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In-Press Preview

Articles in this category appear as authors submitted them for publication, prior to copyediting and publication layout.
Anti-Notch plus endocrine therapy in ER+ breast cancer inhibits cancer stem cells by increasing DAXX
Resistance to endocrine therapy (ET) in ER+ breast cancer is mediated by Notch signaling, but the clinical application of anti-Notch therapy has been limited by the lack of predictive biomarkers....
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Research In-Press Preview Cell biology Oncology

Anti-Notch plus endocrine therapy in ER+ breast cancer inhibits cancer stem cells by increasing DAXX

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Abstract

Resistance to endocrine therapy (ET) in ER+ breast cancer is mediated by Notch signaling, but the clinical application of anti-Notch therapy has been limited by the lack of predictive biomarkers. To identify Notch-regulated biomarkers, we conducted a pre-surgical window study evaluating ET combined with the γ-secretase inhibitor (GSI) MK-0752. RNA expressions in tumors were measured using an Affymetrix array and by real-time PCR. ET plus GSI showed more genes were decreased than ET alone. Specifically, DAXX, NOXA, and LFNG RNAs were increased, while fifteen additional transcripts were decreased. Mechanistically, GSI reduced Notch1 occupancy at CSL-binding elements within HES1, HEY2, HEYL, CCND1, MKI67, and DAXX genes, and inhibited cancer stem cells (CSCs) by 90% to 100%. This anti-CSC effect required DAXX, while GSI treatment or Notch1/4 knockdown increased DAXX expression, suggesting transcriptional repression by Notch. Using mouse tumor xenograft studies, ET plus MK-0752 resulted in complete regression of MCF-7 tumors, with DAXX-high tumors showing greater treatment sensitivity. Clinically, high DAXX expression was associated with improved recurrence-free and overall survival. This study found that anti-Notch plus ET in ER+ breast cancer inhibits cancer stem cells by increasing DAXX, a promising predictive biomarker. These findings support clinical evaluation of therapies that increase DAXX expression.

Authors

Kathy S. Albain, Debra Wyatt, Andrei Zlobin, Susan G. Hilsenbeck, Cheryl M. Czerlanis, Daniel S. Peiffer, Kyle R. Convington, Constantine Godellas, Shelly S. Lo, Patricia A. Robinson, Kathy Czaplicki, Barbara Busby, Davide Bova, Ping Tang, Patrick J. Stiff, Suzanne A.W. Fuqua, Lucio Miele, Clodia Osipo

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Serine palmitoyltransferase (SPT) inhibition in SPTSSA-related complex hereditary spastic paraplegia
Defective feedback inhibition of serine palmitoyltransferase (SPT) caused by pathogenic SPTSSA variants underlies childhood-onset complex hereditary spastic paraplegia, yet the developmental timing...
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Research In-Press Preview Genetics Neuroscience

Serine palmitoyltransferase (SPT) inhibition in SPTSSA-related complex hereditary spastic paraplegia

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Defective feedback inhibition of serine palmitoyltransferase (SPT) caused by pathogenic SPTSSA variants underlies childhood-onset complex hereditary spastic paraplegia, yet the developmental timing and therapeutic reversibility of sphingolipid dysregulation remain unclear. We generated a knock-in mouse carrying the disease-associated SptssaT51I variant and show that heterozygous animals exhibit preserved intrinsic SPT activity but impaired ORMDL-mediated regulation, leading to sustained elevation of bioactive sphingolipid intermediates that peak during postnatal myelination. Although gross myelin formation was initially maintained, excess sphingolipid flux rendered oligodendrocytes and neurons selectively vulnerable. Dietary L-serine, which augments SPT substrate availability, amplified sphingolipid accumulation in mutant but not wild-type mice, unmasking progressive spasticity, axonal injury, myelin ultrastructural defects, and, when administered during early postnatal development, severe pulmonary pathology likely responsible for lethality. Pharmacologic SPT inhibition with myriocin normalized sphingolipid synthesis, prevented serine-induced lethality, and reversed neurological and metabolic abnormalities. Translating these findings, treatment of a child with SPTSSA-T51I–associated complex hereditary spastic paraplegia using the FDA approved SPT inhibitor D-Cycloserine resulted in sustained improvement in spasticity, reduced baclofen requirement, and decreased plasma levels of neurofilament light chain (NFL). These data define dysregulated sphingolipid biosynthesis as a developmentally and metabolically sensitive driver of neurodegeneration and suggest SPT inhibition as a mechanistically grounded therapeutic strategy.

Authors

Yi Gong, Robert Thompson, Ashley M. Glover, Kenneth Gable, Sita D. Gupta, Natalie Golovanov, Julie Tassinari, Nathan Casey, Brian D. Wishart, Elise L. Townsend, April Qian, Martin Selig, Armen Yerevanian, Teresa M. Dunn, Florian Eichler

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Sex-dependent effects of neonatal hyperoxia on prefrontal cortex development
Premature infants often require supplemental oxygen therapy, a major risk factor for bronchopulmonary dysplasia and subsequent neurodevelopmental impairment. To determine how neonatal hyperoxia...
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Research In-Press Preview Development Neuroscience

