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Deepe, G. S.

Publications and source records attributed to Deepe, G. S..

4 recordsLinked to original sources

Myeloid Cell States in Influenza-Associated Pulmonary Aspergillosis Are Shaped by Iron Overload and Metabolic Reprogramming

Virus-associated pulmonary aspergillosis is a life-threatening secondary infection that substantially increases morbidity and mortality in critically ill patients with respiratory virus infections. Influenza A virus (IAV) and SARS-CoV2 are known to disrupt pulmonary homeostasis, the mechanisms by which these perturbations render the host susceptibility to Aspergillus fumigatus (Af) remain incompletely understood. Here, we integrate an established murine model of influenza-associated pulmonary aspergillosis (IAPA) with single-cell RNA sequencing (scRNA-seq) to define the myeloid cell dysfunction that underlies IAPA establishment and progression. Single-cell transcriptomic profiling of pulmonary monocytes and macrophages revealed that IAV-Af coinfection drives a marked shift away from interferon-mediated antiviral and antigen presentation programs toward stress-associated and redox-regulatory transcriptional states. Pathway analyses demonstrated coordinated suppression of phagocytic and interferon signaling pathways alongside enrichment of oxidative stress and mitochondrial metabolic signatures - changes that closely recapitulate transcriptional defects previously reported in human IAPA patients. Myeloid cells from IAV-Af coinfected mice further exhibited increased oxidative phosphorylation alongside reduced glycolytic and phagocytic activity, consistent with impaired antifungal effector function. To elucidate how prior IAV infection generates a pulmonary microenvironment permissive to Af growth, we evaluated airway iron availability - a critical determinant of both fungal pathogenicity and immune regulation. IAV infection alone produced a significant elevation in bronchoalveolar iron levels accompanied by induction of iron-associated inflammatory mediators. Paradoxically, during IAV-Af coinfection, myeloid cells displayed markedly reduced expression of iron-sequestering and storage genes, revealing a fundamental disconnect between iron burden and cellular iron-handling capacity. Functionally, elevated iron accelerated Af germination and impaired macrophage-mediated fungal killing. Collectively, these findings identify IAV-induced pulmonary iron accumulation as a key driver of immunometabolic reprogramming in myeloid cells, resulting in compromised antifungal immunity and heightened susceptibility to secondary Af infection.

immunology↗

Utilization of a Histoplasma capsulatum zinc reporter reveals the complexities of fungal sensing of metal deprivation

Histoplasma capsulatum is a dimorphic fungal pathogen acquired via inhalation of soil-resident spores. Upon exposure to mammalian body temperatures, these fungal elements transform into yeasts that reside primarily within phagocytes. Macrophages (M{Phi}) provide a permissive environment for fungal replication until T cell-dependent immunity is engaged. M{Phi} activated by granulocyte-M{Phi} colony stimulating factor (GM-CSF) induce metallothioneins (MTs) that bind zinc (Zn) and deprive yeast cells of labile Zn, thereby disabling fungal growth. Prior work demonstrated that the high affinity zinc importer, ZRT2, was important for fungal survival in vivo. Hence, we constructed a yeast cell reporter strain that expresses green fluorescent protein (GFP) under the control of this importer. This reporter accurately responds to medium devoid of Zn. ZRT2 expression increased ([~]5-fold) in GM-CSF, but not interferon-{gamma}, stimulated M{Phi}. To examine the in vivo response, we infected mice with reporter yeasts and assessed ZRT2 expression at 0-, 3-, 7-, and 14-days post-infection (dpi). ZRT2 expression minimally increased at 3-dpi and peaked on 7-dpi, corresponding with onset of adaptive immunity. We discovered that the major phagocyte populations that restrict Zn to the fungus are interstitial M{Phi} and exudate M{Phi}. Neutralizing GM-CSF blunted control of infection but unexpectedly increased ZRT2 expression. This increase was dependent on another cytokine that activates M{Phi} to control H. capsulatum replication, M-CSF. These findings illustrate the reporters ability to sense Zn in vitro and in vivo and correlate ZRT2 activity with GM-CSF and M-CSF activation of M{Phi}. ImportancePhagocytes use an arsenal of defenses to control replication of Histoplasma yeasts, one of which is limitation of trace metals. On the other hand, H. capsulatum combats metal restriction by upregulating metal importers such as the Zn importer ZRT2. This transporter contributes to H. capsulatum pathogenesis upon activation of adaptive immunity. We constructed a fluorescent ZRT2 reporter to probe H. capsulatum Zn sensing during infection and exposed a role for M-CSF activation of macrophages when GM-CSF is absent. These data highlight the ways in which fungal pathogens sense metal deprivation in vivo and reveal the potential of metal-sensing reporters. The work adds a new dimension to studying how intracellular pathogens sense and respond to the changing environments of the host.

