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Graefenhan, T.

Publications and source records attributed to Graefenhan, T..

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Staphylococcus aureus triggers isolate-specific host transcriptional responses alongside TNF-R1 regulated cell death

BackgroundStaphylococcus aureus (S. aureus) is an increasingly recognized intracellular pathogen, yet infection outcomes vary with bacterial isolate and host cell type. The mechanisms underlying these differences remain poorly understood. This study investigates how distinct intracellular S. aureus isolates influence host signaling programs and infection outcomes by modulating cell death pathways and TNF-R1 dependent regulation of host cell fates across different human cell lines. MethodsFour S. aureus isolates were analyzed for intracellular localization using transmission electron microscopy (TEM), structured illumination microscopy (SIM), serial block-face scanning electron microscopy (SBF-SEM), and imaging flow cytometry. Transcriptional reprogramming of infected U937 monocytes was examined by mRNA sequencing. Infection outcomes were characterized and compared to A549 and SaOS-2 cell lines employing Luminex cytokine assays, flow cytometry and Western blot analysis to characterize host cell death mechanisms in both wild-type and TNF-R1 deficient backgrounds. ResultsAll S. aureus isolates localized to endolysosomal and cytosolic compartments but also peri and putatively intranuclearly, revealing an unexpected intracellular niche. In U937 monocytes, infection induced a conserved stress signature alongside isolatespecific transcriptional programs divergently affecting inflammation, metabolism, and cell fate, which was markedly attenuated in response to the chronicinfection isolate EDCC 5464. Cell death outcomes were likewise isolatedependent, involving intrinsic and extrinsic apoptosis, mitochondrial depolarization, and caspase-1 activation at distinct temporal dynamics. TNFR1 loss initially delayed but exacerbated late, isolate-independent cytotoxicity, identifying TNFR1 as a key regulator of U937 infection outcome. SaOS2 and A549 cell death was far less affected by isolate or TNF-R1 deficiency. ConclusionsThese results highlight the multilayered determinants governing intracellular S. aureus survival, non-canonical intracellular localization, and host cell susceptibility. The TNF/TNF-R1 axis is identified to critically determine regulated host defense during early infection stages in a tissue-specific manner. Together with distinct isolate-driven gene expression profiles, infection risks under TNF-targeted therapies and the contribution of S. aureus heterogeneity should be considered in the design of future host-directed treatment strategies. Plain English summaryThe bacterium Staphylococcus aureus (S. aureus) often lives harmlessly in humans but can cause severe or recurrent infections when the skin barrier is broken or the immune system is weakened. A major reason for its persistence is its ability to hide inside human cells, where it is shielded from immune attacks and antibiotics. To effectively target such bacteria, it is crucial to understand that infections vary depending on both the bacterial strain and the infected cell type. Many reasons behind these differences are still puzzling. We explored how different types of S. aureus (collected from different disease types) change how human cells respond to infection. We focused on how the different strains influence the way immune cells adjust their gene activity during infection, and how a receptor called TNF-R1 is involved in managing cell death responses. Bacteria were found not only in compartments meant to destroy them but also near and even inside the cell nucleus, an unexpected location. All strains triggered a similar stress response but also distinct patterns influencing inflammation, metabolism, and cell survival. A strain linked to chronic infection caused weaker responses, suggesting greater stealth. Cells lacking TNF-R1 initially survived longer but later showed greater damage, indicating this receptors role in infection control. In lung and bone cells, these effects were less pronounced. Concludingly, S. aureus occupies unexpected niches inside human cells and uses varying survival strategies. TNF-R1 is a key regulator of host infection responses in the analyzed immune cells, highlighting that both bacterial diversity and host factors must be considered when developing targeted treatments. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=199 SRC="FIGDIR/small/723175v1_ufig1.gif" ALT="Figure 1"> View larger version (47K): org.highwire.dtl.DTLVardef@1b4214org.highwire.dtl.DTLVardef@18f4ee6org.highwire.dtl.DTLVardef@1851742org.highwire.dtl.DTLVardef@ba0359_HPS_FORMAT_FIGEXP M_FIG Peri- and intranuclear localization early after S. aureus uptake across host cell lines, with isolate-specific modulation of host fates and a critical role for TNF-R1 to mediate regulated death responses of U937 cells. At 2 hpi, intracellular S. aureus not only localizes in (LAMP-1 decorated) membrane-enclosed compartments or directly in the cytosol, but within invaginations of the nuclear surface and intranuclearly with or without being surrounded by a vesicular membrane in U937wt, SaOS-2wt, and A549wt cells. At 4 hpi, S. aureus triggers differential gene expression in (A) U937wt cells to an isolate-specific extent, with both unique and shared transcriptomic signatures across the four isolates, that is muted for the chronic infection isolate EDCC 5464. Apoptotic cell death is induced to an isolate-dependent extent involving extrinsic initiator caspase-8, intrinsic initiator caspase-9 (EDCC 5055 only), and variable effector caspase-3/-7 activity in the earlier stages of infection (6 hpi), which then barely increases (24 hpi) in U937wt cells. S. aureus-induced cell death and caspase activation is abolished in (B) U937{Delta}TNF-R1 at 6 hpi, but is significantly reinforced at 24 hpi with diminished isolate-specificity. Correspondingly, mitochondrial trans-membrane potential ({Delta}{Psi}m) is disrupted for all isolates upon TNF-R1 knockout, as well as caspase-1 activity, suggesting pyroptotic pathway activation at later stages of infection. (C) SaOS-2 wt cells show moderate caspase-3/-7 and -1 activation, while infection induces detachment of (D) A549wt cells with minimal caspase activation. Infection induces an isolate- and cell line-dependent cytokine release. Coloured arrows indicate the mean proportion of effector-positive cells ({uparrow} [~]20-40%, {uparrow} {uparrow} 40-60%, {uparrow} {uparrow} {uparrow} >60%) representing each S. aureus isolate. Grayed signaling arrows indicate the hypothesis by which TNF-R1 activation and internalization is required to kill lysosomal S. aureus via activation of anti-microbial enzymes and downstream regulated death pathway activation. Created with BioRender.com. C_FIG