Sex-dependent effects of neonatal hyperoxia on prefrontal cortex development

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Premature infants often require supplemental oxygen therapy, a major risk factor for bronchopulmonary dysplasia and subsequent neurodevelopmental impairment. To determine how neonatal hyperoxia affects prefrontal cortex (PFC) development, we exposed neonatal mice to 85% oxygen (O₂) from postnatal day (P)1–P14 and performed integrated single-nucleus transcriptomic and chromatin accessibility profiling with in vivo and in vitro validation. Hyperoxia induced sex-dependent cellular remodeling, reducing L4/5 intratelencephalic projecting glutamatergic neurons in females and mature oligodendrocytes in males. Across both sexes, hyperoxia suppressed oligodendrocyte maturation, with decreased expression of the myelination genes proteolipid protein 1 (Plp1) and myelin basic protein (Mbp), altered chromatin accessibility, and increased oligodendrocyte transcription factor 2 (OLIG2) protein expression. Regulatory responses were sex specific, with tumor protein p53 (TP53)-regulated metabolic disruption and lysine demethylase 3A (Kdm3a) induction in females, and Netrin-1 signaling in males. Hyperoxia impaired oligodendrocyte progenitor cell (OPC) proliferation and differentiation. These abnormalities were recapitulated in postmortem PFC tissue from infants with BPD and human induced pluripotent stem cell (iPSC)-derived OPCs. These findings show that neonatal hyperoxia disrupts PFC development through sex-dependent effects on neuronal and oligodendrocyte lineages while converging on impaired myelination, highlighting oligodendrocyte dysfunction as a clinically relevant consequence of neonatal oxygen exposure.

Authors

Xingrao Ke, Wei Yu, Carl F. Schreck, Joseph M. Varberg, Melissa A. Gener, Daniel A. Louiselle, Sheng Xia, Sherry M. Mabry, Heather L. Menden, Venkatesh Sampath, Robert H. Lane, Kaela M. Varberg

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Whole-genome methylation sequencing uncovers PASC signature elicited by T4 lymphocytes, shared with pulmonary fibrosis risk
BACKGROUND. Long-COVID, or post-acute sequelae of COVID-19 (PASC), leads to debilitating physical and cognitive deficits. No PASC molecular signature present in patients with diverse symptoms has...
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Clinical Research and Public Health In-Press Preview Inflammation Pulmonology

Whole-genome methylation sequencing uncovers PASC signature elicited by T4 lymphocytes, shared with pulmonary fibrosis risk

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BACKGROUND. Long-COVID, or post-acute sequelae of COVID-19 (PASC), leads to debilitating physical and cognitive deficits. No PASC molecular signature present in patients with diverse symptoms has been described. While PASC engages pathways regulating pro-fibrotic programs, no comparison of PASC with fibrosis-associated epigenetic landscapes has been reported at the bulk or single-cell level. We hypothesize that a subset of DNA methylation changes are present in PASC patients from multiple cohorts, predominate in specific immune or inflammatory cell-types, and overlap with the epigenetic profile of patients at risk of pulmonary fibrosis. METHODS. Two distinct prospective cohorts, in 2021 and in 2022-24, involving 203 patients with PASC underwent bulk whole genome methylation sequencing (WGMS). Single-cell WGMS data was generated from an independent PASC cohort. Sixty-eight pre-pandemic patients with conditions elevating risk of pulmonary fibrosis development were compared with PASC. RESULTS. Sixteen differentially methylated regions distinguished PASC versus multiple independent, healthy controls. Single-cell analysis of these regions indicated trending relative hypermethylation at multiple cell types, with T4 lymphocytes eliciting hypermethylation at most of the sequences identified to be PASC-specific DMRs in the bulk analysis. Patients at risk of pulmonary fibrosis development elicited DNA methylation changes overlapping PASC. CONCLUSION. In two independent prospective cohorts, blood WGMS identifies differentially methylated regions associated with PASC. Hypermethylation of these regions is predominantly, although not exclusively, associated with T4 lymphocytes and overlap with changes present in pre-pandemic pulmonary fibrosis at-risk patients. FUNDING. National Institutes of Health award HL160661 (AJ); and AI173035 (AJ and RSA).

Authors

Andy Madrid, Joseph Balnis, Lisa A. Drake, Anupama Tiwari, Vraj J. Patel, Paul J. Feustel, Jihua Liu, Sündüz Keleş, Fangxiu Xu, Chris L. Wright, Alvaro G. Hernandez, Recai Yucel, Marc A. Judson, Harold A. Singer, Reid S. Alisch, Ariel Jaitovich

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Spatial N-Glycan Imaging and Machine Learning Classify Hepatocellular Carcinoma and Predict Glutamine Synthetase Status
BACKGROUND. Hepatocellular carcinoma (HCC) exhibits molecular heterogeneity that challenges histopathologic classification and biomarker discovery. We assessed whether spatially resolved N-glycan...
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Clinical Research and Public Health In-Press Preview Clinical Research Hepatology Oncology

Spatial N-Glycan Imaging and Machine Learning Classify Hepatocellular Carcinoma and Predict Glutamine Synthetase Status

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BACKGROUND. Hepatocellular carcinoma (HCC) exhibits molecular heterogeneity that challenges histopathologic classification and biomarker discovery. We assessed whether spatially resolved N-glycan imaging with machine learning could classify tumor regions and infer glutamine synthetase (GS) status. METHODS. In this retrospective study, MALDI mass spectrometry imaging of N-glycans was performed on formalin-fixed, paraffin-embedded sections from two independent cohorts (discovery, n = 88; validation, n = 60) with pathologist annotation. An XGBoost classifier was trained on 90 discriminative N-glycan features using patient-grouped cross-validation. Performance was assessed by AUC for pixel- and biopsy-level discrimination of tumor from adjacent non-tumor tissue, and for GS status classification. RESULTS. Pixel-level AUCs were 0.95 (cross-validation) and 0.89 (external validation); biopsy-level AUCs were 1.0 and 0.97, correctly identifying 97% of tumor-containing biopsies. Probability maps recapitulated pathologist-defined boundaries; UMAP embeddings captured inter- and intratumoral heterogeneity. Discriminative species (m/z 2393.846, 1905.634, 1743.579, 1809.639) reflected complex, fucosylated, branched remodeling. N-glycans bearing six GlcNAc residues were enriched in GS+ (n = 45) versus GS− (n = 17) tumors (P = 0.001) and discriminated GS status (AUC = 0.75), consistent with GLUL and MGAT5 upregulation in TCGA-LIHC. CONCLUSION. MALDI N-glycan imaging with machine learning enables spatially resolved, objective classification of HCC and links glycan phenotypes to tumor-associated metabolic programs. TRIAL REGISTRATION. Not applicable; retrospective analysis of archival, de-identified tissue. FUNDING. NIH/NCI R01CA285370, 1R01CA289381, R33CA267226, R01CA282022, R21CA263464, R21CA286287, R01CA253460, S10OD030212, R01CA251155, R01CA250227, U01CA271887, P50CA295495, P30CA138313, P20GM130457, P30DK123704, P30DK120531,R24DK139775; NIH/NIA R01AG078702; Smart State Endowment, State of South Carolina; LeDucq Foundation.

