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Salman, T.

Publications and source records attributed to Salman, T..

5 recordsLinked to original sources

Cocaine-Enriched Oral Streptococcus parasanguinis Promotes Neuroimmune Dysfunction and Memory Impairment

Chronic cocaine use is associated with neuroinflammation and cognitive dysfunction, but the underlying mechanisms remain unclear. We previously identified oral enrichment of Streptococcus parasanguinis (SP) and other species in individuals with cocaine use disorder (CUD), and here demonstrate that cocaine selectively enhanced SP growth in vitro. To investigate causality, antibiotic-pretreated wild-type C57BL/6 mice received chronic oral inoculation of SP, S. salivarius, Neisseria flavescens, or vehicle. SP-treated mice exhibited spatial memory impairment, increased brain IL-1{beta}, and non-region-specific microglial activation, without detectable bacterial translocation into the brain. While amyloid-associated signaling changes were observed across all bacterial treatment groups, only SP induced cognitive deficits and neuroinflammation. Untargeted metabolomics identified distinct SP-associated oral-to-brain metabolite signatures, including cysteine S-sulfate (CSS) and altered histamine-associated metabolites. CSS and histamine induced neuroinflammatory and amyloid-associated responses in vitro. Together, these findings identify a cocaine-associated oral pathobiont that promotes neuroinflammation and neurodegeneration, suggesting a novel oral microbiome-brain axis in CUD.

neuroscience↗

Cannabis-enriched oral Actinomyces induces anxiety-like behavior via impairing mitochondria and GABA signaling

The human oral microbiome is increasingly recognized as a contributor to brain health, yet its mechanisms remain unclear. Our previous work revealed that oral Actinomyces species was enriched in chronic cannabis smokers. Here, we show oral inoculation of cannabis use-associated Actinomyces species, especially A. meyeri, to wild-type C57BL/6 mice leads to anxiety-like behaviors, non-region-specific microglia activation, mitochondrial dysfunction, and reduced GABAergic neurotransmission, without evidence of bacterial translocation to the brain, neuroinflammation, and memory decline. Notably, Actinomyces species-producing metabolites, i.e., arginine and argininosuccinate, were increased in both oral swabs and brain following inoculation in vivo. These Actinomyces species-producing metabolites induced mitochondrial dysfunction and oxidative stress in neurons in vitro, indicating a neuropathogenic role and aligning with reduced GABAergic neurotransmission in vivo. Together, these results suggest that oral cannabis-associated dysbiosis impacts behavior through mitochondrial stress and impaired inhibitory signaling, indicating the oral-brain metabolic axis is potentially consequential in neuropsychiatric disorders. TeaserChronic heavy cannabis use-enriched oral bacteria can drive anxiety and neuropathogenesis in mice. Highlights{whitebullet} Cannabis-associated oral Actinomyces enrichment induces anxiety-like behavior in mice {whitebullet}Microglial activation occurs without neuroinflammation (IL-1{beta}, TNF-, and IL-6) {whitebullet}Mitochondrial hyperactivation and reduced inhibitory GABAergic signaling Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=160 SRC="FIGDIR/small/689724v1_ufig1.gif" ALT="Figure 1"> View larger version (28K): org.highwire.dtl.DTLVardef@120b0b1org.highwire.dtl.DTLVardef@1304782org.highwire.dtl.DTLVardef@a6aa77org.highwire.dtl.DTLVardef@17d6d_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗

Characterize Oral-to-Blood Microbial DNA Translocation in Individuals with Cocaine Use Disorder

BackgroundCocaine disrupts gut barriers in animal models, potentially enabling microbial translocation and inflammation in the periphery and central nervous system (CNS), but its direct role in inducing inflammation remains controversial. This study aimed to determine if the oral cavity is a source of circulating microbial DNA translocation in individuals with current cocaine use disorder (CUD). ResultsA cross-sectional case-control study was conducted, comparing CUD and demographically matched non-drug controls. Ten CUD (via smoking or vaping) and 24 controls provided paired saliva and blood samples. Microbial 16S rRNA V4 region was sequenced in isolated microbial DNA from saliva and plasma. Single-cell RNA sequencing (scRNAseq) was analyzed in human peripheral blood mononuclear cells. Saliva from CUD, but not plasma, exhibited reduced alpha diversity and altered beta diversity, characterized by enriched Streptococcus and depleted Fusobacterium, Neisseria, and other taxa relative to controls. Controls exhibited low to undetectable microbial translocation in plasma. By contrast, plasma displayed CUD-specific oral enrichment of several Streptococcal species and evidence of translocation into the bloodstream. S. parasanguinis, but not cocaine alone, induced IL-1{beta} and TNF- production in human primary monocytes in vitro. scRNAseq further revealed innate immune activation, impaired T cell function, and heightened susceptibility to infection in CUD. ConclusionsThis pilot study demonstrating that CUD via smoking or snorting exhibited oral microbial dysbiosis and selective oral-to-blood microbial translocation in vivo. These findings suggest that a compromised oral-to-blood barrier, rather than cocaine itself, promotes immune perturbations in CUD.

