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Bouwens, L.

Publications and source records attributed to Bouwens, L..

2 recordsLinked to original sources

MECOM permits pancreatic acinar cell dedifferentiation avoiding cell death under stress conditions

Maintenance of the pancreatic acinar cell phenotype suppresses tumor formation. Hence, repetitive acute or chronic pancreatitis, stress conditions in which the acinar cells dedifferentiate, predispose for cancer formation in the pancreas. Dedifferentiated acinar cells acquire a large panel of duct cell-specific markers. However, it remains unclear to what extent dedifferentiated acini differ from native duct cells and which genes are uniquely regulating acinar cell dedifferentiation. Moreover, most studies have been performed in mice since the availability of human cells is scarce. Here, we applied a non-genetic lineage tracing method of human pancreatic exocrine acinar and duct cells that allowed cell-type-specific gene expression profiling by RNA sequencing. Subsequent to this discovery analysis, one transcription factor that was unique for dedifferentiated acinar cells was functionally characterized. RNA sequencing analysis showed that human dedifferentiated acinar cells expressed genes in Pathways of cancer with prominence of MECOM (EVI-1), a transcription factor that was not expressed by duct cells. During mouse embryonic development, pre-acinar cells also transiently expressed MECOM and in the adult mouse pancreas, MECOM was re-expressed when mice were subjected to acute and chronic pancreatitis, conditions in which acinar cells dedifferentiate. In human cells and in mice, MECOM expression correlated with and was directly regulated by SOX9. Mouse acinar cells that, by genetic manipulation, lose the ability to upregulate MECOM showed impaired cell adhesion, more prominent acinar cell death and suppressed acinar cell dedifferentiation by limited ERK signaling. In conclusion, we transcriptionally profiled the two major human pancreatic exocrine cell types, acinar and duct cells, during experimental stress conditions. We provide insights that in dedifferentiated acinar cells, cancer pathways are upregulated in which MECOM is a critical regulator that suppresses acinar cell death by permitting cellular dedifferentiation.

cancer biology

Discovery and 3D imaging of a novel {triangleup}Np63-expressing basal cell type in human pancreatic ducts with implications in disease

ObjectiveAn aggressive basal-like molecular subtype of pancreatic ductal adenocarcinoma (PDAC) exists, driven by {Delta}Np63. In other epithelia, {Delta}Np63+ basal cells have stem cell capacity and can be at the origin of tumors. In the pancreas, basal cells have not been identified. DesignWe assessed basal cell markers in human and mouse pancreas, chronic pancreatitis and PDAC, and developed a 3D imaging protocol (FLIP-IT) to study sizeable samples at single cell resolution. We generated organoid cultures of ducts from Sox9-eGFP reporter mice. ResultsIn normal human pancreas, rare {Delta}Np63+ cells exist in ducts that expand in chronic pancreatitis. {Delta}Np63+ cells express KRT19 and canonical basal markers (KRT5, KRT14 and S100A2) but lack markers of duct cells such as CA19.9 and SOX9. In addition, {Delta}Np63+ cells pertain to a niche of cells expressing gastrointestinal stem cell markers. 3D views of the ductal tree in formalin fixed paraffin embedded samples show that basal cells are localized on the basal membrane of medium to large ducts and expand as multilayer dome-like structures in chronic pancreatitis. In mice, {Delta}Np63 expression is induced when culturing organoids from Sox9-low ductal cells but could not be found in normal pancreas nor in models of pancreatitis or pancreatic cancer. ConclusionWe discovered a novel ductal cell population in normal human pancreas similar to basal cells in other tissues. Using FLIP-IT, we provide unprecedented 3D visualization of these cells in archival clinical specimens. {Delta}Np63+ cells may play an important role in pancreatic tissue regeneration and cancer. SUMMARY BOXWhat is already known about this subject? O_LI{Delta}Np63 has a central role in determining the basal-like subtype of pancreatic ductal adenocarcinoma (PDAC). C_LIO_LIDifferent to other tissues with basal cancers, the normal pancreas reportedly does not contain ({Delta}Np63-expressing) basal cells. C_LIO_LICurrent protocols face severe limitations for marker-based identification and 3D imaging of individual (rare) cells in archival pancreatic samples. C_LI What are the new findings? O_LIWe report a rare and atypical pancreatic duct cell that expresses {Delta}Np63, other basal cell markers and g.i. stem cell markers. C_LIO_LIThe number of these basal cells increases in diseases such as chronic pancreatitis and pancreatic cancer. C_LIO_LIWe provide an easy to implement protocol for 3D clearing and high-resolution imaging of sizeable samples of (fresh or FFPE) human pancreas or an entire mouse pancreas. C_LIO_LIExcept after culturing medium to large ducts as organoids, we fail to detect basal cells in mouse experimental pancreatic models. C_LI How might it impact on clinical practice in the foreseeable future? O_LIExtrapolating from knowledge in other organs, basal cells in the pancreas may have a stem cell/progenitor role, including in diseases such as (basal) pancreatic cancer. C_LIO_LIUse of the 3D imaging protocol in archival clinical specimens will allow unprecedented insights in pancreatic histopathology. C_LIO_LIFor above mentioned diseases, we caution for findings in experimental mouse models that may not (fully) recapitulate the etiopathogenesis. C_LI

pathology