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Biology subjects

Coleman, L. G.

Publications and source records attributed to Coleman, L. G..

7 recordsLinked to original sources

Pro-inflammatory microglia drive escalated alcohol consumption during early abstinence

Despite growing evidence that neuroimmune dysfunction contributes to Alcohol Use Disorder (AUD) pathology, the underlying neuroinflammatory mechanisms that may promote alcohol consumption are not as clear. We recently report that specific knockdown of interferon regulatory factor 7 (IRF7) in the anterior insula (aIC) mitigates escalation in ethanol self-administration in rats. In addition, we find pro-inflammatory activation of microglia contributes to other AUD-related behavioral impairments. Here, we sought to determine if pro-inflammatory activation of microglia from ethanol contributes to elevations in IRF7 and ethanol self-administration in rats. Male Wistar rats were trained under our ethanol self-administration paradigm (15% v/v; FR2 vs inactive lever) followed by 1-4 cycles of chronic intermittent ethanol vapor exposure (CIE). To inhibit microglia, rats were treated with minocycline (30mg/kg, i.p.) before and after each ethanol vapor session. Escalation in self-administration and biochemical markers were assessed 72 hours into abstinence. We found CIE increased ethanol self-administration, which was positively correlated with aIC IRF7 levels. Minocycline treatment blunted IRF7 expression and alleviated ethanol self-administration following CIE. LC-MS/MS proteomics of primary microglia from the aIC of rats following CIE with and without minocycline treatment indicate minocycline promotes metabolic and ribosomal re-wiring of microglia during early abstinence. These data suggest a role for microglia in driving both IRF7 levels and escalation in ethanol self-administration in early abstinence.

neuroscience↗

INTERFERON-REGULATORY FACTOR 7: A NEUROIMMUNE ROLE FOR VAPOR-INDUCED ESCALATIONS IN ETHANOL SELF-ADMINISTRATION

Neuroimmune signaling is increased in postmortem brain tissue from individuals with alcohol use disorder (AUD), and growing evidence suggests that it contributes to persistent alcohol-related neuroadaptations. Interferon regulatory factor 7 (IRF7), a transcription factor downstream of endosomal Toll-like receptor signaling, is induced in alcohol-relevant brain regions and may contribute to escalated drinking. Here, we tested whether chronic intermittent ethanol (CIE) vapor exposure engages IRF7 signaling during subsequent alcohol self-administration and whether this is associated with altered molecular E/I balance in the aIC and altered functional E/I balance in aICnucleus accumbens projection neurons. Female Wistar rats (n=30) were trained to self-administer alcohol (15% v/v; FR2 vs inactive lever) during 30-minute sessions. After establishing baseline drinking, rats underwent 1-3 cycles of CIE, which increased alcohol self-administration at the 72 h post vapor test. This increase positively correlated with IRF7 levels in the anterior insular cortex (aIC) and nucleus accumbens, while molecular, and immunofluorescence showed that CIE shifted aIC excitatory/inhibitory (E/I) balance toward reduced excitation. Electrophysiological recordings further showed reduced functional E/I balance in aIC neurons projecting to the nucleus accumbens. Knockdown of IRF7 in the aIC attenuated CIE induced escalation of alcohol self-administration, supporting a role for insular IRF7 signaling in alcohol related neuroadaptations that promote escalated drinking.

neuroscience↗

Alcohol use reduces the efficacy of anti-PD1 immunotherapy by disrupting anti-tumor immunity

Immune checkpoint inhibition (ICI) has improved clinical outcomes for certain patients with cancer. However, only a minority of patients have durable responses with underlying causes of differential immune responses across individuals often being unknown. Lifestyle exposures impact immune function and may subsequently alter the response to ICI. Alcohol use is common among cancer patients with known detrimental effects on adaptive immune function. However, its impact on ICI efficacy remains unknown. To determine if alcohol impacts ICI therapies, we performed a retrospective assessment of outcomes for patients receiving anti-PD1 ICI across tumor types and employed preclinical mouse models of ICI for lung and bladder cancer. Alcohol use reduced ICI efficacy in human patients treated with anti-PD1 for lung and bladder cancer (HR [~]2.0) as well as in murine models ICI in lung (LN4K1) and bladder (MB49) cancer. Alcohol reduced tumoral T cell numbers, promoting less productive Th2 and Th17 CD4+ phenotypes intratumorally and regulatory phenotypes in the periphery. In both rodent and ex-vivo human T cells, alcohol disrupted T cell activation and effector functions. Thus, alcohol use negatively impacts ICI efficacy warranting alcohol cessation for this patient population.