Authors

Muhammed F. Bayram, Jade K. Macdonald, Andrew DelaCourt, Peggi M. Angel, Richard R. Drake, Aatur Singhi, David Geller, Satdarshan P. Monga, Amit Singal, Anand Mehta

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Autoantibody landscapes in Long COVID with neurological symptoms show heterogeneity without a shared disease signature
BACKGROUND. Neurological Long COVID (n-LC) includes persistent cognitive and autonomic symptoms after SARS-CoV-2 infection. Prior studies of post-COVID conditions have described diverse humoral...
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Clinical Research and Public Health In-Press Preview Clinical Research

Autoantibody landscapes in Long COVID with neurological symptoms show heterogeneity without a shared disease signature

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BACKGROUND. Neurological Long COVID (n-LC) includes persistent cognitive and autonomic symptoms after SARS-CoV-2 infection. Prior studies of post-COVID conditions have described diverse humoral autoreactivity. It remains unclear whether n-LC is associated with a consistent CNS-directed humoral signature. METHODS. We performed a cross-cohort case-control analysis to detect autoantibodies in cerebrospinal fluid (CSF) and serum from n-LC participants. In the Yale COVID Mind Study cohort, CSF from n-LC participants and pre-pandemic and recovered controls was assessed using mouse brain immunofluorescence and proteome-wide phage immunoprecipitation sequencing (PhIP-Seq), followed by supervised modeling and orthogonal validation assays. In the Epidemiology, Immunology, and Clinical Characteristics of Emerging Infectious Diseases with Pandemic Potential (IDCRP EPICC) cohort, post-COVID sera collected prior to iPhone- or iPad-based cognitive screening were profiled by PhIP-Seq and compared between participants with and without cognitive impairment. RESULTS. CSF immunoreactivity on mouse brain tissue was observed in both n-LC and controls, with similar overall frequencies. PhIP-Seq identified sparse, patient-specific peptide reactivities to nuclear and neuronal proteins in CSF and serum. Supervised models provided limited discrimination between cases and controls. Candidate autoantigens had limited disease specificity on orthogonal testing. EPICC serum autoantibody profiling similarly failed to distinguish individuals with and without cognitive impairment. CONCLUSIONS. Across cohorts and compartments, n-LC was not associated with a shared CNS-directed autoantibody signature using the approaches employed. Observed heterogeneity may reflect biological diversity, although limited statistical power to detect a shared response cannot be excluded. FUNDING. Grants HU00012020067, HU00012120103, HU00011920111, R01NS125693, R01MH125737, and R01AI157488 from the Defense Health Program and NIH.

Authors

Debanjana Chakravarty, Ravi Dandekar, Vishal D. Lashkari, Iris Tilton, Lindsay McAlpine, Jennifer Chiarella, Allison Nelson, Thomas Ngo, PeiXi Chen, Chung-Yu Wang, Aditi Saxena, Bryan Castillo-Rojas, Kelsey Zorn, David R. Tribble, Timothy H. Burgess, Leah H. Rubin, Stephanie A. Richard, Brian K. Agan, Simon D. Pollett, Shelli Farhadian, Serena Spudich, Samuel J. Pleasure, Michael R. Wilson

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Mild caloric restriction accelerates atherosclerosis via dysregulated cholesterol homeostasis and lipogenesis in HCHF-fed ApoE-deficient mice
Recent ACC/AHA guidelines recommend ≥5% weight loss over six months to reduce cardiovascular risk in obesity. However, some populations paradoxically exhibit increased cardiovascular disease (CVD)...
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Research In-Press Preview Cardiology Vascular biology

Mild caloric restriction accelerates atherosclerosis via dysregulated cholesterol homeostasis and lipogenesis in HCHF-fed ApoE-deficient mice

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Recent ACC/AHA guidelines recommend ≥5% weight loss over six months to reduce cardiovascular risk in obesity. However, some populations paradoxically exhibit increased cardiovascular disease (CVD) following weight loss. We investigated whether mild food restriction (MfR) accelerates atherogenesis through pro-atherogenic lipid remodelling. ApoE-deficient mice were fed Chow or a high-cholesterol/high-fat(HCHF) diet for six months, with MfR producing 5% lower body-weight gain. Atherosclerotic burden was quantified histologically, and hepatic lipidomes were analysed by ESI–MS/MS and compared with plasma lipidomic profiles from CVD patients. MfR improved insulin sensitivity by lowering blood glucose and triglycerides but increased circulating cholesterol and accelerated atherosclerosis. HCHF-fed mice developed larger, more numerous plaques with increased necrotic core formation, thinner fibrous caps, higher intima-to-media ratios, and inflammatory cell infiltration. Similar pro-atherogenic changes occurred in Chow-fed mice subjected to MfR. Mechanistically, MfR increased hepatic free cholesterol and enriched pro-atherogenic phosphatidylcholine, phosphatidylethanolamine, lysophosphatidylcholine, sphingomyelin, ceramide, and cholesterol ester species, yielding a CERT1 score of 8.1 indicative of cardiovascular risk. These lipid alterations mirrored plasma lipidomic signatures from CVD patients with diabetes. Collectively, our findings demonstrate that mild caloric restriction is not universally atheroprotective and can accelerate atherosclerosis in hypercholesterolaemic states by disrupting cholesterol homeostasis and promoting pro-atherogenic lipid remodelling.