microbiology↗

Macrophage epigenetic memories of early life injury drive neonatal nociceptive priming

The developing peripheral nervous and immune systems are functionally distinct from adults. These systems are vulnerable to early life injury, which influences outcomes related to nociception following subsequent injury later in life (i.e., "neonatal nociceptive priming"). The underpinnings of this phenomenon are largely unknown, although previous work indicates that macrophages are epigenetically trained by inflammation and injury. We found that macrophages are both necessary and partially sufficient to drive neonatal nociceptive priming possibly due to a long-lasting epigenetic remodeling. The p75 neurotrophic factor receptor (NTR) was an important effector in regulating neonatal nociceptive priming through modulation of the inflammatory profile of rodent and human macrophages. This "pain memory" was long lasting in females and could be transferred to a naive host to alter sex-specific pain-related behaviors. This study reveals a novel mechanism by which acute, neonatal post-surgical pain drives a peripheral immune-related predisposition to persistent pain following a subsequent injury. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=134 SRC="FIGDIR/small/528015v2_ufig1.gif" ALT="Figure 1"> View larger version (34K): org.highwire.dtl.DTLVardef@117ad6eorg.highwire.dtl.DTLVardef@17b4188org.highwire.dtl.DTLVardef@10b4d9borg.highwire.dtl.DTLVardef@1142094_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗

Sialophorin is an essential host element for vaccine immunity against pulmonary fungal infections

The global burden of fungal infections is alarming, primarily due to the increasing immune-compromised population. The immuno-preventive/therapeutic measures, including vaccines, are necessary to prevent or control fungal diseases. Identifying a protective host element as a functional phenotypic marker is immensely valuable. We identified a host element, sialophorin, preferentially associated with antifungal memory T cells. We investigated its role in vaccine immunity using a mouse model of pulmonary fungal infection. We found that sialophorin was essential to bolster CD8+ T-cell responses to the vaccine by enhancing their differentiation and expanding cytokine-producing cells required for immunity. Using a gain-of-function approach, activating sialophorin using mAb augmented the CD8+ T cell responses, and sialophorin-sufficient CD8+ T cells were competitively superior in differentiation and expansion to the deficient cells. Sialophorin-mediated vaccine immunity was independent of the T cell trafficking effect. Finally, we show that sialophorin is a potential functional phenotypic marker of fungal vaccine-potency and immunity. Our study revealed that sialophorin is an essential host-target element to bolster vaccine responses and serves as a potential biomarker of fungal immunity. Author SummaryFungal infections have been rising in recent years due to increased immunocompromised individuals. Vaccination of at-risk individuals helps counter the infections. Thus, suitable vaccine platforms are needed with apt adjuvants, and a phenotypic marker of vaccine immunity will bolster the efforts. We identified a phenotypic marker, sialophorin, associated with T cell vaccine immunity to fungal infection. Our findings show an essential role of sialophorin for fungal immunity, as a target of adjuvanticity, and as a potential biomarker of vaccine immunity against many fungal infections.

immunology↗