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Young, N. A.

Publications and source records attributed to Young, N. A..

2 recordsLinked to original sources

Inhibition of extracellular vesicle-encapsulated miRNA produced by estrogen-mediated upregulation of cellular processing suppresses target organ inflammation in a humanized model of systemic lupus erythematosus

Background/PurposeDistinct, disease-associated intracellular miRNA (miR) expression profiles have been identified from peripheral blood mononuclear cells (PBMCs) of systemic lupus erythematous (SLE) patients. We have previously demonstrated novel estrogenic responses in PBMCs from SLE patients and discovered that estrogen lowers the threshold of immune cell activation to a greater extent in females, including significant upregulation of toll-like receptor (TLR)7 and TLR8 expression. TLR7 and TLR8 bind viral-derived single-stranded RNA to stimulate innate inflammatory responses, but recent studies have shown that miR-21, mir-29a, and miR-29b can also bind and activate these receptors when packaged and secreted in extracellular vesicles (EVs). ObjectiveThe objective of this study was to characterize the estrogen-mediated immunomodulatory effects of distinct EV-encapsulated miR profiles in SLE and evaluate the potential therapeutic approach of miR inhibition in a humanized mouse model. MethodsSLE patients meeting revised ACR guidelines and age/sex-matched healthy controls provided informed consent to participate in this IRB-approved study. Plasma-derived EVs were isolated by differential ultracentrifugation and quantified. PBMCs were isolated from whole blood and cultured in hormone free conditions before stimulation with 17{beta}-estradiol (estrogen; E2). RNA was isolated following E2 stimulation or EV isolation and bulk RNA-sequencing (RNAseq) reads were analyzed. Additionally, PBMCs from active SLE patients were injected into immunodeficient mice to produce chimeras. Prior to transfer, the PBMCs were incubated with liposomal EVs containing complementary locked nucleic acid (LNA) antagonists to miR-21, mir-29a, and miR-29b. After three weeks, blood was collected for both immunophenotyping and cytokine analysis and tissue was harvested for histopathological examination. ResultsEVs were found to be increased in the plasma of SLE patients and differentially expressed EV-derived miR profiles were detected compared to healthy controls, including miR-21, mir-29a, and miR-29b. E2 stimulation of PBMCs identified upregulated pathways involved in miR transcription/processing. Specifically, small RNA binding proteins and synthesis enzymes demonstrated significant signaling pathway association and upregulation with E2 treatment. Human immune cell subtypes were successfully recovered from whole blood of chimeric mice at similar levels with and without miR inhibition, but levels of human IL-6, IL-1{beta}, IL-4, and TNF- were significantly reduced by the LNA antagonists. Moreover, miR antagonists significantly reduced histopathological infiltrates in the small intestine, liver, and kidney, as demonstrated by H&E-stained tissue sections and immunohistochemistry measuring human CD3. ConclusionThese data suggest E2-mediated regulation of miR synthesis and demonstrate distinct EV-derived small RNA signatures representing SLE-associated biomarkers. Targeting upregulated EV-encapsulated miR signaling by antagonizing miRs that may bind to TLR7 and TLR8 reveals a novel therapeutic opportunity to suppress autoimmune-mediated inflammation and pathogenesis in SLE.

immunology↗

Aromatase Inhibitor Induced Musculoskeletal Inflammation is Observed Independent of Oophorectomy in a Novel Mouse Model

BackgroundAromatase Inhibitors (AIs) block physiological estrogen production in peripheral tissues and are used clinically to reduce disease recurrences and improve overall survival rates in hormone receptor-positive breast cancer patients. However, half of patients taking these drugs develop aromatase inhibitor induced arthralgia (AIIA), which is characterized by severe pain and inflammation in various joints and the surrounding musculoskeletal tissue. While the pathophysiology is not currently understood, it has been proposed to be associated with systemic estrogen deficiency resulting from AI treatment. Since AIIA leads to suspension of therapy in 20-30% of patients, reducing AIIA incidence may provide sustained AI treatment and enhance long-term survival. ObjectiveIn order to establish a better understanding of disease pathology and to create a platform that can be used to explore future interventional strategies, our objective in this study was to design a novel animal model of AIIA. MethodsFemale BALB/C-Tg(NF{kappa}B-RE-luc)-Xen mice, which have a firefly luciferase cDNA reporter transgene under the regulation of NF{kappa}B binding sites, were oophorectomized and treated with AI (letrozole) by daily subcutaneous injections for 5 weeks. Control groups included oophorectomized mice receiving vehicle injections and non-oophorectomized mice treated with AI. Knee joints and surrounding muscle tissue were imaged on the BioSpec 94/30 micro-MRI. The primary weight-bearing joint (hind limb) was examined histopathologically and NF{kappa}B activity was measured by bioluminescent imaging. Serum was collected for cytokine analysis. Additionally, healthy human PBMCs were treated with letrozole, estrogen, or both, and RNA sequencing was performed at 36 hrs. ResultsBioluminescent imaging showed significantly enhanced NF{kappa}B activation with AI treatment in the hind limbs compared to controls receiving vehicle treatment. Moreover, analysis of knee joints and legs by MRI showed enhanced signal detection in the joint space and surrounding tissue following daily AI injections. Surprisingly, the enhanced MRI detection and NF{kappa}B activation was observed with AI treatment independent of the oophorectomy procedure. This indicates that the induction of musculoskeletal-directed inflammation by AI is not mediated by changes in physiological estrogen levels, which is contrary to proposed mechanisms of disease pathogenesis. Similarly, histopathological analysis showed tenosynovitis and musculoskeletal infiltrates in all mice receiving AI with or without oophorectomy. IHC analysis of the infiltrates demonstrated a predominantly macrophage-mediated inflammatory response with scattered CD4+ T cells. Additionally, serum cytokine levels of IL-2, IL-4, IL-6, and CXCL1 were significantly elevated in mice with AI treatment. RNA sequencing of human PBMCs after in vitro AI stimulation did not demonstrate an AI-specific gene expression pattern associated with immune system activation directly, suggesting that the pathogenesis of AIIA may be mediated through cells in other tissues in vivo. ConclusionsCollectively, these data establish a novel mouse model of AIIA and identify an estrogen-independent stimulation of disease pathology via AI-mediated induction. This suggests that the pathogenesis of AIIA may not be mediated by estrogen deficiency, as previously hypothesized, and indicates that AI-induced inflammation may not be regulated directly through a pathogenic mechanism initially derived from circulating mononuclear cells. Future studies aim to characterize this inflammatory mechanism in vivo with a focus on other cells, including macrophages, synovial cells and chondrocytes, to provide insight into putative therapeutic strategies directed at mitigating disease pathology.

immunology↗