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Pavelko, K. D.

Publications and source records attributed to Pavelko, K. D..

3 recordsLinked to original sources

Isolation free Identification and Phenotyping of First Trimester Extravillous Trophoblasts Residing in Cervical Fluid

Preeclampsia (PE) remains difficult to predict, particularly when it manifests late in gestation. To capture early placental signals, we profiled trophoblast cells sampled from the cervix in the first trimester using mass cytometry (CyTOF). We established protocols for clinical sample storage and applied spike-in reference control cells to deliver reproducible, batch-corrected protein measurements, thereby advancing CyTOF from a discovery tool to a translational platform. Within HLA-GCD45- cells, we identified canonical CK7 extravillous trophoblasts, as well as a previously unrecognized CK7-subset, and both subsets expressed placental proteins. Expression of PAPP-A, GAL-13, and GAL-14 was significantly altered in a pilot cohort of pregnancies that subsequently developed late-onset PE, distinguishing cases from controls at both single-marker and multivariate levels. These findings reveal unexpected trophoblast heterogeneity, demonstrate that placental alterations are detectable before the development of late-onset PE, and establish cervical trophoblast profiling as a promising platform for scalable biomarker discovery and first-trimester risk assessment in placenta-mediated disorders. Impact StatementFirst-trimester trophoblasts sampled from the cervix reveal early molecular changes associated with late-onset preeclampsia, while an isolation-free, reference-normalized CyTOF workflow establishes a scalable, clinically compatible platform for biomarker discovery and multicenter-ready early risk assessment in pregnancy.

cell biology↗

CD4+ T cells promote fibrosis during metabolic dysfunction-associated steatohepatitis

Unresolved inflammation and fibrosis are the two key features of metabolic dysfunction-associated steatohepatitis (MASH), a progressive form of steatotic liver disease that can evolve into cirrhosis and liver cancer. Although innate immunity has been well studied in MASH, the role of CD4 T cells remains underexplored despite their potential to coordinate immune responses by providing help to other immune cells, promoting inflammation, or regulating immune activity through effector and regulatory subsets. To better understand the role of CD4+ T cells in the pathogenesis of MASH, we comprehensively characterized hepatic CD4+ T cells in murine and human MASH at a single-cell protein, transcriptional, and functional level. Mass cytometry and CITE-sequencing revealed a marked shift in intrahepatic CD4 T-cell composition in MASH, with enrichment of Th1, regulatory, and cytotoxic CD4 T cells. Similar phenotypic changes were mirrored in the peripheral blood and validated in human MASH samples. Functional assays demonstrated increased production of IFN{gamma} and TNF by hepatic CD4 T cells, highlighting their proinflammatory effector activity. Transcriptomic profiling identified Tnfrsf4 (OX40) upregulation in hepatic CD4 T cells during MASH. Therapeutic blockade of the OX40L-OX40 axis reversed hepatic fibrosis and improved histologic disease scores in mice with established MASH, and also decreased inflammatory markers in a human ex vivo liver model. Together, these studies provide a proteogenomic single-cell atlas for hepatic CD4 T cells and uncover a CD4 T cell-dependent immunopathogenic circuit as a promising immunotherapeutic target to alleviate MASH and liver fibrosis.

immunology↗

Multiparametric senescent cell phenotyping reveals CD24 osteolineage cells as targets of senolytic therapy in the aged murine skeleton

Senescence drives organismal aging, yet the deep characterization of senescent cells in vivo remains incomplete. Here, we applied mass cytometry by time-of-flight (CyTOF) using carefully validated antibodies to analyze senescent cells at single-cell resolution. We used multiple criteria to identify senescent mesenchymal cells that were growth arrested and resistant to apoptosis (p16+/Ki67-/BCL-2+; "p16KB" cells). These cells were highly enriched for senescence-associated secretory phenotype (SASP) and DNA damage markers and were strongly associated with age. p16KB cell percentages were also increased in CD24+ osteolineage cells, which exhibited an inflammatory SASP in aged mice and were robustly cleared by both genetic and pharmacologic senolytic therapies. Following isolation, CD24+ skeletal cells exhibited growth arrest, SA-{beta}gal positivity, and impaired osteogenesis in vitro. These studies thus provide a new approach using multiplexed protein profiling by CyTOF to define senescent mesenchymal cells in vivo and identify a highly inflammatory, senescent CD24+ osteolineage population cleared by senolytics.

cell biology↗