bioRxiv Science⌕ Search

Biology subjects

Mohammed, Z.

Publications and source records attributed to Mohammed, Z..

3 recordsLinked to original sources

BTK-NLRP3-Caspase1 and Gasdermin D-Caspase 11 pathways jointly drive neuroinflammation and functional impairments in a rat model of psychosocial stress

Despite serious health and economic burden, borne more prominently by lower and lower middle-income countries, pharmacotherapy for common psychiatric disorders rely on drugs altering neurotransmission, with partial efficacies. The persistence of a chronic yet sub-threshold inflammation across the periphery and the brain is well documented in the patients and animal models of these disorders and can be investigated for augmenting pharmacotherapy. IL1{beta}, a pleiotropic cytokine and a key regulator of neuroinflammation has been of particular interest in this regard. Previous studies on rodent models of anxiogenic stress show activation of a large multiprotein complex - the NLRP3 inflammasome, which increases IL1{beta} production facilitated by caspase 1, through what is considered a canonical inflammasome activation pathway. However, there exists a second non canonical inflammasome activation pathway whose impact on IL1{beta} release, inflammation and behavioral consequences remain unclear. Using rat models of physical and psychosocial stress, we observed stress-induced sex-specific upregulation of activated caspase 11 and gasdermin D N-terminal fragments, the mediators of the non-canonical inflammasome pathway that facilitates IL1{beta} release through pore formations in the plasma membrane. This is the first report of non-canonical inflammasome pathway being activated in the brain and peripheral immune cells in response to psychosocial stress. Inhibition of caspase 11 with wedelolactone, or Gasdermin D cleavage with Disulfiram reduced stress-induced elevation of IL1{beta} levels, anxiety and fear acquisition, facilitated fear extinction and recall, and improved working memory. Combination treatments targeting both canonical (ibrutinib for pBTK/NLRP3 or MCC950 for NLRP3 inhibition) and non-canonical (wedelolactone for caspase 11 or disulfiram for gasdermin D) pathways proved more efficacious in reducing stress-mediated neuroinflammation, dendritic spine elimination in the CA3 region of the hippocampus and behavioral dysfunction. Furthermore, psychosocial stress drove peripheral inflammation, in peripheral blood mononuclear cells, which was mitigated by the combination treatment. Taken together, this study reveals a novel mechanism underlying psychosocial stress involving both canonical and non-canonical inflammasome signaling to facilitate IL1{beta} induction and behavioral changes. Our finding further suggests that combined targeting of the NLRP3 inflammasome and gasdermin D could contribute to the development of future transdiagnostic therapeutic targets for stress, anxiety, and depression.

neuroscience↗

Biomimetic porous silicon for rationally engineered combination therapy to induce immunogenic cell death

Combined chemo-photothermal therapy (CHT-PTT) is a promising treatment for metastatic cancers. It enables the synergistic induction of immunogenic cell death (ICD), while sensitising suppressive tumour microenvironment to immunotherapy. To induce ICD, the rational design of a combined CHT-PTT regimen remains unclear. In the present study, black porous silicon nanoparticles (BPSi NPs) were utilized as both drug carriers and photothermal conversion agents. To enhance their colloidal stability and homotypic targeting, BPSi NP surfaces were modified with polyethylene glycol and further coated with cancer cell membranes (CMs). Six chemotherapeutic drugs with different cell growth inhibition mechanisms were tested against metastatic MDA-MB-231 breast cancer cells to evaluate their ICD induction potentials. Finally, in the combined CHT-PTT, the effect of temperature was evaluated. Based on the analysis of ICD markers, high-mobility group box 1 and calreticulin proteins, we found that bromodomain-containing protein 4 inhibitor, (+)-JQ-1 (JQ1) was the optimal drug, and the mild-hyperthermia temperature of 45 {degrees}C was the best temperature setting in the combined CHT-PTT to induce ICD. Thus, our study provides rationally designed CHT-PTT regimen for efficient cancer treatment with high efficacy and low side effects.

bioengineering↗

Antigen and IL-33 synergistically promote chromatin accessibility at the regulatory regions of pro-inflammatory genes of human skin mast cells

BackgroundAntigenic stimulation through cross-linking the IgE receptor and epithelial cell-derived cytokine IL-33 are potent stimuli of mast cell (MC) activation. Moreover, IL-33 primes a variety of cell types, including MCs to respond more vigorously to external stimuli. However, target genes induced by the combined IL-33 priming and antigenic stimulation have not been investigated in human skin mast cells (HSMCs) in a genome-wide manner. Furthermore, epigenetic changes induced by the combined IL-33 priming and antigenic stimulation have not been evaluated. ResultsWe found that IL-33 priming of HSMCs enhanced their capacity to promote transcriptional synergy of the IL1B and CXCL8 genes by 16- and 3-fold, respectively, in response to combined IL-33 and antigen stimulation compared to without IL-33 priming. We identified the target genes in IL-33-primed HSMCs in response to the combined IL-33 and antigenic stimulation using RNA sequencing (RNA-seq). We found that the majority of genes synergistically upregulated in the IL-33-primed HSMCs in response to the combined IL-33 and antigenic stimulation were predominantly proinflammatory cytokine and chemokine genes. Moreover, the combined IL-33 priming and antigenic stimulation increase chromatin accessibility in the synergy target genes but not synergistically. Transcription factor binding motif analysis revealed more binding sites for NF-{kappa}B, AP-1, GABPA, and RAP1 in the induced or increased chromatin accessible regions of the synergy target genes. ConclusionsOur study demonstrates that IL-33 priming greatly potentiates MCs ability to transcribe proinflammatory cytokine and chemokine genes in response to antigenic stimulation, shining light on how epithelial cell-derived cytokine IL-33 can cause exacerbation of skin MC-mediated allergic inflammation.

immunology↗