Authors

Yun Zhu, Yanzhe Xu, Gerhard Liebisch, Juergen Borlak

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SIV infection disrupts the spatial cellular and communication networks of pulmonary granulomas during SIV/MTB co-infection
Tuberculosis (TB) caused by Mycobacterium tuberculosis (Mtb) is the leading infectious cause of death globally. Despite wide use of antiretroviral therapy (ART) by people living with HIV, the risk...
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Research In-Press Preview AIDS/HIV Immunology Infectious disease

SIV infection disrupts the spatial cellular and communication networks of pulmonary granulomas during SIV/MTB co-infection

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Tuberculosis (TB) caused by Mycobacterium tuberculosis (Mtb) is the leading infectious cause of death globally. Despite wide use of antiretroviral therapy (ART) by people living with HIV, the risk of TB remains increased. To understand immune interactions within lung granulomas, we compared spatial transcriptomics of Mtb and simian immunodeficiency virus (SIV) in co-infected macaques with or without ART as a model for HIV/Mtb co-infection. Spatially differentiated transcriptional profiles were observed in Mtb-only granulomas, with myeloid cells enriched in metabolic/antimicrobial pathways within the inner ring and T cell co-stimulatory/activation pathways enriched in the outer ring. These spatially distinct patterns were lost in SIV/Mtb granulomas with higher enrichment in type I IFN pathways compared to Mtb-only granulomas. SIV/ART/Mtb granulomas had an intermediate transcriptional pattern without restoration to Mtb-only granulomas, despite a lack of viral replication. Cell-cell communication was reduced among SIV/Mtb co-infected groups. These data suggest that HIV disrupts spatially organized immune functions of granulomas, which are not fully restored by ART.

Authors

Jessica M. Medrano, Persis Sunny, Collin R. Diedrich, Pauline Maiello, Christopher Kline, Tara Rutledge, Edwin Klein, Joshua T. Mattila, Jishnu Das, Zandrea Ambrose, Philana Ling Lin

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Vorinostat for graft-versus-host disease prevention in pediatric and young adult patients with hematologic malignancies
BACKGROUND. This prospective, single-arm, multicenter phase 1/2 trial evaluated vorinostat added to standard graft-versus-host disease (GVHD) prophylaxis in pediatric, adolescent, and young adult...
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Clinical Research and Public Health In-Press Preview Hematology Immunology Oncology

Vorinostat for graft-versus-host disease prevention in pediatric and young adult patients with hematologic malignancies

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BACKGROUND. This prospective, single-arm, multicenter phase 1/2 trial evaluated vorinostat added to standard graft-versus-host disease (GVHD) prophylaxis in pediatric, adolescent, and young adult (AYA) patients undergoing allogeneic hematopoietic cell transplantation (HCT) from HLA-matched related, HLA-matched unrelated, and haploidentical donors. METHODS. Patients aged 3–39 years received twice-daily vorinostat with tacrolimus/methotrexate after HLA-matched HCT from day −10 to +30, or with post-transplant cyclophosphamide/tacrolimus/mycophenolate mofetil after haploidentical HCT from day +5 to +30. The primary endpoint was cumulative incidence of grade II–IV acute GVHD by day +100. All outcomes were based on intention-to-treat analysis. RESULTS. Forty-three patients were enrolled; median age was 19 years, with 74% receiving HLA-matched and 26% haploidentical HCT. The recommended phase 2 dose was 60 mg/m² twice daily. No dose-limiting toxicities, unexpected vorinostat-related serious adverse events, or primary graft failures occurred. Median neutrophil and platelet recovery occurred at 14 and 18 days, respectively. Day +100 grade II–IV and III–IV acute GVHD were 14% (95% CI, 5.6, 26) and 4.7% (95% CI, 0.83, 14), respectively. One-year overall survival was 88.4% (95% CI, 79.3, 98.5), relapse 14% (95% CI: 5.6, 26), nonrelapse mortality 4.7% (95% CI: 0.8, 14), and GVHD-free/relapse-free survival 55.8% (95% CI: 42.8, 72.8). Correlative studies demonstrated on-target HDAC activity, with increased histone acetylation and lower proinflammatory cytokines. CONCLUSION. These findings support randomized evaluation of vorinostat-based GVHD prophylaxis in pediatric and AYA HCT. TRIAL REGISTRY. ClinicalTrials.gov, NCT03842696.

Authors

Nicolas Parnell, Xiao Cao, Jan H. Beumer, Thomas M. Braun, Yilei Cui, Gary J. Fisher, Guoqing Hou, Julianne Holleran, Tracey Churay, Michelle Rozwadowski, Luna Heider, Mark T. Vander Lugt, Carrie L. Kitko, April L. Rahrig, Ed Peres, Kirsten M. Williams, Julie-An Talano, Vanessa A. Fabrizio, Ghada Abusin, Gregory A. Yanik, John Magenau, Mary Riwes, Marcus J. Geer, Sarah Anand, Monalisa Ghosh, Attaphol Pawarode, Kristen Votruba, Pavan Reddy, Sung Won Choi

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Long-term reprogramming of classical monocytes with altered ontogeny mediates enhanced lung injury in sepsis survivors
Patients who survive sepsis are predisposed to new hospitalizations for respiratory failure, but the underlying mechanisms are unknown. Using a murine model in which prior sepsis predisposes to...
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Research In-Press Preview Immunology Infectious disease Pulmonology

Long-term reprogramming of classical monocytes with altered ontogeny mediates enhanced lung injury in sepsis survivors