microbiology↗

Glycosylated GM-CSF expands B-1b cells and B-1b plasma cells and programs them for immunosuppression

The myeloid growth factor granulocyte-macrophage colony-stimulating factor (GM-CSF) exhibits paradoxical pro- and anti-inflammatory functions, but the factors determining these divergent outcomes remain unclear. Here, we report that this functional divergence is controlled by its glycosylation. Murine recombinant fully glycosylated GM-CSF (rgGM-CSF) specifically induces immunosuppressive cell types, whereas its recombinant non-glycosylated counterpart (rngGM-CSF) promotes effector immune cells. Using single-cell ATAC-sequencing and flow cytometry, we show that rgGM-CSF has a previously unrecognized ability to effectively expand IL-10+ LAG-3+ PD-L1+ B-1b plasma cells (PCs) with immunosuppressive properties and self reactive natural IgM secretion. Although rgGM-CSF also promotes the expansion of hematopoietic stem and progenitor cells (HSPCs) and monocytic myeloid-derived suppressor cells (M-MDSCs), adoptive transfer experiments demonstrate that the rgGM-CSF-induced B-1b PCs are responsible for an IL-10-dependent long-term protection in mice from experimental autoimmune-encephalomyelitis (EAE). Our data suggest that glycosylation enhances the systemic bioavailability and activity of GM-CSF and promotes the expansion of immunoregulatory cells rather than pro-inflammatory myeloid effector cells. Together, these results demonstrate that the dual activity of GM-CSF is controlled by its glycosylation, resulting in opposing immune functions. These findings support a re-evaluation of human rgGM-CSF (regramostim) as a potential therapeutic strategy for immunosuppression in transplantation and autoimmune diseases. Key pointsO_LIGlycosylated GM-CSF promotes B-1b cells and B-1b plasma cells expansion and establishes their long-term imprinting as IL-10+ LAG3+ PD-L1+ natural IgM secreting regulatory cells. C_LIO_LIAlbumin binding enhances the systemic activity of glycosylated GM-CSF in generating regulatory B-1b plasma cells. C_LIO_LIGlycosylated GM-CSF injections into mice expand M-MDSCs, but their suppressive iNOS production is only maintained short-term. C_LIO_LINon-glycosylated GM-CSF injections preferentially promote expansion of pro-inflammatory effector monocytes and neutrophils. C_LI Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=179 HEIGHT=200 SRC="FIGDIR/small/703206v1_ufig1.gif" ALT="Figure 1"> View larger version (54K): org.highwire.dtl.DTLVardef@1814c57org.highwire.dtl.DTLVardef@1bb0e95org.highwire.dtl.DTLVardef@1ba8011org.highwire.dtl.DTLVardef@12df69f_HPS_FORMAT_FIGEXP M_FIG C_FIG

immunology↗

Sex differences define the molecular and cellular phenotypes of pain resolution in dorsal root ganglia