microbiology↗

Systemic translocation of S. aureus Drives Anti-CD4 Autoimmunity in Treated HIV Infection

BackgroundIn 2017, our group first demonstrated that autoimmunity contributes to HIV pathogenesis, even without autoimmune disease. This concept is now broadly recognized, exemplified by the role of autoimmunity in severe COVID-19. In people with HIV (PWH) on suppressive ART, anti-CD4 autoantibodies may impair CD4+ T cell recovery, though the mechanisms driving their production remain unclear. Building on evidence from our group and others that Staphylococcus aureus and its peptidoglycan (PGN) promote autoimmunity, we investigated their contribution to anti-CD4 IgG in HIV. MethodsPlasma from 32 ART-naive PWH, 53 ART-treated PWH, and 32 HIV-negative controls was analyzed for IgG autoantibodies and markers of S. aureus translocation using protein array, ELISA, and microarray. EcoHIV mice were injected intraperitoneally with saline, S. aureus PGN, or Bacillus subtilis PGN. PGN structures were compared by mass spectrometry. ResultsAmong 87 autoantibodies, 40% were elevated in ART-naive PWH and largely normalized by ART; however, anti-CD4 IgGs remained elevated in PWH on ART. Anti-CD4 IgG levels inversely correlated with CD4+ T cell counts in ART-treated PWH and positively with S. aureus translocation. In mice, S. aureus PGN induced anti-CD4 IgGs, reduced gut CD4+ T cells, and promoted surface IgG binding and apoptosis in CD4+ T cells. ConclusionS. aureus and its PGN translocation may drive anti-CD4 autoimmunity and hinder immune recovery in PWH on suppressive ART, highlighting S. aureus colonization as a therapeutic target and supporting the development of competitive probiotic interventions such as Bacillus subtilis.

immunology↗

Cocaine-induced immediate-early gene expression in the nucleus accumbens: roles of separate cAMP sensors

Immediate-early gene (IEG) induction after administration of amphetamine or cocaine has been used to trace the signaling pathways that mediate neuronal plasticity required for the short- and long-term behavioral effects of these psychostimulants. We recently reported that a novel cyclic AMP (cAMP)-dependent Rap guanine nucleotide exchange factor-2 (RapGEF2)-ERK signaling pathway is required for Egr-1 induction in D1 medium-spiny neurons (MSNs) of the nucleus accumbens (NAc) after cocaine treatment, and that its deletion from the NAc neurons attenuates cocaine-induced locomotor sensitization and conditioned place preference (CPP). However, the cell type-specific neuronal mechanisms underlying this effect remain unclear. In this study, we used Cre-LoxP technology and a novel Cre-amplifier transgene to generate conditional RapGEF2 knockout mice targeting D1-MSNs and investigated the functional role of RapGEF2 in cocaine reward. Deletion of RapGEF2 in D1-MSNs blocked cocaine-induced ERK phosphorylation (p-ERK) and Egr-1 induction. D1-MSN-specific RapGEF2 deletion did not affect intravenous cocaine self-administration, nor did it affect Fos induction by cocaine, prompting us to examine more closely the role of metabotropic (cAMP-dependent) signaling to IEGs after cocaine administration. We used a battery of D1-MSN-specific genetic interventions targeting cAMP signaling, including Drd1-Cre::Rap1A/Bfl/fl mice, and AAV injection of a Cre-dependent catalytically active phosphodiesterase (PDE4D3-cat) or a Cre-dependent protein kinase A-inhibitor (PKI) in the NAc of Drd1-Cre mice, to explore further the underlying cAMP dependence of IEG induction by acute and chronic cocaine administration, and the cAMP sensors required. Rap1 is reported as a necessary component for both RapGEF2- and PKA-dependent ERK activation, but a requirement for Rap in Fos induction by cocaine has not been examined. Deletion of Rap1A/B in D1-MSNs blocked cocaine-induced p-ERK and Egr-1 expression, but not c-Fos, supporting the idea that the RapGEF2-Rap1-ERK pathway specifically regulates Egr-1, not c-Fos, expression. D1-specific expression of the PDE4D3-cat ablated up-regulation of both Egr-1 and Fos in NAc after cocaine administration, demonstrating that induction of both IEGs requires cAMP elevation in D1-MSNs. Notably, inhibition of PKA activity via AAV-mediated expression of PKI-alpha in D1-MSNs blocked both c-Fos and Egr-1 induction. Thus, acute or chronic cocaine administration activates at least two cAMP-dependent signaling pathways in D1-MSNs: a PKA-Fos pathway and a RapGEF2-ERK-Egr-1 pathway. The finding that PKA also activates the ERK-Egr-1 signaling pathway by convergence on Rap1, and concomitantly activates c-Fos independently of Rap1, may underlie selective effects of metabotropic activation of RapGEF2 and PKA activation by cAMP on cocaine-dependent behaviors in mice.

neuroscience↗