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Ben Saad, A.

Publications and source records attributed to Ben Saad, A..

2 recordsLinked to original sources

Conserved long noncoding RNA TILAM promotes liver fibrosis through interaction with PML in hepatic stellate cells

Background & AimsFibrosis is the common endpoint for all forms of chronic liver injury, and progression of fibrosis leads to the development of end-stage liver disease. Activation of hepatic stellate cells (HSCs) and their transdifferentiation to myofibroblasts results in the accumulation of extracellular matrix (ECM) proteins that form the fibrotic scar. Long noncoding (lnc) RNAs regulate the activity of HSCs and may provide targets for fibrotic therapies. MethodsWe identified lncRNA TILAM as expressed near COL1A1 in human HSCs and performed loss-of-function studies in human HSCs and liver organoids. Transcriptomic analyses of HSCs isolated from mice defined the murine ortholog of TILAM. We then generated Tilam-deficient GFP reporter mice and quantified fibrotic responses to carbon tetrachloride (CCl4) and choline-deficient L-amino acid defined high fat diet (CDA-HFD). Co-precipitation studies, mass spectrometry, and gene expression analyses identified protein partners of TILAM. ResultsTILAM is conserved between human and mouse HSCs and regulates expression of ECM proteins, including collagen. Tilam is selectively induced in HSCs during the development of fibrosis in vivo. In both male and female mice, loss of Tilam results in reduced fibrosis in the setting of CCl4 and CDA-HFD injury models. TILAM interacts with promyelocytic leukemia protein (PML) to stabilize PML protein levels and promote the fibrotic activity of HSCs. ConclusionTILAM is activated in HSCs and interacts with PML to drive the development of liver fibrosis. Depletion of TILAM may serve as a therapeutic approach to combat the development of end stage liver disease.

cell biology↗

Human liver organoids model progressive inflammatory and fibrotic injury in non-alcoholic fatty liver disease

Non-alcoholic fatty liver disease (NAFLD) is a rapidly growing cause of morbidity with few treatment options available. Thus, accurate in vitro systems to test new therapies are indispensable. Recently, human liver organoid (HLO) NAFLD models have emerged. However, a systematic evaluation of their translational potential is currently missing. Here, we develop a structured approach to evaluate NAFLD-HLO models, testing oleic acid (OA) and palmitic acid (PA) in comparison to TGF-{beta}1 for disease induction. Through analysis of [~]100K single-cell transcriptomes of the HLO injury landscape, we find all three models induce inflammatory signatures. However, only TGF-{beta}1 promotes collagen production, fibrosis, and hepatic stellate cell (HSC) expansion. In striking contrast, OA ameliorates fibrotic signatures and reduces the HSC population. Integrating data from each model with that of NAFLD patients across disease progression further demonstrates PA and TGF-{beta}1 more robustly model inflammation and fibrosis. Our findings highlight the importance to stratify NAFLD-HLO models by clinical disease progression, provide a single-cell reference to benchmark future organoid injury models, and allow us to study evolving steatohepatitis, fibrosis, and HSC susceptibility to injury in a dynamic, multi-lineage human in vitro system.

molecular biology↗