The dorsal root ganglion (DRG), a key site for the initiation and maintenance of neuropathic pain, was examined for sex-dependent phenotypes in sensory neurons, satellite glial cells (SGCs), and local macrophages following traumatic nerve injury and during natural pain resolution. Systematic analysis of 7,495 DRG immunofluorescence images and 62 transcriptomes revealed pronounced sex-specific, multicellular DRG phenotypes, especially during pain resolution. System parameters, including tissue size and neuron density also showed sex-dependent differences. Neuropathic pain resolved without tissue or sensory neuron loss. After injury, macrophages invaded the space between sensory neurons and satellite glial cells (SGCs); this was partially reversed during pain resolution, particularly in males. In females, immune-related gene expression and macrophage phenotypes persisted longer, while SGC activation and contact to sensory neurons was more persistent in males. During resolution, synaptic and excitability-related processes were pronounced in both sexes. However, while injury responses were largely shared between sexes, the resolution phase displayed distinctly sex-specific molecular and cellular signatures. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=197 SRC="FIGDIR/small/691610v1_ufig1.gif" ALT="Figure 1"> View larger version (76K): org.highwire.dtl.DTLVardef@4063c7org.highwire.dtl.DTLVardef@156c0d2org.highwire.dtl.DTLVardef@8d4be4org.highwire.dtl.DTLVardef@7182bd_HPS_FORMAT_FIGEXP M_FIG C_FIG In briefAnalysis of [~]7,500 bioimages and 62 transcriptomes reveals pronounced sex differences in rat dorsal root ganglia during pain resolution after peripheral nerve injury. HighlightsO_LIIn both female and male rats, peripheral nerve injury and subsequent pain resolution occur in the dorsal root ganglia (DRG) without neuronal or tissue loss. C_LIO_LISex influences DRG tissue size, neuron density, immune and glial phenotypes, and molecular-cellular responses to nerve injury and pain resolution. C_LIO_LIFollowing injury, macrophages infiltrate the space between sensory neurons and satellite glial cells (SGCs); this process reverses during pain resolution, particularly in males. C_LIO_LIIn females, immune phenotypes remain more stable throughout pain resolution, while SGC contact is reduced. C_LIO_LIPain resolution involves not only the reversal of injury-induced cell changes but also the activation of resolution-specific gene programs related to synaptic signaling, neuronal excitation, and cell-cell communication. C_LIO_LISex differences on the molecular-cellular level are less prevalent after nerve injury but become prominent during pain resolution. C_LI

neuroscience↗

Axon guidance deficits in a human sensory neuron model of Fabry disease

Fabry disease (FD) is a rare genetic galactosidase alpha (GLA) gene associated lysosomal disorder caused by alpha-galactosidase A (AGAL) deficiency, leading to sphingolipid (globotriaosylceramide, Gb3) accumulation in multiple tissues. Burning pain due to small fiber neuropathy is an early symptom with great impact on health- related quality of life. The pathophysiological role of Gb3 accumulations in sensory neurons of the dorsal root ganglia is incompletely understood. We have differentiated induced pluripotent stem cells of an isogenic GLA knockout line (p.S364del, hemizygous) and its healthy control into sensory neurons to model FD in vitro. We have compared both lines on transcriptional and proteomic level and investigated the effects of AGAL enzyme supplementation. FD sensory neurons showed dysregulation of disease-related pathways, including axon guidance at both RNA and protein level and microfluidic assays revealed shorter neurite length. While AGAL did not restore the transcriptomic state, it reduced Gb3 accumulation and lowered protein ephrin 5A and glycoprotein M6A level. These findings highlight axon guidance alterations in an isogenic human FD sensory model, with potential implications for early central and peripheral innervation in small fiber neuropathy. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=173 SRC="FIGDIR/small/673441v1_ufig1.gif" ALT="Figure 1"> View larger version (71K): org.highwire.dtl.DTLVardef@199cd19org.highwire.dtl.DTLVardef@682521org.highwire.dtl.DTLVardef@15da60borg.highwire.dtl.DTLVardef@1404c10_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗

Ergosterol-depleted clinical isolates of Nakaseomyces glabratus can develop multi-drug resistance without apparent fitness and virulence defects

