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Cross, J. W.

Publications and source records attributed to Cross, J. W..

2 recordsLinked to original sources

The fetal specific gene LIN28B is essential for human fetal B-lymphopoiesis and initiation of KMT2A::AFF1 infant leukemia

Infant ALL (iALL) is initiated in utero, most often by rearrangement of the KMT2A gene (KMT2Ar). It carries a very poor prognosis despite a lack of additional oncogenic driver mutations common in childhood ALL. Here, we aimed to identify specific properties of human fetal hematopoietic stem/progenitor cells (HSPC) that promote leukemic transformation in KMT2Ar iALL using molecular, functional and in vivo assays. First, by comparing transcriptomes of human fetal HSPC to adult HSPC we derived a fetal-specific gene signature and identified the fetal oncogene LIN28B and its downstream effectors among the top hits. These genes were also expressed in iALL. Functional assays revealed that LIN28B was essential in human fetal liver (FL) CD34+ cells to maintain proliferation and stemness, and support B- and NK-lymphopoiesis. To interrogate the role of LIN28B in iALL, we utilised a human FL-derived CRISPR-Cas9 KMT2A::AFF1 model. In this model, LIN28B-expressing leukemias were more proliferative in vitro and in vivo, with this advantage being lost upon LIN28B knockdown. Mechanistic studies showed that LIN28B acts by stabilizing key early B-lymphoid genes, epigenetic regulators, and cell cycle and anti-apoptotic genes. Finally, In the absence of LIN28B, human FL CD34+ cells fail to transform upon induction of KMT2A::AFF1 translocation. Thus, LIN28B has an essential role in normal human fetal B-lymphopoiesis, and is necessary for the initiation of KMT2A::AFF1 iALL in fetal cells in the absence of co-operating mutations. It has a role in making leukemias more aggressive, suggesting it is a potential target in LIN28B-expressing leukemias.

cancer biology↗

A Chalcone Synthase-Like Bacterial Protein Catalyzes Heterocyclic C-Ring Cleavage of Naringenin to Alter Bioactivity Against Nuclear Receptors in Colonic Epithelial Cells

The human gut microbiota contributes enzymatic functions that are unavailable to host cells and play crucial roles in host metabolism, nutrient processing and regulating immune functions. As dietary compounds that are only partially absorbed, flavonoids are available for metabolism by gut microbiota, leading to diverse bioactive products. Combining prediction of enzyme promiscuity, metabolomics, and in vitro model systems, we identified a bacterial enzyme that can catalyze heterocyclic C-ring cleavage of naringenin. Culture experiments using a wild-type and mutant strain of Bacillus subtilis confirmed that the enzyme is a chalcone synthase-like polyketide synthase. The prediction-validation methodology developed in this work could be used to systematically characterize the products of gut bacterial flavonoid metabolism and identify the responsible enzymes and species. Further, we demonstrated that naringenin and its ring cleavage metabolites differentially engage the AhR and NR4A in intestinal epithelial cells. Our results suggest that the abundance of selected gut bacterial species impacts the profile of bioactive flavonoids and flavonoid-derived metabolites and thereby influences inflammatory responses in the intestine. These results are significant for understanding the mechanisms of gut microbiota-dependent effects of dietary flavonoids.

microbiology↗