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Burt, B.

Publications and source records attributed to Burt, B..

3 recordsLinked to original sources

Inhibition of CDK4/6 Overcomes Primary Resistance to PD-1 Blockade in Malignant Mesothelioma

BackgroundDespite the profound number of malignant pleural mesothelioma (MPM) patients now treated with PD-1 blockade, insight into the underpinnings of rational therapeutic strategies to treat resistance to checkpoint immunotherapy remain unrealized. Our objective was to develop a novel therapeutic approach to overcome primary resistance to PD-1 blockade in MPM. MethodsWe generated a transcriptome signature of resistance to PD-1 blockade in MPM patients treated with nivolumab (4 responders and 4 non-responders). We used the TCGA MPM cohort (N=73) to determine what genomic alterations were associated with the resistance signature. We tested whether regulation of identified molecules could overcome resistance to PD-1 blockade in an immunocompetent mouse malignant mesothelioma model. ResultsImmunogenomic analysis by applying our anti-PD-1 resistance signature to the TCGA cohort revealed that deletion of CDKN2A was highly associated with primary resistance to PD-1 blockade. Under the hypothesis that resistance to PD-1 blockade can be overcome by CDK4/6 inhibition, we tested whether CDK4/6 inhibitors could overcome resistance to PD-1 blockade in subcutaneous tumors derived from Cdkn2a(-/-) AB1 malignant mesothelioma cells, which were resistant to PD-1 blockade. The combination of daily oral administration of CDK4/6 inhibitors (abemaciclib or palbociclib) and intraperitoneal anti-PD-1 treatment markedly suppressed tumor growth, compared with anti-PD-1 or CDK4/6 inhibitor alone. ConclusionsWe identified a novel therapeutic target, CDK4/6, to overcome primary resistance to PD-1 blockade through comprehensive immunogenomic approaches. These data provide a rationale for undertaking clinical trials of CDK4/6 inhibitors in the more than 40% of patients with MPM who demonstrate loss of CDKN2A.

immunology

Comparison of potential plant-pollinator network structure for 3 seed mixes (lawn, roadside, and pollinator-planting) in western NY, USA

There is growing concern, locally and globally, about the health of pollinating insects and their decreasing abundance and diversity. While roads may also be contributing to insect pollinator declines (roads can contribute to habitat fragmentation and habitat destruction), roadsides may provide opportunities for pollinating insect conservation. Yet to use these areas to support local pollinating insects, we need to understand which plants will support wild pollinators, especially of conservation concern. To that end, we researched the potential plant-pollinator networks of three existing seed mixes in western New York (USA) - a roadside seed mix, a pollinator-friendly planting mix, and a lawn seed mix. We used publicly available information and built bipartite graphs to show the resulting networks. The pollinator-friendly seed mix supported the most pollinating insects overall and taxa of conservation concern. Yet the roadside mix, with the same species richness as the lawn seed mix, supported a different network based on the plants in the mix. Our results inform which particular plant species in existing seed mixes in western New York can support wild pollinating insect species of concern in the region. Additionally, our results show potentially how roadside and lawn plantings may be altered to support a broader network of pollinating insects.

ecology

NK cells and CTLs are required to clear solid tumor in a novel model of patient-derived-xenograft

Existing patient-derived-xenograft (PDX) mouse models of solid tumors lack a fully tumor-donor matched "syngeneic" and functional immune system. We developed such a model by engrafting lymphopenic recipient mice with a fresh undisrupted piece of solid tumor, whereby tumor-infiltrating lymphocytes (TIL) expanded in the recipient mice for several weeks. Tumors engrafted in about seventy to eighty percent of syngeneic-immune-system-PDX (SIS-PDX) mice, which harbored tumor-exhausted immune-effector and functional immune-regulatory cells persisting for at least six-months post-engraftment. Interleukin-15 (IL-15)-stimulation in addition to immune checkpoint inhibition (ICI), prevented resistance, resulting in complete or partial response to combined treatment. Further, the depletion of Cytotoxic T lymphocytes (CTLs) and/or Natural Killer (NK) cells from combined immunotherapy in SIS-PDX mice revealed that both cell types are required for the maximal response to tumor. Our novel SIS-PDX model provides a valuable resource for powerful mechanistic and therapeutic studies designed to eradicate solid tumors.

immunology