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Patients who survive sepsis are predisposed to new hospitalizations for respiratory failure, but the underlying mechanisms are unknown. Using a murine model in which prior sepsis predisposes to enhanced lung injury, we previously discovered that classical monocytes persist in the lungs after long-term recovery from sepsis and exhibit enhanced cytokine expression after secondary challenge with intra-nasal lipopolysaccharide. Here, we hypothesized that immune reprogramming of post-sepsis monocytes and altered ontogeny predispose to enhanced lung injury. Monocyte depletion and/or adoptive transfer was performed three weeks and three months after sepsis. Monocytes from post-sepsis mice were necessary and sufficient for enhanced LPS-induced lung injury and promoted neutrophil degranulation. Prior sepsis enhanced JAK-STAT signaling and AP-1 accessibility in monocytes and shifted monocytes toward the neutrophil-like monocyte lineage. Neutrophil-like monocytes demonstrated a pro-inflammatory phenotype with enhanced IL-1β expression and reduced phagocytic capacity. In human sepsis and/or pneumonia survivors, monocytes were predictive of 90-day mortality and exhibit transcriptional and proteomic neutrophil-like signatures. We conclude that sepsis reprograms monocytes into a pro-inflammatory phenotype and skews bone marrow progenitors and monocytes toward the neutrophil-like lineage, predisposing them to induce neutrophil degranulation and lung injury.

Authors

Scott J. Denstaedt, Breanna McBean, Alan P. Boyle, Brett C. Arenberg, Matthias Mack, Bethany B. Moore, Michael W. Newstead, Yamei Deng, Alexey I. Nesvizhskii, Benjamin H. Singer, Jennifer Cano, Hallie C. Prescott, Helen S. Goodridge, Rachel L. Zemans

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Loss of ADAMTS9 disrupts ciliogenesis and collagen homeostasis resulting in Nephronophthisis-like polycystic kidneys
ADAMTS9 mutations cause the ciliopathies nephronophthisis and Joubert syndrome. Here we demonstrated that deletion of ADAMTS9 in the proximal nephron led to polycystic kidney development in mice....
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Research In-Press Preview Cell biology Development Nephrology

Loss of ADAMTS9 disrupts ciliogenesis and collagen homeostasis resulting in Nephronophthisis-like polycystic kidneys

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ADAMTS9 mutations cause the ciliopathies nephronophthisis and Joubert syndrome. Here we demonstrated that deletion of ADAMTS9 in the proximal nephron led to polycystic kidney development in mice. In males, Adamts9 deletion caused kidneys to become highly cystic while remaining small without undergoing enlargement. In contrast, female mice developed cystic kidneys at a slower rate. ADAMTS9 deletion disrupted ciliogenesis through the loss of cleavage of the ciliary transition zone (TZ) protein TMEM67, which led to loss of the MKS/B9 module – a key component of the ciliary gate. Functional analysis of all eight ciliopathy patient variants of ADAMTS9 identified to date showed TMEM67 C-terminus failed to localize to the TZ, thus disrupting a key regulatory mechanism in patient renal ciliogenesis. Modeling ADAMTS9-mediated TMEM67 cleavage utilizing TMEM67-cleavage deficient mice revealed loss of TZ formation, but not elevated canonical Wnt signaling as the underlying mechanism driving cystogenesis. Adamts9 deletion led to comparatively intense interstitial collagen deposition, which likely restricted kidney enlargement and resulted in the characteristically small kidney phenotype seen in nephronophthisis. By comparative analysis of four interconnected polycystic kidney models, in addition to Pkd1 and Pkd2 deleted kidneys, we identified differential collagen homeostasis as a principle factor determining cystic kidney size and type.

Authors

Sydney Fischer, Karyn L. Robert, Manu Ahmed, Griffin I. Kane, Matthew A. Kavanaugh, Wei Wang, Pamela V. Tran, Prabhani U. Atukorale, Sumeda Nandadasa

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T-cell responses shape infant SIV reservoirs and post-intervention control following AAV9-eCD4-Ig and latency reversal
Early antiretroviral therapy (ART) limits viral reservoir establishment in infants but also constrains viral-specific immunity required to clear reactivated cells. In the early ART context, we...
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Research In-Press Preview AIDS/HIV Immunology Infectious disease

T-cell responses shape infant SIV reservoirs and post-intervention control following AAV9-eCD4-Ig and latency reversal

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Early antiretroviral therapy (ART) limits viral reservoir establishment in infants but also constrains viral-specific immunity required to clear reactivated cells. In the early ART context, we evaluated whether combining adeno-associated virus serotype 9 (AAV9)–vectored eCD4-IgG1 with pharmacologic latency reversal using the second mitochondria-derived activator of caspases (SMAC) mimetic AZD5582 could promote reservoir reduction and control in simian immunodeficiency virus (SIV)–infected infant macaques. AAV9 delivery achieved sustained eCD4-IgG1 expression and AZD5582 induced on-ART viremia, but the combination did not reduce intact SIV proviral DNA relative to controls. Partial post-intervention control of viremia during Analytical Treatment Interruption (ATI) occurred in 2/6 infants receiving AAV9-eCD4-IgG1 + AZD5582 with restricted reservoir expansion during recrudescence at week 13. Intact reservoir size during ATI correlated inversely with on-ART viremia during AZD5582 treatment. Controllers did not show increased eCD4-IgG1 expression nor increased on-ART viremia during AZD5582 treatment, but harbored less pre-ART intact SIV DNA in PBMCs than non-controllers. Controllers also exhibited higher frequencies and greater polyfunctionality of virus-specific CD8+ T-cells prior to ATI. These findings implicate immune control of reservoir size and post-ART viral dynamics in early-treated infants and suggest that AAV9-eCD4-IgG1 + AZD5582 increases the likelihood of post-ART viral control.

