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Biology subjects

Cort, L.

Publications and source records attributed to Cort, L..

2 recordsLinked to original sources

PSGL-1 blockade delays relapse to BRAF/MEK inhibition in cutaneous melanoma

Advanced BRAF-mutant cutaneous melanoma can be treated with targeted therapy when immune checkpoint inhibitors (ICIs) fail or are not a feasible option. Nevertheless, most patients do not achieve a durable response, highlighting the critical need for therapeutic partners that enhance the long-term efficacy of targeted therapy. Transcriptomic analysis of a BRAF-mutant melanoma model of acquired resistance identified P-selectin glycoprotein ligand-1 (PSGL-1) as a top-upregulated immune mediator upon resistance acquisition. PSGL-1 is a key regulator of CD8+ T cell exhaustion and differentiation, and its inhibition has been shown to enhance T cell function across multiple disease models. Based on these observations, we hypothesized that combined targeting of BRAF/MEK and PSGL-1 would improve anti-tumor responses. Here, we demonstrate that dual inhibition of BRAF/MEK and PSGL-1 elicits durable tumor control in a preclinical model of PD-1-refractory cutaneous melanoma. Single-cell RNA sequencing of the tumor microenvironment reveals robust reprogramming of intratumoral CD8+ T cells toward a less terminally differentiated, memory-like phenotype following combined BRAF/MEK and PSGL-1 targeting. Consistent with these findings, CD8+ T cells in the tumor-draining lymph nodes of PSGL-1-/- mice exhibit enhanced functionality and a less differentiated state of exhaustion when compared with wild-type mice. To extend these observations to a translationally relevant setting, we further show that antibody-mediated blockade of PSGL-1, in combination with BRAF/MEK inhibition, yields superior anti-tumor activity compared with either monotherapy. Collectively, these findings identify PSGL-1 as a promising therapeutic target to enhance the durability of targeted therapy and provide a strong rationale for future clinical evaluation.

immunology↗

The Impact of Delayed Evacuation on the Quality of Human Fetal Tissue

BackgroundDigoxin and other agents are frequently administered to arrest fetal circulation before the evacuation of human fetal tissue (HFT) in pregnancy terminations to address concerns about fetal viability. However, the impact of delayed evacuation on HFT quality remains unknown. Analyzing HFT is critical for diagnosing pregnancies affected by fetal abnormalities and for driving progress in biomedical research. ObjectiveThis study aims to assess the effects of delayed evacuation following fetal circulation cessation on the quality of HFT for both diagnostic and research purposes. Study DesignHFT samples were collected from second-trimester dilation and evacuation (D&E) procedures, with and without agent injection approximately 24 hours prior, as per standard care protocols. We assessed multiple parameters relevant to diagnostics and research, including: 1) cell morphology, 2) cell proliferation, 3) apoptosis, 4) cell viability in culture, and 5) nucleic acid quality. To simulate in utero conditions and determine the timeline for tissue degradation, we incubated brain tissue obtained from D&E without induced demise at 37{degrees}C for up to 18 hours. ResultsWe analyzed 18 HFT samples from D&E procedures performed 19-25 hours after digoxin or potassium chloride (KCl) injection and compared them to 26 HFT samples from immediate evacuations without prior injection. Induced fetal demise resulted in 1) disrupted cell morphology, 2) decreased cell proliferation, 3) increased apoptosis, 4) reduced cell viability in culture, and 5) lower RNA quality. Despite these findings, all samples yielded DNA of sufficient quality for polymerase chain reaction (PCR). ConclusionD&E procedures performed after fetal demise induced by digoxin or KCl lead to decreased HFT quality, limiting its diagnostic and research potential beyond gross tissue evaluation and DNA extraction. Limiting the time between fetal circulation arrest and evacuation may improve HFT quality for clinical and research applications.

pathology↗