ObjectivesNakaseomyces glabratus (formerly Candida glabrata) is a leading cause of invasive candidiasis and rapidly develops antifungal drug resistance during treatment. An increasing number of clinical isolates shows reduced susceptibility to echinocandins and azoles, leaving amphotericin B (AMB) as a last therapeutic option. Resistance of N. glabratus to this drug is rare and its underlying mechanisms are still not fully understood. Here, we describe two independent multidrug resistant (MDR) bloodstream isolates displaying resistance to AMB and anidulafungin (ANF) as well as a reduced susceptibility to azoles. MethodsWhole-genome sequencing and sterol profiling were performed on nine clinical N. glabratus isolates which were resistant to ANF and displayed resistance or low susceptibility to fluconazole (FLU) and AMB. The transcriptional response of reference strain CBS138 and an AMBR+ANFR isolate was analyzed by RNA-seq. Furthermore, PDR1 was deleted in the latter isolate to examine its influence on efflux pump gene expression. Additionally, fitness and virulence of the AMBR+ANFR isolate were examined in growth assays and a Galleria mellonella infection model. ResultsLoss of function mutations in the genes ERG3 and ERG4 is linked to ergosterol depletion and AMB resistance. Ergosterol depletion also contributed to a Pdr1-mediated up-regulation of ERG and ABC transporter genes which was associated with low FLU susceptibility. The AMBR isolates displayed no fitness defects and one of them was fully virulent in a G. mellonella infection model. ConclusionsThese findings demonstrate that ergosterol depletion in N. glabratus leads to AMB resistance without affecting fitness or virulence.

microbiology↗

Condensation of the RNA chaperone Hfq is coupled to inhibition of carbon assimilation and contributes to the stabilisation of regulatory RNAs in nitrogen starved Escherichia coli

Ribonucleoprotein-condensates are membraneless compartments that concentrate RNA-binding proteins and RNA and play key roles in cellular adaptation across both eukaryotes and bacteria. While the biological roles of ribonucleoprotein-condensates are better understood in eukaryotic systems, the knowledge of metabolic processes that govern their formation and their contribution to stress adaptation remains at a nascent stage in bacterial RNA biology. Hfq is an RNA-chaperone conserved in many bacteria that undergoes condensation in response to diverse stresses. Using nitrogen (N) starvation in Escherichia coli as a model stress condition, we show that Hfq condensation occurs independently of any extracellular cues, cytoplasmic shrinkage that cells undergo during N starvation or the canonical NtrBC-dependent adaptive response to N starvation. However, we demonstrate that Hfq condensation is coupled to the inhibition of carbon assimilation in N-starved E. coli. Further, by comparing the transcriptomes of wild-type bacteria and bacteria unable to form Hfq-condensates, we reveal that Hfq-condensates contribute to the stabilisation of Hfq-associated non-coding regulatory RNAs. We propose that coordination of carbon and N metabolism during N starvation, critical for metabolic adaptation, is accompanied by preservation of non-coding regulatory RNAs via Hfq condensation.

microbiology↗

Internal in-frame translation generates Cas11b, which is important for effective interference in an archaeal CRISPR-Cas system

CRISPR-Cas is a sophisticated defence system used by bacteria and archaea to fend off invaders. CRISPR-Cas systems vary in their Cas protein composition and have therefore been divided into different classes and types. Type I systems of bacteria have been shown to contain the small Cas11 protein as part of the interference complex. Here we show for the first time that an archaeal CRISPR-Cas type I system also contains a Cas11 protein. In addition, we show for the first time an internal in-frame translation of an archaeal protein. The Cas11b protein from the Haloferax volcanii type I-B system is encoded in the cas8b gene. Translation initiation at an internal methionine of the cas8b open reading frame results in synthesis of Cas11b. Cas11b is required for an effective interference reaction and without Cas11b fewer Cascade complexes form. Comparison of transcriptomes from wild type and a Cas11b less strain show that the depletion of Cas11b results in differential regulation of many genes. Taken together Cas11b is important for the defence reaction of the type I-B CRISPR-Cas system and seems to play an additional cellular role.

molecular biology↗

Satellite glial cells from adult DRG dedifferentiate in vitro and can be reprogrammed into nociceptor-like neurons

In dorsal root ganglia (DRG), neuronal loss has been reported in patients with neuropathic pain, raising the question of whether the DRG, as part of the peripheral nervous system (PNS), harbor an endogenous cell source for neural repair. We found that adult mouse DRG harbor glial cells that dedifferentiate in vitro into Sox2/Sox10-positive glial progenitor-like cells. Coexpression of the developmental transcription factors Neurog1 and Neurog2 was sufficient to induce both neuronal and glial phenotypes. Nerve growth factor supported the maturation of a subset of neurons into nociceptor-like cells expressing functional TrpA1, TrpV1, and TTX-resistant NaV channels. We report the limitation that we miss factors allowing consistent maturation to the sensory neuron profile. In summary, in the PNS, adult DRG-derived glial cells can acquire neural progenitor-like properties, show bipotent reprogramming competence, and may serve as an intrinsic cell source for sensory circuit regeneration.

neuroscience↗