immunology↗

Xylazine and fentanyl co-administration delays wound healing in mice

Xylazine, a veterinary sedative increasingly found in the unregulated drug supply, is associated with severe skin wounds in humans, particularly when co-used with fentanyl. Despite growing concern, the mechanisms underlying these wounds remain unclear. To investigate how xylazine and fentanyl affect wound healing, we administered subcutaneous injections of saline, xylazine (3.2 mg/kg), fentanyl (1.0 mg/kg), or their combination to female C57BL/6J mice for 28 days. After a standardized punch biopsy, wound closure was tracked for 14 days, with continued drug exposure. Mice receiving the xylazine-fentanyl combination exhibited significantly delayed wound healing compared to all other groups, as shown by slower closure rates and increased area under the healing curve. A follow-up study without chronic pretreatment showed that acute xylazine-fentanyl exposure still altered healing dynamics, although it did not significantly delay time to closure. Neither drug alone impaired healing at the tested doses. These findings suggest that prior exposure to xylazine and fentanyl contributes to impaired wound healing and support the hypothesis that xylazine-associated wounds may arise from delayed healing of pre-existing skin injuries rather than spontaneous formation. This is the first preclinical model of xylazine-related wound impairment and provides a foundation for future research into biological mechanisms and potential interventions for these emerging soft tissue injuries.

pharmacology and toxicology↗

Temporal changes in the protein cargo of extracellular vesicles and resultant immune reprogramming after severe burn injury in humans and mice.

IntroductionSevere injury, including burn trauma, leads to profound immune dysfunction, yet the mechanisms driving these changes remain incompletely defined. This lack of understanding has hindered efforts to modulate the immune response effectively. Additionally, a clear biomarker profile to guide clinicians in identifying burn patients at high risk for poor clinical outcomes is lacking. Extracellular vesicles (EVs) have emerged as novel mediators of immune dysfunction in various pathologies. Prior studies in mouse models have demonstrated that plasma EVs increase following burn injury and contribute to immune dysfunction. Furthermore, EVs have potential as biomarkers for predicting extended hospital stays in burn patients. This study hypothesizes that human EVs, purified early and late after burn injury, will exhibit immune reprogramming effects similar to those observed in mice and that specific EV protein cargo may serve as biomarkers of immune and physiological responses to burn injury. MethodsEVs were isolated from the plasma of burn-injury patients at early (<72h) and late ([&ge;]14 days) time points post-injury. Using unbiased immune transcriptome and bioinformatic causal network analyses, the immunomodulatory effects of these EVs were assessed in human THP-1 macrophages. Mass spectrometry-based quantitative proteomics and pathway analyses were conducted to characterize the protein cargo of EVs from both human and mouse models at different post-burn phases. ResultsEarly post-burn human EVs induced significant immune reprogramming in macrophages, increasing pro-inflammatory signaling while suppressing anti-inflammatory pathways. In contrast, late post-burn EVs exhibited an immunosuppressive profile, with downregulation of pro-inflammatory pathways and upregulation of anti-inflammatory signaling. Proteomic analyses revealed that human and mouse EVs contained unique and overlapping protein cargo across different time points. At day 7 post-burn, mouse EVs were enriched in circulation/complement and neuronal proteins, whereas by day 14, reductions in membrane and metabolism-associated proteins were observed. Similarly, in human EVs at 14 days post-burn, increased levels of circulation/complement, immune, and transport proteins were detected. ConclusionsEVs from burn-injury patients at distinct time points differentially modulate immune responses in macrophages, mirroring the temporal immune phenotypes observed in clinical settings. These findings suggest that EV-macrophage interactions play a crucial role in burn-induced immune dysfunction and highlight the potential of EV protein cargo as biomarkers for immune status and patient outcomes following burn injury. Summary SentenceHuman extracellular vesicles released into the plasma after severe burn injury can reprogram the immune system with corresponding immunomodulatory protein cargo.

