, 11 with p.R548X) and 26 controls (18 with p.R185X, 8 with p.R548X). There was no evidence of an association with the risk of breast cancer, neither overall (odds ratio 0.77, 95%CI 0.44–1.33, p = 0.4) nor by histology, hormone receptor status, age or family history. We conclude that the breast cancer risk association of these two FANCC variants, if any, is much smaller than for BRCA1, BRCA2 or PALB2 mutations. If this applies to all truncating variants in FANCC it would suggest there are differences between FA genes in their roles on breast cancer risk and demonstrates the merit of large consortia for clarifying risk associations of rare variants.
Many proteins are molecular machines, whose function is dependent on multiple conformational changes that are initiated and tightly controlled through biochemical stimuli. Their mechanistic understanding calls for spectroscopy that can probe simultaneously such structural coordinates. Here we present two-colour fluorescence microscopy in combination with photoinduced electron transfer (PET) probes as a method that simultaneously detects two structural coordinates in single protein molecules, one colour per coordinate. This contrasts with the commonly applied resonance energy transfer (FRET) technique that requires two colours per coordinate. We demonstrate the technique by directly and simultaneously observing three critical structural changes within the Hsp90 molecular chaperone machinery. Our results reveal synchronicity of conformational motions at remote sites during ATPase-driven closure of the Hsp90 molecular clamp, providing evidence for a cooperativity mechanism in the chaperone’s catalytic cycle. Single-molecule PET fluorescence microscopy opens up avenues in the multi-dimensional exploration of protein dynamics and allosteric mechanisms.
Web spiders synthesize silk fibers of unique strength and extensibility through the controlled self-assembly of protein building blocks, so-called spidroins. The spidroin C-terminal domain is highly conserved and connects two polypeptide chains through formation of an all-helical, intertwined dimer. Here we use contact-induced fluorescence self-quenching and resonance energy transfer in combination with far-UV circular dichroism spectroscopy as three orthogonal structural probes to dissect the mechanism of folding and dimerization of a spidroin C-terminal domain from the major ampullate gland of the nursery web spider Euprosthenops australis. We show that helices forming the dimer core assemble very rapidly and fold on association. Subsequently, peripheral helices fold and dock slowly onto the preformed core. Lability of outer helices facilitates formation of a highly expanded, partially folded dimer. The high end-to-end distance of chain termini in the partially folded dimer suggests an extensibility module that contributes to elasticity of spider silk.
Ultrastructural analysis of wild-type and RIM1α knockout active zones in a large cortical synapse
(2022)
Rab3A-interacting molecule (RIM) is crucial for fast Ca\(^{2+}\)-triggered synaptic vesicle (SV) release in presynaptic active zones (AZs). We investigated hippocampal giant mossy fiber bouton (MFB) AZ architecture in 3D using electron tomography of rapid cryo-immobilized acute brain slices in RIM1α\(^{−/−}\) and wild-type mice. In RIM1α\(^{−/−}\), AZs are larger with increased synaptic cleft widths and a 3-fold reduced number of tightly docked SVs (0–2 nm). The distance of tightly docked SVs to the AZ center is increased from 110 to 195 nm, and the width of their electron-dense material between outer SV membrane and AZ membrane is reduced. Furthermore, the SV pool in RIM1α\(^{−/−}\) is more heterogeneous. Thus, RIM1α, besides its role in tight SV docking, is crucial for synaptic architecture and vesicle pool organization in MFBs.
Ultrastructural localization of DNA in two Cryptomonas species by use of a monoclonal DNA-antibody
(1986)
Immunogold cytochemistry - DNA localization - Cryptomonas nucleomorph The distribution and subcellular localization of DNA in the unicellular alga Cryptomonas has been investigated electron-microscopically by indirect immunocytochemistry, using a monoclonal DNA antibody and a gold-Iabeled secondary antibody. This technique proved to be very sensitive and entirely specific. DNA could be demonstrated in four different compartments (nucleus, nucleomorph, plastid, and mitochondrion). Within the plastid, DNA is concentrated in stroma regions that are localized preferentially around the center of the organelle. The mitochondrion contains several isolated DNA-containing regions (nucleoids). Within the nucleus, most of the DNA is localized in the 'condensed' chromatin. DNA was also detectable in small areas of the nucleolus, whereas the interchromatin space of the nucleus appeared almost devoid of DNA. Within the nucleomorph, DNA is distributed inhomogeneously in the matrix. DNA could furthermore be detected in restricted areas of the 'fibrillogranular body' of the nucleomorph, resembling the situation encountered in the nucleol us. The presence of DNA and its characteristic distribution in the nucleomorph provide additional, strong evidence in favour of the interpretation of that organelle as the residual nucleus of a eukaryotic endosymbiont in Cryptomonas.