Authors

Jairo A. Fonseca, Alexis C. King, Kaleaha S. Davis, Daniel O'Hagan, Adrian Khoei, Lucas Alves Britto Da Costa, Camryn Cockerham, Mackenzie Cottrell, Stephanie Ehnert, Jennifer S. Wood, Michael D. Alpert, Matthew R. Gardner, Jeffrey D. Lifson, Maud Mavigner, Mauricio A. Martins, Ann Chahroudi

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Disrupted neuronal expression of autism risk genes and white matter micro-organization after infant Zika infection
Congenital and early-life Zika virus (ZIKV) infection can result in neurologic deficits. Precise mechanisms of injury, especially in the more subtle presentation of postnatal infection, are not...
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Research In-Press Preview Infectious disease Inflammation Neuroscience

Disrupted neuronal expression of autism risk genes and white matter micro-organization after infant Zika infection

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Congenital and early-life Zika virus (ZIKV) infection can result in neurologic deficits. Precise mechanisms of injury, especially in the more subtle presentation of postnatal infection, are not fully elucidated. Here, we defined the effects of ZIKV on the developing brain using single cell transcriptomics, histopathology and design-based stereology, diffusion MRI, and neurobehavioral assessments in infant rhesus macaques. ZIKV upregulated interferon-stimulated genes in activated microglia and cell death pathways in neurons and downregulated metabolism and differentiation genes in mature oligodendrocytes. Abnormal micro-organization of the corpus collosum and limbic white matter tracts was seen on diffusion weighted imaging. A curated gene set associated with autism spectrum disorder risk was negatively enriched in inhibitory and excitatory neurons from ZIKV-infected infants, with increased emotional reactivity already evident two weeks following infection. From single cells to organism-level behaviors, these results define the pathways and processes disrupted by early-life ZIKV infection.

Authors

Venkata-Viswanadh Edara, Sienna Freeman, Maureen Sampson, Kathryn M. Moore, Rebecca Richardson, Nils Schoof, Divine Burgess, Michelle J. Lee, Gregory K. Tharp, Roza Vlasova, Shane Taylor, Ariana Hodjatzadeh, Yihana P. Melendez-Alejandro, Samia M. Abdallah, Esther W. Ndungu, Ava K. Mascarenhas, Chao-Hsiung Hsu, Tsang-Wei Tu, Martin Styner, Mehul S. Suthar, Mar M. Sanchez, Steven E. Bosinger, Mark W. Burke, Steven A. Sloan, Jessica Raper, Ann Chahroudi

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The E3 ubiquitin ligase HECTD3 controls immune colonic inflammation by restricting Myd88 activation and signaling
Ubiquitination is an important post-translational modification associated with essential cellular processes and implicated in regulation of immunity. Here we show that deletion of the E3 ubiquitin...
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Research In-Press Preview Immunology Inflammation

The E3 ubiquitin ligase HECTD3 controls immune colonic inflammation by restricting Myd88 activation and signaling

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Abstract

Ubiquitination is an important post-translational modification associated with essential cellular processes and implicated in regulation of immunity. Here we show that deletion of the E3 ubiquitin ligase Hectd3, germline or in hematopoietic compartment, including in CD11c+ cells, causes a more severe DSS-induced colitis and increased production of proinflammatory cytokines. Hectd3 mRNA levels were found reduced in colonic tissues of patients with ulcerative colitis (UC), which highlights a potential role for Hectd3 in regulating inflammatory responses in UC. We identified Myd88, a central adaptor in the TLR/IL1R signaling and inflammatory response, as a target for Hectd3 ubiquitination. We demonstrate that Hectd3 directly ubiquitinates Myd88 through K27-linked Poly-Ub chains in a nondegradative manner. Hectd3 KO GM-CSF-bone marrow derived cells treated with the TLR4 ligand lipopolysaccharide (LPS) produced more proinflammatory cytokines, show elevated phosphorylation of NF-κB and IRAK4, as well as elevated association of Myd88 with IRAK4, demonstrating that Hectd3 controls Myd88-IRAK4-NF-κB axis. Inhibition of Myd88 activity rescued colitis severity in the Hectd3 KO mice, including the elevated proinflammatory cytokine production. Thus, our results establish Myd88 as a new target for Hectd3 non-degradative polyubiquitination and restriction of immune colonic inflammation.

Authors

Shamima Islam, Shahnewaj Mannan, Ashley Zuniga, Upasana Parthasarathy, Valeriu B. Cismasiu, Leonardo Silvane, Sayan Chakraborty, Divya Priyanka Talada, Raghwendra Pratap Singh, Tomas Zelenka, Amreen Naveen, Sephra Chyanne Vickers, Michael G.M. Grant, Jonathan J. Cho, Theodore Drashansky, Alexander J. Kwiatkowski, Xintong Liu, Ross Tomaino, Olga A. Guryanova, Mariola J. Ferraro, Sang Yong Kim, Christian Jobin, Benjamin G. Keselowsky, Hongmin Li, Paulo C. Rodriguez, Martina Molgora, Amer A. Beg, Timothy I. Shaw, Zheng Ruan, Lixin Wan, Dorina Avram

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Right ventricular pressure overload disturbs T-tubules maturation via Mef2D's transcriptional regulation of Bin1
Right ventricular pressure overload (RVPO) is a critical pathophysiological feature of numerous pediatric cardiovascular diseases. Transverse tubules (T-tubules) form the foundation for efficient...
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Research In-Press Preview Cardiology Development

Right ventricular pressure overload disturbs T-tubules maturation via Mef2D's transcriptional regulation of Bin1

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Abstract

Right ventricular pressure overload (RVPO) is a critical pathophysiological feature of numerous pediatric cardiovascular diseases. Transverse tubules (T-tubules) form the foundation for efficient excitation-contraction coupling in mature cardiomyocytes. We hypothesized that RVPO impairs T-tubule maturation through the regulatory protein BIN1 (Bridging Integrator 1). In right ventricular samples from children with tetralogy of Fallot, characterized by RVPO, and in a neonatal rat RVPO model induced by pulmonary artery banding (PAB), T-tubule maturation was disrupted. RNA sequencing revealed significant downregulation of T-tubule–associated genes, with Bin1 among the most suppressed. Bin1 overexpression restored T-tubule maturation in PAB rats. Assay for Transposase-Accessible Chromatin with sequencing (ATAC-seq) showed reduced chromatin accessibility at Bin1 loci; motif analysis identified Mef2d (myocyte enhancer factor 2D) as the top enriched transcription factor. Mef2d knockdown rescued Bin1 expression and T-tubule maturation, and mutation of the Mef2d binding sites within the Bin1 promoter abolished the inhibitory effect of Mef2d on Bin1 promoter activity. This study delineates a phenomenon and a mechanism of cardiomyocyte maturation under pathological stress. The findings not only advance our understanding of this most pivotal event in postnatal cardiac development but also unveil a potential therapeutic direction for pediatric cardiovascular diseases associated with RVPO.