immunology↗

Microglia promote neurodegeneration and hyperkatifeia during withdrawal and prolonged abstinence from chronic binge alcohol

Proinflammatory microglial polarization, neuronal death, and hyperkatifeia/negative affect during withdrawal are key features of alcohol use disorder (AUD). However, the role microglia play in the development of AUD-related neuronal and behavioral pathology is unclear. Given the ability of microglia to regulate neuronal function, it was hypothesized that proinflammatory microglia promote neuronal death and hyperkatifeia during prolonged abstinence from binge alcohol. Proinflammatory signaling and affective state were assessed in mice either during acute withdrawal (24h) or abstinence (>4 weeks) to binge alcohol exposure. Ten days of binge alcohol increased proinflammatory gene signaling 24h after EtOH, which lasted weeks into withdrawal. Alcohol reduced brain-derived neurotrophic factor (BDNF) in hyperkatifeia-associated regions (i.e., the central amygdala and infralimbic cortex) during acute withdrawal and caused persistent microglial structural changes and loss of microglial BDNF in the BNST during abstinence. This was associated with increased anxiety-like behavior and hyperarousal, with persistent enhancement of conditioned fear memory during abstinence. Inhibition of proinflammatory microglia with Gi designer receptors exclusively activated by designer drugs (DREADDs) blocked neuronal death and prevented persistent proinflammatory gene induction and hyperkatifeia in female mice. Thus, this identifies a direct role for microglia in the development of AUD-related neuropathology and behavioral dysfunction, implicating microglia as cellular targets for the prevention of AUD phenotypes.

neuroscience↗

Loss of neuronal lysosomal acid lipase drives amyloid pathology in Alzheimer's disease

Underlying drivers of late-onset Alzheimers disease (LOAD) pathology remain unknown. However, multiple biologically diverse risk factors share a common pathological progression. To identify convergent molecular abnormalities that drive LOAD pathogenesis we compared two common midlife risk factors for LOAD, heavy alcohol use and obesity. This revealed that disrupted lipophagy is an underlying cause of LOAD pathogenesis. Both exposures reduced lysosomal flux, with a loss of neuronal lysosomal acid lipase (LAL). This resulted in neuronal lysosomal lipid (NLL) accumulation, which opposed A{beta} localization to lysosomes. Neuronal LAL loss both preceded (with aging) and promoted (targeted knockdown) A{beta} pathology and cognitive deficits in AD mice. The addition of recombinant LAL ex vivo and neuronal LAL overexpression in vivo prevented amyloid increases and improved cognition. In WT mice, neuronal LAL declined with aging and correlated negatively with entorhinal A{beta}. In healthy human brain, LAL also declined with age, suggesting this contributes to the age-related vulnerability for AD. In human LOAD LAL was further reduced, correlated negatively with A{beta}1-42, and occurred with polymerase pausing at the LAL gene. Together, this finds that the loss of neuronal LAL promotes NLL accumulation to impede degradation of A{beta} in neuronal lysosomes to drive AD amyloid pathology. SummaryCellular and molecular drivers of late-onset Alzheimers disease (LOAD) are unknown, though several risk factors account for the majority of disease incidence1-5. Though diverse in their biological natures, each of these risk exposures converge on a shared pathological progression with the accumulation of amyloid early in the disease. Human genetic and transcriptomic studies suggest a role for altered lipid metabolism6-9, though the mechanism has been unknown. Here, using two common midlife risk exposures for LOAD, we found that dysfunctional lipophagy caused by the loss of lysosomal acid lipase (LAL) promotes early LOAD pathogenesis. Both midlife obesity and heavy alcohol reduced neuronal LAL, causing an increase in neuronal lysosomal lipid, and a subsequent accumulation of A{beta} in the extra-lysosomal cytosol. This loss of LAL preceded and promoted A{beta} pathology and cognitive deficits in AD mice. The addition of recombinant LAL ex vivo and neuronal LAL overexpression in vivo prevented increases in amyloid and improved cognition. In human brain, LAL declined with age in healthy subjects, similar to rodents, showing robust losses in LOAD subjects with polymerase pausing. Together, this implicates neuronal LAL loss in LOAD pathogenesis and presents LAL as a promising diagnostic, preventative, and/or therapeutic target for AD.

neuroscience↗