Authors

Yuqing Hu, Yiting Xue, Xudong Chen, Linghui Kong, Debao Li, Zheng Wang, Sixie Zheng, Siqi She, Hao Li, Sijuan Sun, Hao Chen, Lijun Chen, Peisen Ruan, Kai Wang, Lincai Ye

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Sphingolipid metabolism contributes to sex dimorphism in COPD pathogenesis
Sex-specific mechanisms in chronic obstructive pulmonary disease (COPD) remain poorly defined. Sphingolipids are bioactive mediators that regulate airway epithelial integrity, inflammation, and...
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Research In-Press Preview Inflammation Pulmonology

Sphingolipid metabolism contributes to sex dimorphism in COPD pathogenesis

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Abstract

Sex-specific mechanisms in chronic obstructive pulmonary disease (COPD) remain poorly defined. Sphingolipids are bioactive mediators that regulate airway epithelial integrity, inflammation, and bronchial smooth muscle tone, and their dysregulation contributes to airway hyperresponsiveness. We tested whether sphingolipid metabolism is regulated by sex in COPD. Lung tissue and paired plasma from female and male never-smoking controls (NSC), ever-smoking controls (SC), and COPD subjects were analyzed for sphingolipid enzyme expression and metabolite levels. Bronchial rings from mice and human bronchial smooth muscle cells (HBSMCs) were exposed to estradiol or cigarette smoke extract (CSE) ± ceramidase or sphingosine kinase inhibitors. Expression of sphingolipid regulators ASAH1 and ORMDL3 was increased in COPD airways, significantly higher in women, and correlated with airway smooth muscle remodeling. Plasma from females with COPD showed increased sphingosine-1-phosphate (S1P), whereas males exhibited higher ceramide levels. Female mice displayed greater CSE-induced bronchial reactivity, attenuated by sphingosine kinase inhibition. In male-donor HBSMCs, estradiol increased ASAH1, ORMDL3, S1P, and smooth muscle protein expression and enhanced contractility. CSE further augmented molecular responses in estradiol-treated cells but reduced collagen-gel contraction, whereas ceramidase inhibition attenuated estradiol-dependent effects. These findings suggest that estrogen-dependent alterations in sphingolipid metabolism contribute to airway hyperreactivity and remodeling in females with COPD.

Authors

Elisabetta Granato, Xiaoyun Wang, Yun Zhang, Joselyn Rojas-Quintero, Ida Cerqua, Scott A. Ochsner, Jeff Thomas Kue, Luca Cecchetto, Maor Sauler, Farrah Kheradmand, Joshua Malo, Fiorentina Roviezzo, Irina Petrache, Francesca Polverino

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Cycloxygenase-2 negatively regulates innate lymphoid cell type 2 differentiation and function during allergic lung inflammation
Type 2 innate lymphoid cells (ILC2) are a population of lineage-negative cells in the lung, gastrointestinal tract, and skin which have emerged as a significant component of type 2 allergic...
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Research In-Press Preview Immunology Pulmonology

Cycloxygenase-2 negatively regulates innate lymphoid cell type 2 differentiation and function during allergic lung inflammation

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Abstract

Type 2 innate lymphoid cells (ILC2) are a population of lineage-negative cells in the lung, gastrointestinal tract, and skin which have emerged as a significant component of type 2 allergic inflammation. The regulation of cyclooxygenase-2 (COX-2) metabolites is critical to the pathophysiology of many inflammatory disorders, including allergic asthma. While COX-2 regulates Th9 and Th17 cell differentiation and function during allergic lung inflammation, it remains unknown whether COX-2 also regulates ILC2 cell differentiation and function under similar conditions. To address this question, we examined lung ILC2 cells from COX-2+/+ and COX-2-/- mice after ovalbumin (OVA)- or Alternaria-induced allergic lung inflammation. ILC2 cells were significantly increased in COX-2-/- lungs compared with COX-2+/+ lungs after OVA exposure in vivo. The increase in ILC2 cells was accompanied by an increase in expression of the cytokines IL-5 and IL-13, and the transcription factor GATA3. Both genetic disruption and selective inhibition of COX-2 significantly increased ILC2 cell differentiation from isolated common lymphoid progenitor cells (CLP) in vitro. Furthermore, COX-2-derived PGE2 acting via EP2 receptors significantly reduced IL-33 and TSLP expression, and attenuated ILC2 cell differentiation in vitro and in vivo. Thus, during allergic lung inflammation, COX-2-derived PGE2 signals through the EP2 receptor to negatively regulate lung ILC2 cell differentiation and function.

Authors

Hong Li, Matthew L. Edin, Daniel Menendez, J. Alyce Bradbury, Joan P. Graves, Artiom Gruzdev, Gregory S. Whitehead, Maria I Sifre, Laura M. DeGraff, Darryl C. Zeldin

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IL-1R2+ neutrophils define an early sterile injury-expanded subset that restrains inflammation and promotes repair
Sterile tissue injury triggers a rapid neutrophil response that can be either pathogenic or protective, reflecting substantial functional heterogeneity of neutrophils; however, the neutrophil...
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Research In-Press Preview Immunology Inflammation Ophthalmology

IL-1R2+ neutrophils define an early sterile injury-expanded subset that restrains inflammation and promotes repair

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Abstract

Sterile tissue injury triggers a rapid neutrophil response that can be either pathogenic or protective, reflecting substantial functional heterogeneity of neutrophils; however, the neutrophil subsets underlying these divergent functions remain poorly defined. Here, using a well-established sterile corneal injury model, we delineate the time-dependent functional and transcriptional heterogeneity of neutrophils following sterile injury. Temporal neutrophil depletion revealed that neutrophils recruited at day 1, but not day 7, are essential for suppressing inflammation, promoting epithelial healing, and preserving nerve density. Single-cell RNA sequencing uncovered substantial transcriptional heterogeneity among circulating neutrophils and their rapid reprogramming within 24 hours after injury. Specifically, Il1r2 was highly enriched in these early injury-responsive neutrophils. Functional validation demonstrated that adoptive transfer of IL-1R2+ neutrophils markedly attenuated inflammation and accelerated epithelial and nerve repair, restoring tissue integrity, whereas IL-1R2- neutrophils exacerbated inflammatory responses. Together, these findings identify IL-1R2+ neutrophils as an early protective neutrophil subset expanded by sterile injury that restrains excessive inflammation and preserves tissue homeostasis, providing mechanistic insight into injury-induced neutrophil reprogramming and highlighting a potential therapeutic target for enhancing tissue repair.

Authors

Hyun Ju Lee, Jung Hwa Ko, Joo Youn Oh

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Cell-free hemoglobin upregulates pulmonary endothelial heparanase expression to drive glycocalyx destruction and inflammation in sepsis
Both elevated plasma cell-free hemoglobin (CFH) and heparanase-driven endothelial glycocalyx shedding are contributors to microvascular dysfunction and organ injury in sepsis. However, the...
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Research In-Press Preview Inflammation Pulmonology Vascular biology

Cell-free hemoglobin upregulates pulmonary endothelial heparanase expression to drive glycocalyx destruction and inflammation in sepsis

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Abstract

Both elevated plasma cell-free hemoglobin (CFH) and heparanase-driven endothelial glycocalyx shedding are contributors to microvascular dysfunction and organ injury in sepsis. However, the mechanisms governing heparanase activation, and the potential role of CFH in this process, are not understood. Utilizing patient samples, mice with cecal slurry-induced (CS) peritonitis and elevated CFH, and human lung microvascular endothelial cells (HLMVECs), we tested the hypothesis that CFH upregulates heparanase production to drive endothelial glycocalyx degradation. In human sepsis, elevated circulating CFH was associated with higher heparanase and heparan sulfate levels, which in turn correlated with adverse clinical outcomes. CS+CFH-treated mice had increased plasma heparanase, glycocalyx degradation, and pulmonary and systemic inflammation; endothelial heparanase deletion abrogated these effects. Additionally, in both pulmonary endothelial cells isolated from CS+CFH-treated mice and HLMVECs exposed to CFH and TNF, heparanase transcription and active enzyme production were increased. The deleterious effects of CFH were attenuated by acetaminophen, a hemoprotein reductant. In summary, we demonstrate that CFH oxidation stimulates endothelial heparanase expression and activation during sepsis, leading to endothelial glycocalyx degradation, which may disrupt the endothelial barrier and result in organ injury. Our findings highlight the CFH-heparanase axis as a potential therapeutic target for endothelial glycocalyx preservation in sepsis.

Authors

Avery M. Bogart, Anisa S. Haffizulla, Jason Lin, Nathan D. Putz, Han Noo Ri Lee, David M. Aslaner, Samantha K. Gonski, Nancy Wickersham, Kyle Riedmann, Jamie E. Meegan, Kaori Oshima, Ciara M. Shaver, Julie A. Bastarache, Eric P. Schmidt, Lorraine B. Ware

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Kidney fibrosis is mediated by GARP-restricted TGF-β activation in fibroblasts
TGF-β is a central driver of kidney fibrosis, a common pathological hallmark of chronic kidney disease (CKD). Initiation of TGF-β signaling requires not only its synthesis but also the conversion...
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Research In-Press Preview Nephrology Public Health

Kidney fibrosis is mediated by GARP-restricted TGF-β activation in fibroblasts

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Abstract

TGF-β is a central driver of kidney fibrosis, a common pathological hallmark of chronic kidney disease (CKD). Initiation of TGF-β signaling requires not only its synthesis but also the conversion of latent TGF-β to its bioactive form. However, the mechanisms governing TGF-β activation in the kidney and their contribution to kidney fibrosis remain poorly understood. Glycoprotein A repetitions predominant (GARP) anchors latent TGF-β on the cell surface and facilitates its bioactive release. Here, we show that GARP-mediated TGF‐β activation promotes kidney fibrosis. GARP was upregulated in both human and mouse CKD kidneys, predominantly in fibroblasts, and was induced by TNF in an NF-kB-dependent fashion. In multiple mouse models of kidney fibrosis, either global or fibroblast-specific deletion of GARP significantly reduced fibrosis. Mechanistically, GARP enables sustained production of active TGF-β, thereby amplifying fibroblast stimulation. Deletion of GARP in kidney fibroblasts lowered active TGF-β levels and attenuated fibroblast activation, whereas GARP overexpression enhanced TGF-β signaling. Notably, tamoxifen-induced deletion of GARP after fibrosis onset attenuated kidney fibrosis. Together, our findings identify GARP-mediated release of active TGF‐β as a critical step in sustaining fibroblast activation during kidney fibrosis and highlight GARP as a promising therapeutic target for CKD.

Authors

Yintong Chen, Weiwei Xu, Jieli Yu, Pei Deng, Nianping Liu, Yinyin Li, Hui Zhou, Hong Zhou, Jianchuan Wang, Bo Zhao, Florian Winau, Fan Fan Hou, Yu Hu

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